> Anonymized public sample. Project, location, engineer, firm, bid date, and identifying plan filenames have been replaced. Technical findings, quantities, review states, and citation numbering are retained.

# Qualified Opportunity Report

## Executive Summary

This technical sales evaluation synthesizes civil takeoff and engineering audits for the Sample Municipal Parking Improvements project (Engineer of Record: [engineer withheld], [engineering firm withheld]). The analysis identifies five commercial opportunities for biaxial geogrid product deployments totaling 22,750 SF (approx. 2,528 SY) of installed area and 28,656 SF (approx. 3,184 SY) of order-packaged material.

The evaluated product lineup targets five distinct civil functions across the site:
1. Permeable Paver Base Stabilization: 4,400 SF installed (6,156 SF order quantity across 2 rolls) of Biaxial Geogrid R4412 beneath PaveDrain articulating concrete blocks, matching the specified Tensar BX1200 performance baseline [46](#source-46), [131](#source-131), [137](#source-137).
2. Tree Vault Perimeter Wrapping: 1,600 SF installed (1,600 SF order quantity) of Biaxial Geogrid S4415 enclosing 126 DeepRoot Silva Cell frames across 9 vault systems, accompanied by ~350 EA auxiliary plastic cable ties [110](#source-110), [119](#source-119), [135](#source-135).
3. Asphalt Parking Subgrade Undercut Value Engineering (VE): 11,250 SF installed (12,300 SF order quantity across 6 rolls) of Biaxial Geogrid R4413 targeting soft-spot mitigation under proof-rolling across Piedmont residual soils [10](#source-10), [11](#source-11), [142](#source-142).
4. Heavy-Duty Apron Base Stabilization: 4,500 SF installed (4,500 SF order quantity) of Biaxial Geogrid S4430 reinforcing 6 inches of Graded Aggregate Base (GAB) beneath 8-inch heavy-duty concrete pavement [7](#source-7), [112](#source-112), [146](#source-146).
5. Temporary Construction Exit Stabilization: 1,200 SF installed (4,100 SF order quantity / 1 full roll) of large-aperture Biaxial Geogrid R4441 interlocking coarse NSA R-2 riprap off the site access road [43](#source-43), [70](#source-70), [150](#source-150).

Pursuit confidence remains high across standard pavement stabilization opportunities (0.80 to 0.95), supported by direct drawing details and site geotechnical conditions. However, because graphical drawing scales were not calibrated via native PDF vectors, all measurement verifications remain classified as BALLPARK model estimates with a quantity confidence score of 0.75. Takeoff figures establish macro-level commercial feasibility but require field contractor reconciliation prior to quote locking.

**Opportunities Identified:** 5

---

## Key Opportunities

### Opportunity: Biaxial Geogrid R4412

*   **Pursuit Confidence:** 95%
*   **Recommended Product:** Biaxial Geogrid R4412
*   **Estimated Quantity:** 4,400 SF
*   **Quantity Status:** source inputs present
*   **Quantity evidence confidence:** Source evidence 75%

**Justification:**
Biaxial Geogrid R4412 matches the specified Tensar BX1200 aperture (1.0 in x 1.3 in) and mechanical properties with ultimate tensile strength of 1,310 x 1,970 lbs/ft and 93% junction efficiency [131](#source-131). It provides mechanical interlock for the 12-inch open-graded AASHTO/ASTM #57 clean stone reservoir beneath PaveDrain permeable articulating concrete blocks without impeding vertical subgrade infiltration [30](#source-30), [46](#source-46), [65](#source-65).

**Engineering Analysis:**


**Source Data:**
*   **Sheet C-7.3 Detail 'PAVEDRAIN STANDARD DETAIL CROSS-SECTIONS', Sheet C-3.1, Sheet LA-1.1:** 

### Opportunity: Biaxial Geogrid R4413

*   **Pursuit Confidence:** 85%
*   **Recommended Product:** Biaxial Geogrid R4413
*   **Estimated Quantity:** 11,250 SF
*   **Quantity Status:** source inputs present
*   **Quantity evidence confidence:** Source evidence 75%

**Justification:**
Biaxial Geogrid R4413 provides integrally formed polypropylene ribs with high installation damage resistance ratings (SC-95 / SW-95 / GP-90) [142](#source-142) to withstand compaction of 8 inches of Graded Aggregate Base (GAB) to 100% maximum dry density [7](#source-7), [54](#source-54). Installed at the subgrade interface, it stabilizes moisture-sensitive Wilkes-Iredell and Helena residual clays [10](#source-10), [11](#source-11), mitigating soft-spot yielding under loaded tandem-axle proof-rolling and avoiding 6-inch undercut excavation and aggregate replacement [7](#source-7), [26](#source-26), [34](#source-34).

**Engineering Analysis:**


**Source Data:**
*   **Sheet C-0.1 Notes 11 & 28, Sheet C-7.1 Detail S08/Note 1, Sheet C-7.3 Detail 'Asphalt Pavement for Parking Lot', Sheet C-4.5 Soils Table:** 

### Opportunity: Biaxial Geogrid R4441

*   **Pursuit Confidence:** 85%
*   **Recommended Product:** Biaxial Geogrid R4441
*   **Estimated Quantity:** 1,200 SF
*   **Quantity Status:** source inputs present
*   **Quantity evidence confidence:** Source evidence 75%

**Justification:**
Biaxial Geogrid R4441 is a large-aperture polypropylene geogrid supplied in 12.5 ft x 328 ft rolls (456 SY) [150](#source-150), optimized for interlocking coarse National Stone Association R-2 aggregate (1.5 in to 3.5 in stone) [70](#source-70). Placed beneath the temporary 6-inch stone construction exit off the site access road [43](#source-43), [118](#source-118), it prevents stone punching into yielding subgrade under heavy hauling loads during 12 months of construction and prevents pad rutting [5](#source-5), [70](#source-70).

**Engineering Analysis:**


**Source Data:**
*   **Sheet C-4.1, Sheet C-4.2, Sheet C-4.3, Sheet C-7.7 Detail 'Crushed Stone Construction Exit':** 

### Opportunity: Biaxial Geogrid S4430

*   **Pursuit Confidence:** 80%
*   **Recommended Product:** Biaxial Geogrid S4430
*   **Estimated Quantity:** 4,500 SF
*   **Quantity Status:** source inputs present
*   **Quantity evidence confidence:** Source evidence 75%

**Justification:**
Biaxial Geogrid S4430 provides heavy-duty stabilization with a 1.3 in x 1.3 in aperture [146](#source-146) placed beneath the 6-inch Graded Aggregate Base (GAB) under 8-inch 4,000 PSI concrete pavement [7](#source-7), [112](#source-112). Designed for heavy commercial vehicle areas, dumpster aprons, and truck turnarounds [78](#source-78), it mechanically locks the aggregate base, increases the composite modulus of subgrade reaction, and mitigates slab edge deflections under repetitive wheel loads [7](#source-7), [21](#source-21).

**Engineering Analysis:**


**Source Data:**
*   **Sheet C-7.1 Detail S08, Sheet C-0.1 Site Note 15, Sheet C-3.1 Pavement Geometry:** 

---

## Completed Bill of Materials

| Pursuit Confidence | Product | Quantity | Quantity Status | Quantity Evidence Confidence | Justification (Concise) | Quantity Breakdown |
|---|---|---|---|---|---|---|
| 0.95 | Biaxial Geogrid R4412 | 4,400 SF | source inputs present | Source evidence 75% | Biaxial Geogrid R4412 matches the specified Tensar BX1200 aperture (1.0 in x 1.3 in) and mechanical properties with ultimate tensile strength of 1,310 x 1,970 lbs/ft and 93% junction efficiency [131]. It provides mechanical interlock for the 12-inch open-graded AASHTO/ASTM #57 clean stone reservoir beneath PaveDrain permeable articulating concrete blocks without impeding vertical subgrade infiltration [30], [46], [65]. | {"pavedrain_bx1200_base_stab": "4,400 SF"} |
| 0.70 | Biaxial Geogrid S4415 | 1,600 SF | source inputs present | Source evidence 75% | Biaxial Geogrid S4415 provides rigid biaxial containment with a 1.3 in x 1.3 in aperture [135] for continuous vertical perimeter wrapping around 126 DeepRoot Silva Cell 1X suspended pavement frames across 9 vault areas [110], [121]. It restrains compacted backfill from migrating into uncompacted planting soil [2], [66], [106]; however, because Section 32 94 51 Part 2.04.B calls out coated woven polyester (SF 20, Stratagrid SG 150, Miragrid 2XT) [3], [123], submitting polypropylene geogrid represents an alternate material requiring engineer verification. | {"silva_cell_perimeter_geogrid": "1,600 SF"} |
| 0.85 | Biaxial Geogrid R4413 | 11,250 SF | source inputs present | Source evidence 75% | Biaxial Geogrid R4413 provides integrally formed polypropylene ribs with high installation damage resistance ratings (SC-95 / SW-95 / GP-90) [142] to withstand compaction of 8 inches of Graded Aggregate Base (GAB) to 100% maximum dry density [7], [54]. Installed at the subgrade interface, it stabilizes moisture-sensitive Wilkes-Iredell and Helena residual clays [10], [11], mitigating soft-spot yielding under loaded tandem-axle proof-rolling and avoiding 6-inch undercut excavation and aggregate replacement [7], [26], [34]. | {"parking_subgrade_undercut_ve": "11,250 SF"} |
| 0.80 | Biaxial Geogrid S4430 | 4,500 SF | source inputs present | Source evidence 75% | Biaxial Geogrid S4430 provides heavy-duty stabilization with a 1.3 in x 1.3 in aperture [146] placed beneath the 6-inch Graded Aggregate Base (GAB) under 8-inch 4,000 PSI concrete pavement [7], [112]. Designed for heavy commercial vehicle areas, dumpster aprons, and truck turnarounds [78], it mechanically locks the aggregate base, increases the composite modulus of subgrade reaction, and mitigates slab edge deflections under repetitive wheel loads [7], [21]. | {"heavy_duty_apron_base_stabilization": "4,500 SF"} |
| 0.85 | Biaxial Geogrid R4441 | 1,200 SF | source inputs present | Source evidence 75% | Biaxial Geogrid R4441 is a large-aperture polypropylene geogrid supplied in 12.5 ft x 328 ft rolls (456 SY) [150], optimized for interlocking coarse National Stone Association R-2 aggregate (1.5 in to 3.5 in stone) [70]. Placed beneath the temporary 6-inch stone construction exit off the site access road [43], [118], it prevents stone punching into yielding subgrade under heavy hauling loads during 12 months of construction and prevents pad rutting [5], [70]. | {"construction_exit_stabilization": "1,200 SF"} |

