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Product Engineering Reference

Wedge Anchors

A comprehensive engineering reference for structural engineers, EPC contractors, facility managers and procurement teams — covering wedge anchor expansion mechanics, failure mode analysis, ACI 318 design capacity, installation requirements, minimum embedment and edge distance, material grades and full project documentation.

ACI 318 Ch.17 / EN 1992-4 ICC-ES Evaluated M8 – M36 / 1/4" – 1-1/4" CS · HDG · SS 304/316 · Duplex Concrete f'c 17–55 MPa EN 10204 3.1 MTC
Wedge Anchors by RR Hydraulics
500+
SKUs in Stock
M8–M36
Metric Range
1/4"–1-1/4"
Inch Range
6+
Distinct Types
8+
Material Grades
48 hr
Express Dispatch
Part 01

Wedge Anchor Types, Expansion Mechanics
& Failure Mode Analysis

Wedge Anchor types and expansion mechanics
Part 01 — Types, Expansion Mechanics & Failure Mode Analysis
Wedge Anchor · Expansion Clip · ACI 318 · ICC-ES
Steel Failure · Concrete Breakout · Pull-Out · Side-Face Blowout
Wedge Anchor · Mechanical Expansion Anchor · Post-Installed Anchor · ACI 318 Ch.17 · EN 1992-4 · ICC-ES · Expansion Clip · Cone Pull-Out · Concrete Breakout · Steel Failure · Side-Face Blowout · Tension · Shear · 

Definition and Engineering Function

A wedge anchor is a post-installed mechanical expansion anchor that develops its holding capacity in hardened concrete by the wedge-expansion action of a stainless or carbon steel expansion clip (sleeve) that is forced outward against the concrete hole wall as the anchor bolt is tightened. Unlike cast-in-place anchor bolts that are embedded before concrete is poured, wedge anchors are installed after the concrete has achieved its specified compressive strength — by drilling a hole, inserting the anchor, and tightening the nut to expand the clip and create bearing contact against the concrete.

The wedge anchor consists of four principal components: a threaded bolt body with a tapered cone at its embedded tip, a serrated expansion clip positioned over the cone, a washer and a nut. When the nut is tightened, the bolt is drawn upward (relative to the hole), pulling the tapered cone into the expansion clip and forcing the clip outward into the concrete. The resulting friction and bearing contact between the clip and the concrete hole wall generates the anchor's resistance to tensile (pull-out) and shear loads. The wedge anchor is suitable only for installation in hardened concrete — it cannot be used in masonry, hollow block, grout, timber or other base materials without specific engineering evaluation.

Engineering Principle — Expansion Clip Bearing Mechanics

The wedge anchor develops its tensile capacity through the bearing of the expansion clip segments against the concrete hole wall. As the nut is tightened, the bolt's tapered cone is drawn into the clip, spreading it radially outward