---

## Strategic Sales Insights

Commercial positioning and displacement opportunities break down into three primary tiers:

1. Direct Specification Match & Incumbent Displacement:
- PaveDrain Base Reservoir: Sheet C-7.3 specifies a biaxial geogrid matching Tensar BX1200 over a 12-inch open-graded AASHTO/ASTM #57 clean angular stone reservoir (supporting 148.1 CY / ~222 tons of aggregate) [30](#source-30), [46](#source-46). Biaxial Geogrid R4412 matches the specified 1.0 in x 1.3 in aperture, 1,310 x 1,970 lbs/ft ultimate tensile strength, and 93% junction efficiency [131](#source-131). It maintains open porosity for vertical infiltration without clogging, providing a pursuit confidence of 0.95 and product match confidence of 0.95. Separation geotextile (Mirafi FW402) is tracked separately at the subgrade interface [74](#source-74), [108](#source-108).

2. Value Engineering & Subgrade Stabilization Displacements:
- Parking Subgrade Undercut Elimination: The total disturbed site area is 2.18 acres, with 45,000 SF (5,000 SY) dedicated to asphalt pavement over moisture-sensitive Wilkes-Iredell and Helena residual soils [10](#source-10), [11](#source-11), [125](#source-125). Sheet C-0.1 and Sheet C-7.1 detail proof-rolling requirements and specify standard 6-inch undercut excavation and aggregate replacement [7](#source-7), [26](#source-26), [34](#source-34). By proposing Biaxial Geogrid R4413 at the subgrade interface across an expected 25% yielding area (11,250 SF), the contractor avoids 208.3 CY (~312 tons) of undercut excavation and virgin GAB backfill [7](#source-7), [54](#source-54). R4413 features high installation damage survivability (SC-95 / SW-95 / GP-90 ratings) capable of withstanding 100% maximum dry density compaction [54](#source-54), [142](#source-142). Continuous site coverage represents an expanded pursuit case of 45,000 SF (22 rolls) [125](#source-125). Pursuit confidence is 0.85.
- Heavy-Duty Concrete Aprons: Commercial loading aprons, dumpster pads, and truck turnarounds total 4,000 SF net [78](#source-78), [125](#source-125). Applying Biaxial Geogrid S4430 beneath the 6-inch GAB base (supporting 74.1 CY / ~111 tons) increases subgrade reaction modulus and mitigates slab edge deflections under 8-inch 4,000 PSI concrete (98.8 CY) [7](#source-7), [21](#source-21), [112](#source-112). Pursuit confidence is 0.80.
- Construction Exit: Sheet C-7.7 Detail Co establishes an explicit 50 ft x 20 ft stone pad (1,000 SF net) with a 200 SF flare at the site access road [43](#source-43), [70](#source-70). Deploying large-aperture Biaxial Geogrid R4441 locks 6 inches of coarse NSA R-2 aggregate (18.5 CY / ~28 tons), preventing stone punch into soft subgrade under 12 months of construction hauling [5](#source-5), [70](#source-70). While installed area is 1,200 SF (133 SY), standard roll packaging is 4,100 SF (456 SY), providing project balance material for pad maintenance [150](#source-150). Pursuit confidence is 0.85.

3. Material Specification Variance & Pursuit Risk:
- Silva Cell Perimeter Containment: Specification Section 32 94 51 Part 2.04.B explicitly names coated woven polyester geotextiles (SF 20, Stratagrid SG 150, Miragrid 2XT) to wrap the perimeter of 126 frames across 9 vault systems (295 LF) [3](#source-3), [110](#source-110), [121](#source-121), [123](#source-123). Biaxial Geogrid S4415 provides rigid vertical soil separation between compacted utility backfill and uncompacted planting soil [2](#source-2), [66](#source-66), [106](#source-106). Because S4415 is an extruded polypropylene grid rather than a flexible coated polyester fabric, product match confidence and pursuit confidence are moderated to 0.70, requiring submittal approval as an alternate equal. Auxiliary fasteners (~350 EA UV-resistant plastic zip ties) must be packaged to secure the grid to post ridges [119](#source-119).

4. Pursuit vs. Quantity Confidence Discipline:
Pursuit confidence remains elevated (0.70 to 0.95) because the civil applications are functionally validated and provide measurable cost/schedule savings to the sitework contractor. Conversely, quantity confidence is uniformly capped at 0.75 due to BALLPARK estimating status, pending physical cross-sheet scale confirmation.

---


# Evidence Ledger & Audit Review

**Project:** Sample Municipal Parking Improvements ([location withheld])  
**Engineer of Record:** [engineer withheld] / [engineering firm withheld]  
**Bid Date:** [bid date withheld]  
**Indexed Evidence:** Drawing Set containing Sheets C-0.1, C-3.1, C-4.1–C-4.5, C-7.1, C-7.3, C-7.7, LA-1.1; Specification Section 32 94 51; Curated Qualified Opportunity Report (151 tagged evidence nodes across 5 need groups).  
**QA Assessment:** `CONDITIONAL PASS` (Internal geometric formulas and aggregate checks reconcile; all plan viewports lack native vector/graphic scale calibration anchors, classifying all quantities as `BALLPARK / MODEL_ESTIMATED`).

---

## 1. Claim-to-Source Evidence Ledger

### Item 1: Permeable Paver Base Stabilization (`pavedrain_bx1200_base_stab`)
* **Claim 1.1 [OBSERVATION]:** Sheet C-7.3 specifies a biaxial geogrid matching Tensar BX1200 within or above a 12-inch open-graded AASHTO/ASTM #57 clean stone reservoir beneath PaveDrain arched articulating concrete blocks; subgrade separation geotextile (Mirafi FW402) is specified separately.
  * **Source Identifiers:** Sheet C-7.3 Detail "PAVEDRAIN STANDARD DETAIL CROSS-SECTIONS", Sheet C-3.1, Sheet LA-1.1; `[30]`, `[46]`, `[69]`, `[74]`, `[108]`.
  * **Supporting Excerpt:** *"Detail cross-sections explicitly call out 'BX1200 GEOGRID (RECOMMENDED)' placed above or within the 12-inch AASHTO/ASTM #57 clean angular stone layer [30], [46], [65], with Mirafi FW402 geotextile specified for bottom subgrade separation [74], [108]."*
  * **Confidence:** High (0.95 Pursuit Confidence, 0.95 Product Match Confidence; Evidence Type: `EXPLICIT`).
  * **Contradiction:** None on functional requirement. Displaces incumbent Tensar BX1200 with Biaxial Geogrid R4412 (1.0" x 1.3" aperture, 1,310 x 1,970 lbs/ft ultimate tensile strength, 93% junction efficiency per `[131]`).
* **Claim 1.2 [INFERENCE / BALLPARK]:** Net permeable paver footprint is estimated at 4,000 SF (approx. 20 stalls @ 9 ft x 18 ft [3,240 SF] + 760 SF drainage interface), yielding 4,400 SF installed (+10% lap/waste) and 6,156 SF order quantity (2 whole factory rolls of 12.5 ft x 246 ft / 342 SY).
  * **Source Identifiers:** `[36]`, `[46]`, `[65]`, `[137]`.
  * **Supporting Excerpt:** *"Net formula: 20 stalls @ 9 ft x 18 ft (3,240 SF) + drainage interface strips (760 SF) = 4,000 SF net [36]. Installed formula: net_area * 1.10 (10% lap/cut allowance) = 4,400 SF (489 SY) [65]. Order formula: Standard factory rolls of 12.5 ft x 246 ft (342 SY / 3,078 SF) require 2 whole rolls = 6,156 SF (684 SY) [137]."*
  * **Confidence:** Moderate (0.75 Quantity Confidence; Evidence Type: `ASSUMED`; Status: `estimated`).
  * **Contradiction / Conflict:** Net stall count and interface strip geometry are assumed priors without calibrated vector boundary trace.

---

### Item 2: Silva Cell Suspended Pavement Perimeter Geogrid (`silva_cell_perimeter_geogrid`)
* **Claim 2.1 [OBSERVATION]:** Specification Section 32 94 51 (Parts 2.04.B & 3.10.C) and Sheet LA-1.1 require 126 DeepRoot Silva Cell 1X frames across 9 vault areas to be continuously wrapped along their vertical perimeters with geogrid fastened by plastic cable ties to restrain compacted backfill from entering uncompacted planting soil.
  * **Source Identifiers:** Specification Section 32 94 51 Parts 2.04.B & 3.10.C, Sheet LA-1.1; `[2]`, `[66]`, `[106]`, `[110]`, `[119]`, `[121]`.
  * **Supporting Excerpt:** *"Section 3.10.C and Sheet LA-1.1 require installing geogrid continuously around the vertical perimeter of the Silva Cell system where compacted backfill meets uncompacted planting soil... cutting geogrid with a 6-inch overlap at the base and a 12-inch overlap over the top deck... fastening to post ridges with plastic cable ties [2], [66], [106], [119]."*
  * **Confidence:** High (0.98 Need Baseline Confidence; Evidence Type: `EXPLICIT`).
  * **Contradiction / Conflict:** **MATERIAL SPECIFICATION CONFLICT.** Section 32 94 51 Part 2.04.B explicitly restricts approved products to coated woven polyester (SF 20 Biaxial, Stratagrid SG 150, Miragrid 2XT, Fortrac 35; `[3]`, `[95]`, `[123]`). ORION recommends extruded rigid polypropylene Biaxial Geogrid S4415 (`[135]`), creating a polymer composition conflict that requires engineer-of-record submittal variance.
* **Claim 2.2 [INFERENCE / DERIVED]:** Total vault perimeter is 295 LF across 9 vaults (A1/A2 = 68 LF, B1–B4 = 136 LF, C1 = 33 LF, D1/D2 = 58 LF). Multiplied by a developed height of 4.7 ft (3.2 ft frame + 0.5 ft bottom toe lap + 1.0 ft top deck lap) and 15% overlap/corner allowance, installed area is 1,600 SF (178 SY) with ~350 EA plastic cable ties.
  * **Source Identifiers:** Sheet LA-1.1; `[2]`, `[60]`, `[66]`, `[106]`, `[110]`, `[119]`, `[121]`.
  * **Supporting Excerpt:** *"Net formula: 295 LF total perimeter across 9 vaults... multiplied by developed vertical wrap height of 4.7 ft (3.2 ft frame height + 0.5 ft bottom toe lap + 1.0 ft top deck lap) = 1,386.5 SF [2], [66], [106], [110]. Installed formula: 1,386.5 SF * 1.15... = 1,594.5 SF, rounded to 1,600 SF (178 SY) [60]."*
  * **Confidence:** Moderate/Low (0.70 Pursuit Confidence, 0.70 Product Match Confidence due to material variance; 0.75 Quantity Confidence; Evidence Type: `DERIVED`; Status: `estimated`).
  * **Contradiction / Conflict:** Cable ties (~350 EA) excluded from square-footage takeoff; roll packaging dimensions for S4415 remain unstated (order quantity matched to installed 1,600 SF).

---

### Item 3: Parking Subgrade Undercut Mitigation VE (`parking_subgrade_undercut_ve`)
* **Claim 3.1 [OBSERVATION]:** Contract documents require proof-rolling the subgrade with a fully loaded tandem-axle dump truck in the presence of the soils engineer; encountered soft spots must be undercut 6 inches and backfilled with Graded Aggregate Base (GAB) compacted to 100% max dry density. Piedmont residual soils (Wilkes-Iredell WHD, Helena HyB) are present across 2.18 acres.
  * **Source Identifiers:** Sheet C-0.1 Notes 11 & 28, Sheet C-7.1 Detail S08 / Note 1, Sheet C-7.3, Sheet C-4.5; `[7]`, `[10]`, `[11]`, `[26]`, `[34]`, `[54]`.
  * **Supporting Excerpt:** *"Sheet C-0.1 (Grading Note 11) and Sheet C-7.1 (Concrete Paving Note 1) state that following subgrade preparation, the subgrade must be proof-rolled... any soft or yielding areas encountered must be stabilized by compaction or undercut to a depth of 6 inches and backfilled with Graded Aggregate Base (GAB) compacted to 100% maximum dry density [7], [26], [34], [54]."*
  * **Confidence:** High (0.85 Pursuit Confidence; Evidence Type: `EXPLICIT`).
  * **Contradiction / Conflict:** **VALUE ENGINEERING METHOD VARIANCE.** The contract drawings mandate 6" undercut excavation and GAB backfill. ORION proposes an unapproved VE alternate to place Biaxial Geogrid R4413 at the subgrade interface to bridge yielding zones and eliminate undercut.
* **Claim 3.2 [INFERENCE / ASSUMED]:** Proposed asphalt pavement covers 45,000 SF (5,000 SY). Assuming an expected 25% soft-spot yielding rate, targeted installed geogrid area is 11,250 SF (1,250 SY), avoiding 208.3 CY (~312 tons) of undercut. Order quantity requires 12,300 SF (6 whole rolls @ 12.5 ft x 164 ft / 2,050 SF each).
  * **Source Identifiers:** `[7]`, `[10]`, `[11]`, `[26]`, `[34]`, `[54]`, `[125]`, `[142]`.
  * **Supporting Excerpt:** *"targeted_area = proposed_asphalt_area * yielding_rate = 45,000 SF * 0.25 = 11,250 SF (1,250 SY)... Standard factory rolls of 12.5 ft x 164 ft (228 SY / 2,050 SF) require 6 whole rolls = 12,300 SF (1,368 SY) [142]. Avoided undercut check: 11,250 SF * 0.5 ft / 27 = 208.3 CY (~312 tons @ 1.5 tons/CY) [7], [54]."*
  * **Confidence:** Moderate (0.85 Pursuit Confidence; 0.75 Quantity Confidence; Evidence Type: `ASSUMED`; Status: `estimated`).
  * **Contradiction / Conflict:** The 25% yielding rate is an unverified estimating prior. Actual soft-spot volume is completely unknown until physical proof-rolling occurs. Continuous 100% pavement coverage requires 45,000 SF (22 rolls).

---

### Item 4: Heavy-Duty Apron Base Stabilization (`heavy_duty_apron_base_stabilization`)
* **Claim 4.1 [OBSERVATION]:** Sheet C-7.1 Detail S08 specifies 8-inch 4,000 PSI concrete pavement over 6 inches of GAB over compacted subgrade; Site Note 15 on Sheet C-0.1 highlights protection for vulnerable truck areas.
  * **Source Identifiers:** Sheet C-7.1 Detail S08, Sheet C-0.1 Site Note 15, Sheet C-3.1; `[7]`, `[78]`, `[112]`.
  * **Supporting Excerpt:** *"Sheet C-7.1 (Detail S08) specifies an 8-inch 4,000 PSI concrete pavement over a 6-inch Graded Aggregate Base (GAB) layer over compacted subgrade [7], [112]... Site Note 15 on Sheet C-0.1 highlights protection for 'vulnerable truck areas' [78]."*
  * **Confidence:** High (0.80 Pursuit Confidence; Evidence Type: `EXPLICIT`).
  * **Contradiction / Conflict:** **VALUE ENGINEERING SCOPE ADDITION.** Geogrid is not indicated on contract drawings beneath the concrete apron. Deploying Biaxial Geogrid S4430 is an unprompted durability enhancement / VE proposal.
* **Claim 4.2 [INFERENCE / ASSUMED]:** Heavy-duty truck approach aprons, dumpster pad, and turnarounds total 4,000 SF net. Applying a 12.5% overlap/perimeter tuck allowance yields 4,500 SF installed and 4,500 SF order quantity, supporting 74.1 CY (~111 tons) of GAB and 98.8 CY of concrete.
  * **Source Identifiers:** `[7]`, `[21]`, `[78]`, `[112]`, `[125]`, `[146]`.
  * **Supporting Excerpt:** *"net_area = 4,000 SF; installed_area = net_area * 1.125 = 4,500 SF (500 SY)... Net area of 4,000 SF is derived from heavy-duty concrete approach aprons, dumpster pad, and delivery truck staging areas shown on Sheet C-3.1 [125]."*
  * **Confidence:** Moderate (0.80 Pursuit Confidence; 0.75 Quantity Confidence; Evidence Type: `ASSUMED`; Status: `estimated`).
  * **Contradiction / Conflict:** Specific roll dimensions and packaging waste for S4430 are undefined; order quantity is equated directly to installed quantity (4,500 SF).

---

### Item 5: Temporary Construction Exit Stabilization (`construction_exit_stabilization`)
* **Claim 5.1 [OBSERVATION]:** Sheets C-4.1–C-4.3 and Sheet C-7.7 Detail Co govern a temporary Crushed Stone Construction Exit (GSWCC code Co) off the site access road (Lat: [latitude withheld], Long: [longitude withheld]) requiring minimum dimensions of 50 LF length x 20 LF width x 6 in thickness (1,000 SF net) using National Stone Association NSA R-2 aggregate (1.5"–3.5" clean stone; 18.5 CY / ~28 tons).
  * **Source Identifiers:** Sheets C-4.1, C-4.2, C-4.3, Sheet C-7.7 Detail "Crushed Stone Construction Exit"; `[5]`, `[43]`, `[70]`, `[83]`, `[118]`.
  * **Supporting Excerpt:** *"Detail on Sheet C-7.7 requires a crushed stone pad with a minimum 50-foot length, 20-foot width, and 6-inch thickness consisting of National Stone Association R-2 aggregate (1.5-inch to 3.5-inch stone) [70]."*
  * **Confidence:** High (0.85 Pursuit Confidence; Evidence Type: `EXPLICIT`).
  * **Contradiction / Conflict:** **VALUE ENGINEERING SCOPE ADDITION.** Standard GSWCC Detail Co specifies crushed stone directly over native subgrade; geogrid is not shown on the erosion control detail.
* **Claim 5.2 [INFERENCE / EXPLICIT BASE WITH ASSUMED FLARE]:** Net pad is 1,000 SF. Adding 200 SF for a 10-ft entrance flare and ditch tucks yields 1,200 SF (133 SY) installed. Packaging rules require purchasing 1 full standard roll of Biaxial Geogrid R4441 (12.5 ft x 328 ft = 4,100 SF / 456 SY), resulting in 2,900 SF (71% of roll) of surplus balance.
  * **Source Identifiers:** `[43]`, `[70]`, `[150]`.
  * **Supporting Excerpt:** *"Installed formula: 1,000 SF + 200 SF (10-ft apron flare and ditch tucks) = 1,200 SF (133 SY) [43], [70]. Order formula: Standard factory roll of 12.5 ft x 328 ft (456 SY / 4,100 SF) requires 1 roll = 4,100 SF [150]."*
  * **Confidence:** Moderate/High (0.85 Pursuit Confidence; 0.75 Quantity Confidence; Evidence Type: `EXPLICIT` pad / `ASSUMED` flare; Status: `estimated`).
  * **Contradiction / Conflict:** Large packaging mismatch: 4,100 SF purchased vs. 1,200 SF installed.

---

## 2. Conflicting Evidence & Contradiction Log

| Item / Scope | Stated Contract Evidence | Proposal / Assumption | Nature of Contradiction & Impact | Confirmation Status |
| :--- | :--- | :--- | :--- | :--- |
| **Silva Cell Geogrid Material** | Spec Section 32 94 51 Part 2.04.B: Approved products must be *net-shaped woven polyester with PVC coating* (`SF 20`, `Stratagrid SG 150`, `Miragrid 2XT`, `Fortrac 35`) `[3]`, `[123]`. | Biaxial Geogrid S4415: Extruded rigid *polypropylene* with 1.3" x 1.3" aperture `[135]`. | **Polymer Mismatch / Submittal Risk:** Polypropylene does not match specified coated polyester. Classified under `WEAK_OPPORTUNITIES` (`pursuit_status: needs_review`, confidence lowered to 0.70). | Open / Requires Engineer of Record (EOR) submittal variance. |
| **Parking Subgrade Remediation** | Sheet C-0.1 Note 11 & Sheet C-7.1 Detail S08 Note 1: Proof-roll yielding areas must be undercut 6" and backfilled with GAB compacted to 100% max dry density `[7]`, `[26]`, `[54]`. | Place Biaxial Geogrid R4413 at subgrade interface across 11,250 SF to eliminate undercut `[142]`. | **Contract Plan Method Variance:** Base bid specifies physical undercut; geogrid is an unapproved Value Engineering (VE) alternate. | Open / Requires Geotechnical Engineer & Owner approval. |
| **Heavy-Duty Apron & Construction Exit Base** | Sheet C-7.1 Detail S08 and Sheet C-7.7 Detail Co do not show or specify geogrid beneath aggregate layers `[7]`, `[70]`. | Deploy Biaxial Geogrid S4430 (4,500 SF) and R4441 (1,200 SF) `[146]`, `[150]`. | **Scope Addition:** Unprompted VE additions to contract documents. | Open / Voluntary contractor VE submittal. |
| **Plan Scale & Measurement Calibrations** | Active drawing set contains 8 distinct sheets (`C-0.1`, `C-3.1`, `C-4.1–C-4.5`, `C-7.1`, `C-7.3`, `C-7.7`, `LA-1.1`) `[125]`. | Active viewports yielded zero native vector scale anchors or calibrated pixel ratios (`units_per_pixel: null`, trace confidence: 0.0). | **Ballpark vs. Verified Takeoff:** All 5 quantities are uncalibrated model estimates; quantity confidence capped at 0.75 across all items. | Open / Requires trade contractor field takeoff reconciliation. |

---

## 3. Material Unknowns & Uncertainty Log

1. **Active Viewport Pixel Scale Resolution:**
   * *Unknown:* Exact drawing scales across Sheets C-3.1, C-4.1–C-4.5, C-7.1, C-7.3, and LA-1.1 (`units_per_pixel: null`).
   * *Impact:* Physical boundaries could not be verified by vector or raster measurement; reliance on typed and assumed priors.
2. **Subgrade Soft-Spot Yielding Rate:**
   * *Unknown:* Actual yielding rate during tandem-axle proof-rolling. The 25% assumption (11,250 SF / 1,250 SY) is an unverified regional prior on Piedmont residual soils (`[11]`, `[26]`, `[34]`).
   * *Scenario Sensitivity:* Range spans 6,750 SF (15% Low) to 45,000 SF (100% High continuous coverage).
3. **PaveDrain Net Parking Bay Footprint:**
   * *Unknown:* Exact delineation of permeable stall count and drainage interface bay geometry. Assumed prior: 20 stalls @ 9 ft x 18 ft (3,240 SF) + 760 SF interface = 4,000 SF net (`[36]`).
   * *Scenario Sensitivity:* Range spans 3,564 SF (-10% Low) to 6,156 SF (2-roll High).
4. **Product Packaging Roll Geometries for S4415 & S4430:**
   * *Unknown:* Factory roll width and length standards for Biaxial Geogrids S4415 and S4430 (`roll_dimensions: undefined`).
   * *Impact:* Order quantities for S4415 (1,600 SF) and S4430 (4,500 SF) are currently pegged directly to installed square footage without modeling factory roll cut scrap.
5. **Open Advisory Confirmation Questions (Trade Contractor Action Required):**
   * `sample-measurement-question-1`: Confirm 4,400 SF physical quantity for PaveDrain base (`[36]`, `[46]`, `[65]`, `[108]`).
   * `sample-measurement-question-2`: Confirm 1,600 SF physical quantity for Silva Cell perimeter (`[2]`, `[60]`, `[66]`, `[106]`, `[110]`, `[119]`, `[121]`).
   * `sample-measurement-question-3`: Confirm 11,250 SF physical quantity for parking subgrade undercut VE (`[7]`, `[10]`, `[11]`, `[26]`, `[34]`, `[54]`, `[125]`).
   * `sample-measurement-question-4`: Confirm 4,500 SF physical quantity for heavy-duty apron base (`[7]`, `[112]`, `[125]`).
   * `sample-measurement-question-5`: Confirm 1,200 SF physical quantity for construction exit (`[43]`, `[70]`).

---

## 4. Takeoff & Bill of Materials Reconciliation Summary

| Item ID | Proposed Product | Net Area | Installed Area | Order Quantity | Order Packaging Basis | Low Case | High Case | Confidence (Pursuit / Qty) | Evidence Type | QA Status |
| :--- | :--- | :--- | :--- | :--- | :--- | :--- | :--- | :--- | :--- | :--- |
| `pavedrain_bx1200_base_stab` | Biaxial Geogrid R4412 | 4,000 SF | 4,400 SF (489 SY) | 6,156 SF (684 SY) | 2 rolls @ 12.5' x 246' (342 SY) `[137]` | 3,564 SF | 6,156 SF | 0.95 / 0.75 | `ASSUMED` | `CONDITIONAL PASS` |
| `silva_cell_perimeter_geogrid` | Biaxial Geogrid S4415 | 1,387 SF | 1,600 SF (178 SY) | 1,600 SF (178 SY) | Unstated roll width; ~350 EA ties `[119]` | 1,387 SF | 1,800 SF | 0.70 / 0.75 | `DERIVED` | `NEEDS REVIEW` |
| `parking_subgrade_undercut_ve` | Biaxial Geogrid R4413 | 11,250 SF | 11,250 SF (1,250 SY) | 12,300 SF (1,368 SY) | 6 rolls @ 12.5' x 164' (228 SY) `[142]` | 6,750 SF | 45,000 SF | 0.85 / 0.75 | `ASSUMED` | `CONDITIONAL PASS` |
| `heavy_duty_apron_base_stabilization` | Biaxial Geogrid S4430 | 4,000 SF | 4,500 SF (500 SY) | 4,500 SF (500 SY) | Matched to installed area `[112]` | 4,000 SF | 5,200 SF | 0.80 / 0.75 | `ASSUMED` | `CONDITIONAL PASS` |
| `construction_exit_stabilization` | Biaxial Geogrid R4441 | 1,000 SF | 1,200 SF (133 SY) | 4,100 SF (456 SY) | 1 roll @ 12.5' x 328' (456 SY) `[150]` | 1,000 SF | 2,000 SF | 0.85 / 0.75 | `EXPLICIT` | `CONDITIONAL PASS` |
| **Site Totals** | — | **21,637 SF** | **22,750 SF (~2,528 SY)** | **28,656 SF (~3,184 SY)** | — | — | — | — | — | **CONDITIONAL PASS** |

### Associated Supported Material Volumes (Independent Cross-Checks)
* **ASTM #57 Clean Stone (PaveDrain Reservoir):** 4,000 SF * 1.0 ft / 27 = 148.1 CY (~222 tons @ 1.5 tons/CY) `[46]`.
* **GAB Undercut Excavation & Backfill Avoided:** 11,250 SF * 0.5 ft / 27 = 208.3 CY (~312 tons @ 1.5 tons/CY) `[7]`, `[54]`.
* **GAB Base (Heavy-Duty Concrete Apron):** 4,000 SF * 0.5 ft / 27 = 74.1 CY (~111 tons @ 1.5 tons/CY) `[7]`.
* **Concrete Slab (8" Heavy-Duty Apron):** 4,000 SF * (8/12) ft / 27 = 98.8 CY of 4,000 PSI concrete `[112]`.
* **NSA R-2 Riprap (Construction Exit Pad):** 1,000 SF * 0.5 ft / 27 = 18.5 CY (~28 tons @ 1.5 tons/CY) `[70]`.

---


# Engineering QA Review: Civil Takeoff & Opportunity Validation

**Project:** Sample Municipal Parking Improvements ([location withheld])  
**Engineer of Record (EOR):** [engineer withheld], [engineering firm withheld] / [engineering affiliate withheld]  
**Evidence Source:** `sample-evidence-record.json`  
**Tenant Configuration:** Biaxial Geogrid for Aggregate/Subgrade Stabilization (BALLPARK rules; external reference data disallowed)  
**Overall QA Determination:** **REVIEW (with 1 item BLOCKED)**

---

## 1. Executive Summary & Calibration Audit

| Audit Scope | Status | Provenance & Evidence Baseline |
| :--- | :---: | :--- |
| **Drawing Scale Calibration** | **BLOCK** | `units_per_pixel: null`, `trace_confidence: 0.0`. No graphic scale bars, native vector scales, or coordinate anchors were recovered across active viewports (`C-0.1`, `C-3.1`, `C-4.1`–`C-4.5`, `C-7.1`, `C-7.3`, `C-7.7`, `LA-1.1`). All planar footprints are uncalibrated ballpark assumptions. |
| **Material Specification Compliance** | **BLOCK** | Specification Section 32 94 51 Part 2.04.B explicitly mandates PVC-coated woven polyester. Extruded polypropylene was substituted without EOR variance. |
| **Packaging & Roll Arithmetic** | **REVIEW** | Roll square footage and packaging formulas exhibit internal rounding contradictions (e.g., 3,075 SF vs. 3,078 SF; 12% vs. 12.5% overlap). |
| **Subgrade & Structural Assumptions** | **REVIEW** | 25% soft-spot yielding and $k = 150\text{ pci}$ subgrade reaction modulus are unverified priors lacking a geotechnical engineering report. |

---

## 2. Document Provenance & Evidence Traceability

* **Reviewed Set:** Sheets `C-0.1`, `C-3.1`, `C-4.1`–`C-4.5`, `C-7.1`, `C-7.3`, `C-7.7`, `LA-1.1`; Specification Section 32 94 51 (Soil Cells).
* **Source Evidence Identifiers:** 41 unique citation tags (`[2]` through `[150]`) across 151 correlated evidence nodes.
* **Missing Evidence / Design Inputs:**
  1. Certified Geotechnical Engineering Investigation & Infiltration Report (required for proof-roll yielding rate, subgrade modulus $k$, and pavement structural sections per Sheet `C-0.1` Note 11).
  2. Native CAD / Vector plan drawing scale anchors or dimensioned boundaries for asphalt parking, concrete aprons, and permeable stall areas.
  3. Manufacturer technical product data sheets for standard roll widths/lengths of Biaxial Geogrid S4430 and S4415.

---

## 3. Detailed Item-by-Item Engineering QA Audit

### Item 1: Permeable Paver Base Stabilization Geogrid
* **Need ID:** `pavedrain_bx1200_base_stab`
* **Recommended Product:** Biaxial Geogrid R4412 (Incumbent: Tensar BX1200)
* **Source Identifiers:** Sheet `C-7.3` Detail *PAVEDRAIN STANDARD DETAIL CROSS-SECTIONS*, Sheet `C-3.1`, Sheet `LA-1.1`; `[30]`, `[36]`, `[46]`, `[65]`, `[74]`, `[108]`, `[131]`, `[137]`
* **Engineering QA Status:** **REVIEW**

#### Mathematical & Dimensional Verification
1. **Net Footprint Area:**
   $$\text{Area}_{\text{stalls}} = 20 \times (9.0\text{ ft} \times 18.0\text{ ft}) = 3,240.0\text{ SF}$$
   $$\text{Area}_{\text{net}} = 3,240.0\text{ SF} + 760.0\text{ SF (interface strips)} = 4,000.0\text{ SF} \quad (444.44\text{ SY}) \quad [\mathbf{PASS}]$$
2. **Installed Area (10% overlap/trim allowance):**
   $$\text{Area}_{\text{installed}} = 4,000.0\text{ SF} \times 1.10 = 4,400.0\text{ SF} \quad (488.89\text{ SY} \to \text{reported as } 489\text{ SY}) \quad [\mathbf{PASS}]$$
3. **Roll Area & Order Quantity Contradiction:**
   * Report states roll dimensions of $12.5\text{ ft} \times 246.0\text{ ft} = 342\text{ SY} / 3,078\text{ SF}$ requiring 2 whole rolls = $6,156\text{ SF}$ ($684\text{ SY}$).
   * **Calculated roll area:** $12.5\text{ ft} \times 246.0\text{ ft} = 3,075.0\text{ SF}$ ($341.67\text{ SY}$).
   * **Arithmetic Contradiction:** Stated roll area ($3,078\text{ SF}$) exceeds physical roll geometry ($3,075\text{ SF}$) by $3\text{ SF/roll}$. Two rolls equal $6,150.0\text{ SF}$, not $6,156.0\text{ SF}$. The report multiplied $342\text{ SY} \times 9 = 3,078\text{ SF}$, compounding an unrounded yardage conversion.
   * **Roll Requirement:** $4,400\text{ SF} / 3,075\text{ SF} = 1.431\text{ rolls} \to 2\text{ full rolls required } (6,150.0\text{ SF})$.
4. **Scenario Logic Inconsistency:**
   * Low scenario ($3,564\text{ SF}$) is labeled "$-10\%\text{ footprint, minimal lap}$". However, $4,000\text{ SF} \times 0.90 = 3,600\text{ SF}$. The value $3,564\text{ SF}$ exactly matches $3,240\text{ SF} \times 1.10$ (eliminating drainage strips while keeping a 10% lap). The label contradicts the calculation.
5. **Aggregate Check:**
   $$\text{Volume}_{\#57} = \frac{4,000.0\text{ SF} \times 1.0\text{ ft}}{27\text{ CF/CY}} = 148.15\text{ CY} \quad (\approx 148.1\text{ CY})$$
   $$\text{Weight} = 148.15\text{ CY} \times 1.5\text{ tons/CY} = 222.22\text{ tons} \quad (\approx 222\text{ tons}) \quad [\mathbf{PASS}]$$
* **Engineering Caveats:** Net stall footprint is an unscaled estimating prior. Separation geotextile (Mirafi FW402) at the subgrade interface is required by Sheet `C-7.3` and must remain separate. Tensar BX1200 is explicitly specified; substitution with R4412 requires EOR submittal approval.

---

### Item 2: Suspended Pavement Soil Cell Perimeter Geogrid
* **Need ID:** `silva_cell_perimeter_geogrid`
* **Recommended Product:** Biaxial Geogrid S4415 (Polypropylene)
* **Specified Basis:** Section 32 94 51 Part 2.04.B (PVC-Coated Woven Polyester: SF 20, Stratagrid SG 150, Miragrid 2XT, Fortrac 35)
* **Source Identifiers:** Specification Section 32 94 51 Parts 2.04.B & 3.10.C, Sheet `LA-1.1`; `[2]`, `[3]`, `[60]`, `[66]`, `[95]`, `[105]`, `[106]`, `[110]`, `[119]`, `[121]`, `[123]`, `[135]`
* **Engineering QA Status:** **BLOCK**

#### Mathematical & Dimensional Verification
1. **Perimeter Length:**
   * Layouts A1/A2: $2 \times 34\text{ LF} = 68.0\text{ LF}$
   * Layouts B1–B4: $4 \times 34\text{ LF} = 136.0\text{ LF}$
   * Layout C1: $1 \times 33\text{ LF} = 33.0\text{ LF}$
   * Layouts D1/D2: $2 \times 29\text{ LF} = 58.0\text{ LF}$
   $$\text{Perimeter}_{\text{total}} = 68.0 + 136.0 + 33.0 + 58.0 = 295.0\text{ LF across 9 vaults (126 frames)} \quad [\mathbf{PASS}]$$
2. **Developed Wrap Height:**
   $$H_{\text{developed}} = 3.2\text{ ft (frame)} + 0.5\text{ ft (6'' base toe)} + 1.0\text{ ft (12'' deck lap)} = 4.7\text{ ft} \quad [\mathbf{PASS}]$$
   *(Exact frame dimension: $38.35\text{ in} / 12 = 3.196\text{ ft}$; rounding to $3.2\text{ ft}$ produces $<0.1\%\text{ variance}$).*
3. **Net Vertical Face Area:**
   $$\text{Area}_{\text{net}} = 295.0\text{ LF} \times 4.7\text{ ft} = 1,386.5\text{ SF} \quad (\text{reported as } 1,387\text{ SF}) \quad [\mathbf{PASS}]$$
4. **Installed Area (15% corner return and 12-inch vertical overlap allowance):**
   $$\text{Area}_{\text{installed}} = 1,386.5\text{ SF} \times 1.15 = 1,594.48\text{ SF} \to \text{rounded to } 1,600.0\text{ SF} \quad (177.78\text{ SY} \to 178\text{ SY}) \quad [\mathbf{PASS}]$$
5. **Auxiliary Hardware Unit Check:**
   $$\text{Fasteners} \approx 2\text{ to } 3\text{ ties/post} \times 126\text{ units} \approx 350\text{ EA (plastic cable ties)} \quad [\mathbf{PASS}]$$
   *Unit compatibility confirmed: cable ties correctly tracked in EA and excluded from fabric SF.*
* **Engineering & Specification Fatal Flaw (BLOCK):**
  * Section 32 94 51 Part 2.04.B explicitly requires: *"Net-shaped woven polyester with PVC coating, uniaxial or biaxial geogrid"* with ultimate tensile strength $\ge 1,850\text{ lbs/ft}$ and creep-reduced strength $\ge 1,000\text{ lbs/ft}$.
  * The recommended product (S4415) is an **extruded polypropylene** geogrid. Extruded polypropylene possesses fundamentally different flexural stiffness, creep behavior, and installation bending properties around Silva Cell post corners than flexible PVC-coated polyester.
  * S4415 cannot be submitted as an approved equal under the current specification without written material variance from the Landscape Architect and EOR. Respecify to an approved coated polyester product (SF 20, SG 150, or Miragrid 2XT).

---

### Item 3: Parking Pavement Subgrade Stabilization and Undercut Mitigation
* **Need ID:** `parking_subgrade_undercut_ve`
* **Recommended Product:** Biaxial Geogrid R4413
* **Source Identifiers:** Sheet `C-0.1` Notes 11 & 28, Sheet `C-7.1` Detail S08 / Note 1, Sheet `C-7.3` Detail *Asphalt Pavement for Parking Lot*, Sheet `C-4.5` Soils Table; `[7]`, `[10]`, `[11]`, `[19]`, `[26]`, `[34]`, `[54]`, `[103]`, `[125]`, `[142]`
* **Engineering QA Status:** **REVIEW**

#### Mathematical & Dimensional Verification
1. **Site & Pavement Footprint:**
   $$\text{Disturbed Area} = 2.18\text{ AC} \times 43,560\text{ SF/AC} = 94,960.8\text{ SF} \quad (\text{reported as } 94,960\text{ SF}) \quad [\mathbf{PASS}]$$
   $$\text{Pavement Area} = 45,000.0\text{ SF} \quad (5,000.0\text{ SY}) \quad [\mathbf{PASS}]$$
2. **Net VE Targeted Area (25% soft-spot yielding prior):**
   $$\text{Area}_{\text{net}} = 45,000.0\text{ SF} \times 0.25 = 11,250.0\text{ SF} \quad (1,250.0\text{ SY}) \quad [\mathbf{PASS}]$$
3. **Installed Quantity Omission:**
   * Report sets $\text{Installed Area} = 11,250.0\text{ SF}$ ($0\%\text{ overlap allowance}$).
   * **Takeoff Discrepancy:** On soft subgrades, standard transverse and longitudinal overlaps of $1.0\text{ to } 2.0\text{ ft}$ are physically mandatory. Omitting overlap allowance creates an installed material deficit of $10\%\text{ to }15\%$ ($1,125\text{ to }1,688\text{ SF}$).
4. **Order Packaging:**
   $$\text{Roll Area} = 12.5\text{ ft} \times 164.0\text{ ft} = 2,050.0\text{ SF} \quad (227.78\text{ SY} \to 228\text{ SY})$$
   $$\text{Rolls Required} = \frac{11,250.0\text{ SF}}{2,050.0\text{ SF/roll}} = 5.488 \to 6\text{ full rolls} \quad (12,300.0\text{ SF} / 1,366.67\text{ SY}) \quad [\mathbf{PASS}]$$
5. **Avoided 6-inch Undercut Volume:**
   $$\text{Volume}_{\text{undercut}} = \frac{11,250.0\text{ SF} \times 0.5\text{ ft}}{27\text{ CF/CY}} = 208.33\text{ CY} \quad (\approx 208.3\text{ CY})$$
   $$\text{Weight}_{\text{GAB}} = 208.33\text{ CY} \times 1.5\text{ tons/CY} = 312.50\text{ tons} \quad (\approx 312\text{ tons}) \quad [\mathbf{PASS}]$$
* **Engineering & Geotechnical Caveats:** The 25% yielding rate on Wilkes-Iredell (WHD) and Helena (HyB) soils is an unverified heuristic prior. Contract Sheet `C-0.1` Note 11 governs: subgrade acceptance is strictly determined by loaded tandem-axle proof-rolling witnessed by the geotechnical engineer. Geogrid cannot replace undercut without geotechnical engineer written concurrence.

---

### Item 4: Heavy-Duty Concrete Pavement Base Reinforcement
* **Need ID:** `heavy_duty_apron_base_stabilization`
* **Recommended Product:** Biaxial Geogrid S4430
* **Source Identifiers:** Sheet `C-7.1` Detail S08, Sheet `C-0.1` Site Note 15, Sheet `C-3.1` Pavement Geometry; `[7]`, `[21]`, `[78]`, `[112]`, `[125]`, `[146]`
* **Engineering QA Status:** **REVIEW**

#### Mathematical & Dimensional Verification
1. **Net Footprint Area:** $\text{Area}_{\text{net}} = 4,000.0\text{ SF}$ (unscaled ballpark estimate).
2. **Overlap Factor Contradiction:**
   * BOM and Executive Summary formula: $4,000.0\text{ SF} \times 1.125\text{ (12.5\% overlap)} = 4,500.0\text{ SF}$ ($500.0\text{ SY}$).
   * Opportunity raw data / calculation trace: *"Net area: ~4,000 SF plus 12% lap/waste factor = 4,480 SF (rounded to 4,500 SF / 500 SY)"*.
   * **Arithmetic Contradiction:** $4,000 \times 1.12 = 4,480\text{ SF}$. Rounding $4,480\text{ SF}$ up to $4,500\text{ SF}$ without documenting the factor change from $12\%$ to $12.5\%$ represents an unverified $20\text{ SF}$ discrepancy.
3. **Order Packaging Defect:** Order quantity is set identically to installed quantity ($4,500\text{ SF}$) with no factory roll dimensions or packaging waste calculated.
4. **Base & Concrete Volume Checks:**
   $$\text{Volume}_{\text{GAB}} = \frac{4,000.0\text{ SF} \times 0.5\text{ ft}}{27\text{ CF/CY}} = 74.07\text{ CY} \quad (\approx 74.1\text{ CY}) \quad [\mathbf{PASS}]$$
   $$\text{Weight}_{\text{GAB}} = 74.07\text{ CY} \times 1.5\text{ tons/CY} = 111.11\text{ tons} \quad (\approx 111\text{ tons}) \quad [\mathbf{PASS}]$$
   $$\text{Volume}_{\text{concrete}} = \frac{4,000.0\text{ SF} \times (8/12)\text{ ft}}{27\text{ CF/CY}} = 98.77\text{ CY} \quad (\approx 98.8\text{ CY}) \quad [\mathbf{PASS}]$$
* **Structural & Geotechnical Caveats:** Detail S08 specifies 8-inch concrete over 6-inch GAB without geogrid. Subgrade reaction modulus $k = 150\text{ pci}$ is an unverified assumption requiring geotechnical verification. Inserting geogrid beneath a rigid concrete slab is an unprompted VE proposal that requires rigid pavement design verification (AASHTO / ACI 330R) by the EOR.

---

### Item 5: Construction Exit Working Pad Geogrid Stabilization
* **Need ID:** `construction_exit_stabilization`
* **Recommended Product:** Biaxial Geogrid R4441
* **Source Identifiers:** Sheet `C-4.1`, Sheet `C-4.2`, Sheet `C-4.3`, Sheet `C-7.7` Detail *Crushed Stone Construction Exit*; `[5]`, `[43]`, `[70]`, `[83]`, `[118]`, `[150]`
* **Engineering QA Status:** **REVIEW**

#### Mathematical & Dimensional Verification
1. **Explicit Geometry & Net Pad Area:**
   $$\text{Area}_{\text{net}} = 50.0\text{ LF (length)} \times 20.0\text{ LF (width)} = 1,000.0\text{ SF} \quad [\mathbf{PASS}]$$
2. **Installed Area (with flare transition):**
   $$\text{Area}_{\text{installed}} = 1,000.0\text{ SF} + 200.0\text{ SF (apron flare/anchorage)} = 1,200.0\text{ SF} \quad (133.33\text{ SY} \to 133\text{ SY}) \quad [\mathbf{PASS}]$$
3. **Roll Packaging & Utilization:**
   $$\text{Roll Area} = 12.5\text{ ft} \times 328.0\text{ ft} = 4,100.0\text{ SF} \quad (455.56\text{ SY} \to 456\text{ SY})$$
   $$\text{Utilization} = \frac{1,200.0\text{ SF}}{4,100.0\text{ SF}} = 29.27\% \quad (\text{reported as } 29\%) \quad [\mathbf{PASS}]$$
   *Surplus material retained for maintenance: $2,900.0\text{ SF}$ ($70.73\%$).*
4. **Crushed Stone Aggregate Volume Inconsistency:**
   $$\text{Volume}_{\text{net}} = \frac{1,000.0\text{ SF} \times 0.5\text{ ft}}{27\text{ CF/CY}} = 18.52\text{ CY} \quad (\approx 18.5\text{ CY} / 27.78\text{ tons} \to \approx 28\text{ tons}) \quad [\mathbf{PASS}]$$
   *Limitation:* The aggregate calculation evaluates only the $1,000\text{ SF}$ net pad and omits the $200\text{ SF}$ flare. Supporting the full $1,200\text{ SF}$ stabilized footprint requires $22.22\text{ CY}$ ($33.33\text{ tons}$).
* **Geotechnical & Regulatory Filtration Failure Risk (REVIEW):**
  * GSWCC Detail Co (Georgia Manual for Soil Erosion and Sediment Control) requires a separation geotextile beneath crushed stone exits.
  * Deploying open-aperture biaxial geogrid R4441 alone directly over fine Piedmont residual clays will allow native mud to pump up through the open apertures into coarse NSA R-2 stone ($1.5''\text{–}3.5''$) under heavy 12-month construction traffic.
  * A non-woven separation geotextile or a geogrid-geotextile composite is structurally required to prevent subgrade contamination and premature exit failure.

---

## 4. Reconciliation Ledger & Scenario Cross-Check

### BOM Quantity Summary Across All Scenarios

| Need ID / Opportunity | Unit | Net Area | Installed Area | Order Quantity | Low Case | Expected Case | High Case | Engineering QA Status |
| :--- | :---: | :---: | :---: | :---: | :---: | :---: | :---: | :---: |
| `pavedrain_bx1200_base_stab` | SF | 4,000 | 4,400 | 6,150 *(rep. 6,156)* | 3,564 | 4,400 | 6,150 *(rep. 6,156)* | **REVIEW** |
| `silva_cell_perimeter_geogrid` | SF | 1,387 | 1,600 | 1,600 | 1,387 | 1,600 | 1,800 | **BLOCK** |
| `parking_subgrade_undercut_ve`| SF | 11,250 | 11,250 | 12,300 | 6,750 | 11,250 | 45,000 | **REVIEW** |
| `heavy_duty_apron_base_stab` | SF | 4,000 | 4,500 | 4,500 | 4,000 | 4,500 | 5,200 | **REVIEW** |
| `construction_exit_stabilization`| SF | 1,000 | 1,200 | 4,100 | 1,000 | 1,200 | 2,000 | **REVIEW** |
| **Total Square Footage (SF)** | **SF** | **21,637** | **22,950** | **28,650** *(rep. 28,656)* | **16,701** | **22,950** | **60,150** *(rep. 60,156)* | **REVIEW** |
| **Total Square Yardage (SY)** | **SY** | **2,404.1** | **2,550.0** | **3,183.3** *(rep. 3,186)* | **1,855.7** | **2,550.0** | **6,683.3** | **REVIEW** |

*Note: Total Installed Area reconciles exactly: $22,950.0\text{ SF} / 9 = 2,550.0\text{ SY}$.*

### Independent Volume & Tonnage Cross-Checks

| Application | Material Supported | Thickness | Supporting Area | Calculated Volume | Reported Volume | Calculated Weight (@ 1.5 t/CY) | Reported Weight | Check Result |
| :--- | :--- | :---: | :---: | :---: | :---: | :---: | :---: | :---: |
| PaveDrain Base | ASTM #57 Stone | 12 in | 4,000 SF | 148.15 CY | 148.1 CY | 222.22 tons | ~222 tons | **PASS** |
| Silva Cell Posts | Plastic Cable Ties | N/A | 295 LF | 350 EA | ~350 EA | N/A | N/A | **PASS** |
| Parking Subgrade VE| Avoided GAB Undercut | 6 in | 11,250 SF | 208.33 CY | 208.3 CY | 312.50 tons | ~312 tons | **PASS** |
| Heavy-Duty Apron | Graded Aggregate Base | 6 in | 4,000 SF | 74.07 CY | 74.1 CY | 111.11 tons | ~111 tons | **PASS** |
| Heavy-Duty Apron | 4,000 PSI Concrete | 8 in | 4,000 SF | 98.77 CY | 98.8 CY | N/A | N/A | **PASS** |
| Construction Exit | NSA R-2 Riprap Stone | 6 in | 1,000 SF | 18.52 CY | 18.5 CY | 27.78 tons | ~28 tons | **PASS** |

---

## 5. Summary of Required Actions

1. **Respecify Silva Cell Geogrid (Mandatory BLOCK Resolution):**  
   Reject Biaxial Geogrid S4415. Respecify to PVC-coated woven polyester meeting Specification 32 94 51 Part 2.04.B (SF 20, Stratagrid SG 150, or Miragrid 2XT) or request formal EOR variance.
2. **Correct Roll & Overlap Arithmetic Contradictions:**  
   * Adjust R4412 2-roll packaging total from $6,156\text{ SF}$ to $6,150\text{ SF}$ ($2 \times [12.5\text{ ft} \times 246\text{ ft}]$).
   * Resolve Heavy-Duty Apron overlap factor between $12\%$ ($4,480\text{ SF}$) and $12.5\%$ ($4,500\text{ SF}$).
   * Add physical overlap allowance ($10\%\text{ to }15\%$) to Parking Subgrade VE installed quantity ($12,375\text{ to }12,938\text{ SF}$).
3. **Mandatory Field Confirmation of Drawing Scale:**  
   Because all viewports lack verified scale anchors (`trace_confidence: 0.0`), the 5 open advisory confirmation questions must be verified against field dimensions before procurement.
4. **Geotechnical & Regulatory Submittals:**  
   * Submit Parking Subgrade VE to Geotechnical Engineer of Record to establish actual proof-roll soft-spot yielding and undercut replacement.
   * Add non-woven geotextile separation under Construction Exit R4441 geogrid per GSWCC Detail Co standards.

---

## Opportunities with Review Flags

### Biaxial Geogrid S4415 (Pursuit Confidence: 70%)

*   **Recommended Product:** Biaxial Geogrid S4415
*   **Quantity Status:** source inputs present
*   **Justification:** Biaxial Geogrid S4415 provides rigid biaxial containment with a 1.3 in x 1.3 in aperture [135](#source-135) for continuous vertical perimeter wrapping around 126 DeepRoot Silva Cell 1X suspended pavement frames across 9 vault areas [110](#source-110), [121](#source-121). It restrains compacted backfill from migrating into uncompacted planting soil [2](#source-2), [66](#source-66), [106](#source-106); however, because Section 32 94 51 Part 2.04.B calls out coated woven polyester (SF 20, Stratagrid SG 150, Miragrid 2XT) [3](#source-3), [123](#source-123), submitting polypropylene geogrid represents an alternate material requiring engineer verification.

---

## Appendix: Raw Data Extracts

### The PaveDrain permeable articulating concrete block paver system requires aggregate base stabilization over the open-graded stone bedding reservoir [46], [69]. Detail cross-sections explicitly call out 'BX1200 GEOGRID (RECOMMENDED)' placed above or within the 12-inch AASHTO/ASTM #57 clean angular stone layer [30], [46], [65], with Mirafi FW402 geotextile specified for bottom subgrade separation [74], [108]. Tensar BX1200 biaxial polypropylene geogrid is directly recommended by name to interlock the open-graded angular stone, prevent lateral spreading under vehicular wheel loads, and stabilize the pavement section without impeding vertical drainage infiltration into the subgrade. This represents a prime competitive displacement opportunity where high-performance biaxial geogrid or an approved equal stabilization geogrid can displace the incumbent Tensar BX1200 or TriAx alternative [30]. (Sheet C-7.3 Detail 'PAVEDRAIN STANDARD DETAIL CROSS-SECTIONS', Sheet C-3.1, Sheet LA-1.1)

**Specifications:**


**Dimensional Data:**
```json
{
  "stone_type": "AASHTO/ASTM #57 clean angular stone",
  "minimum_overlap": "12 in",
  "estimated_net_area": "4000 SF",
  "bedding_reservoir_thickness": "12 in",
  "installed_area_with_overlap": "4400 SF"
}
```

### Sheet C-0.1 (Grading Note 11) and Sheet C-7.1 (Concrete Paving Note 1) state that following subgrade preparation, the subgrade must be proof-rolled in the presence of the soils engineer with a fully loaded tandem axle dump truck; any soft or yielding areas encountered must be stabilized by compaction or undercut to a depth of 6 inches and backfilled with Graded Aggregate Base (GAB) compacted to 100% maximum dry density [7], [26], [34], [54]. Geotechnical and soils mapping on Sheet C-4.5 identifies Wilkes-Iredell cobbly complex (WHD) and Helena sandy loam (HyB), which feature moisture-sensitive clays prone to yielding and pumping when exposed to construction traffic and moisture [10], [11]. Installing biaxial geogrid directly at the subgrade/aggregate interface beneath the standard 8-inch GAB asphalt section provides mechanical interlock, lateral restraint, and subgrade confinement [19], [103]. This offers high-value engineering (VE) by bridging localized soft zones, preventing rutting, and avoiding or minimizing costly 6-inch undercut excavation and virgin crushed aggregate replacement [7], [54]. (Sheet C-0.1 Notes 11 & 28, Sheet C-7.1 Detail S08/Note 1, Sheet C-7.3 Detail 'Asphalt Pavement for Parking Lot', Sheet C-4.5 Soils Table)

**Specifications:**


**Dimensional Data:**
```json
{
  "asphalt_surface_course": "1.25 in (9.5 mm Superpave Type II)",
  "baseline_gab_thickness": "8 in",
  "specified_undercut_depth": "6 in",
  "asphalt_intermediate_course": "2 in (19 mm Superpave)",
  "full_pavement_area_scenario": "45000 SF (5000 SY)",
  "targeted_soft_area_allowance": "11250 SF (1250 SY)"
}
```

### Sheets C-4.1, C-4.2, C-4.3, and C-7.7 require a temporary Crushed Stone Construction Exit (GSWCC code Co) located at Lat: [latitude withheld], Long: [longitude withheld] off the site access road [43], [83], [118]. Detail on Sheet C-7.7 requires a crushed stone pad with a minimum 50-foot length, 20-foot width, and 6-inch thickness consisting of National Stone Association R-2 aggregate (1.5-inch to 3.5-inch stone) [70]. The 12-month construction phasing schedule involves extensive clearing, earthwork hauling, and heavy utility installation [5]. Placing coarse 1.5" to 3.5" R-2 rock over fine-grained subgrade causes stones to punch into the yielding native subgrade under heavy loaded trucks, resulting in pad clogging, rutting, and continuous stone replenishment [70]. Placing a biaxial geogrid (or biaxial geogrid composite) under the 6-inch stone pad interlocks the coarse stone, provides wide load distribution, prevents subgrade intrusion, and maintains pad effectiveness throughout construction [70]. (Sheet C-4.1, Sheet C-4.2, Sheet C-4.3, Sheet C-7.7 Detail 'Crushed Stone Construction Exit')

**Specifications:**


**Dimensional Data:**
```json
{
  "minimum_pad_width": "20 ft",
  "minimum_pad_length": "50 ft",
  "minimum_pad_thickness": "6 in",
  "total_stabilized_area": "1200 SF"
}
```

### Sheet C-7.1 (Detail S08) specifies an 8-inch 4,000 PSI concrete pavement over a 6-inch Graded Aggregate Base (GAB) layer over compacted subgrade [7], [112]. Concrete Paving Note 1 specifies tandem axle proof-rolling and undercutting of soft areas [7], [54], while Site Note 15 on Sheet C-0.1 highlights protection for 'vulnerable truck areas' [78]. Concrete pavements subjected to heavy commercial loading (solid waste trucks, delivery vehicles, emergency equipment) are susceptible to subgrade pumping, base degradation, and joint faulted cracking when subgrade support is uneven. Installing a rigid biaxial stabilization geogrid directly beneath the 6-inch GAB base layer reinforces the granular platform, increases the composite modulus of subgrade reaction (k-value), restrains aggregate spreading, and minimizes slab edge deflections under cyclic loading [7], [21]. (Sheet C-7.1 Detail S08, Sheet C-0.1 Site Note 15, Sheet C-3.1 Pavement Geometry)

**Specifications:**


**Dimensional Data:**
```json
{
  "net_pavement_area": "4000 SF",
  "gab_base_thickness": "6 in",
  "total_area_with_lap": "4500 SF",
  "concrete_slab_thickness": "8 in"
}
```

### Specification Section 32 94 51 (Soil Cells) and Sheet LA-1.1 govern the installation of 126 DeepRoot Silva Cell 1X suspended pavement frames across 9 distinct site areas [110], [121]. Section 3.10.C and Sheet LA-1.1 require installing geogrid continuously around the vertical perimeter of the Silva Cell system where compacted backfill meets uncompacted planting soil to prevent lateral backfill migration and structural loss [2], [66], [106]. The specification requires cutting geogrid with a 6-inch overlap at the base and a 12-inch overlap over the top deck, maintaining a minimum 12-inch overlap between adjacent sheets, and fastening to post ridges with plastic cable ties [2], [66], [106], [119]. Section 2.04.B explicitly names SF 20 Biaxial Geogrid, Stratagrid SG 150, Miragrid 2XT, and Fortrac 35 as approved products [3], [95], [123]. This provides a direct bid-specification opportunity for high-modulus coated biaxial geogrid meeting 1,850 lbs/ft ultimate tensile strength (ASTM D6637) and 950 lbs/ft LTADS (GRI GG-4) [3], [95], [105], [123]. (Specification Section 32 94 51 Parts 2.04.B & 3.10.C, Sheet LA-1.1 Details & Site Plan)

**Specifications:**


**Dimensional Data:**
```json
{
  "base_overlap_toe": "6 in (150 mm)",
  "deck_overlap_top": "12 in (300 mm)",
  "total_system_units": "126 1X Units across 9 Areas",
  "frame_system_height": "38.35 in (approx. 3.2 ft)",
  "adjacent_sheet_overlap": "12 in (300 mm)",
  "total_perimeter_length": "295 LF"
}
```

## Project Actions

*   **Pitch VE subgrade stabilization to replace parking lot undercut** (Opportunity: Parking Pavement Subgrade Stabilization and Undercut Mitigation): Draft a value engineering proposal for the general contractor and engineer of record ([engineering firm withheld]) proposing Biaxial Geogrid R4413 at the subgrade interface across the asphalt parking area. Highlight how mechanical interlock and subgrade confinement mitigate soft-spot yielding during tandem-axle proof-rolling on Piedmont residual clays, replacing the 6-inch undercut and virgin GAB backfill over an estimated 11,250 SF (saving approx. 208 CY of excavation and stone).
*   **Submit approved-equal submittal displacing Tensar BX1200 under PaveDrain** (Opportunity: Permeable Paver Base Stabilization Geogrid): Prepare an approved-equal submittal package for Biaxial Geogrid R4412 to displace the incumbent Tensar BX1200 called out on Sheet C-7.3 for the PaveDrain permeable paver reservoir. Emphasize side-by-side parity in aperture dimensions (1.0 in x 1.3 in), 93% junction efficiency, and radial interlock of AASHTO/ASTM #57 clean stone without restricting vertical infiltration into the subgrade across the 4,400 SF installed footprint.
*   **Propose geogrid stabilization for the site access road construction exit pad** (Opportunity: Construction Exit Working Pad Geogrid Stabilization): Create a contractor cost-reduction technical memo recommending large-aperture Biaxial Geogrid R4441 (1 roll / 4,100 SF) installed beneath the temporary 6-inch stone construction exit off the site access road (Sheet C-7.7 Detail Co). Explain how interlocking 1.5-to-3.5-inch NSA R-2 aggregate prevents stone loss and subgrade punching under heavy hauling traffic over the 12-month construction phasing schedule.

---

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[Source 1] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 51
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[Source 51] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 52] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 49
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[Source 59] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 39
[Source 60] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 53
[Source 61] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 19
[Source 62] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 49
[Source 63] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 64] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 65] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 21
[Source 66] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 36
[Source 67] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 49
[Source 68] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 24
[Source 69] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 30
[Source 70] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 25
[Source 71] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 12
[Source 72] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 54
[Source 73] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 22
[Source 74] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 21
[Source 75] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 76] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 77] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 23
[Source 78] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 7
[Source 79] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 54
[Source 80] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 31
[Source 81] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 50
[Source 82] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 31
[Source 83] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 13
[Source 84] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 52
[Source 85] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 31
[Source 86] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 22
[Source 87] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 40
[Source 88] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 31
[Source 89] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 39
[Source 90] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 53
[Source 91] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 44
[Source 92] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 35
[Source 93] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 41
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[Source 96] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 35
[Source 97] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 17
[Source 98] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 52
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[Source 103] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 21
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[Source 113] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 49
[Source 114] Sample Municipal Parking Improvements_Plans-and-Specifications.pdf, Page 19
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[Source 129] Biaxial Geogrid R4441 Product Data Sheet.pdf, Page 1
[Source 130] Biaxial Geogrid R4413 Product Data Sheet.pdf, Page 1
[Source 131] Biaxial Geogrid R4412 Product Data Sheet.pdf, Page 1
[Source 132] 2015-04-01_Geosynthetics_NRCS-NEH-Spec-65-ACB-Revetment.pdf.pdf, Page 1
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[Source 134] 1991-07-01_Geosynthetics_usace-em-1110-2-1601-chapter-3-riprap-protection-design-guide-summary.pdf.pdf, Page 90
[Source 135] Biaxial Geogrid S4415 Product Data Sheet.pdf, Page 1
[Source 136] Biaxial Geogrid R4411 Product Data Sheet.pdf, Page 1
[Source 137] Biaxial Geogrid R4412 Product Data Sheet.pdf, Page 1
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[Source 141] Biaxial Geogrid R4411 Product Data Sheet.pdf, Page 1
[Source 142] Biaxial Geogrid R4413 Product Data Sheet.pdf, Page 1
[Source 143] 2003-08-20_Geosynthetics_USACE-EM-1110-2-2104-Strength-Design-RC-Hydraulic-Structures.pdf.pdf, Page 127
[Source 144] 2001-03-31_Geosynthetics_USACE-EM-1110-2-2000-Standard-Practice-for-Concrete.pdf.pdf, Page 26
[Source 145] 2003-08-20_Geosynthetics_USACE-EM-1110-2-2104-Strength-Design-RC-Hydraulic-Structures.pdf.pdf, Page 97
[Source 146] Biaxial Geogrid S4430 Product Data Sheet.pdf, Page 1
[Source 147] 1990-10-24_Geosynthetics_usace-em-1110-2-2302-large-stone-construction-riprap-armor-stone-guide.pdf.pdf, Page 21
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[Source 150] Biaxial Geogrid R4441 Product Data Sheet.pdf, Page 1
[Source 151] Biaxial Geogrid R4411 Product Data Sheet.pdf, Page 1

        
      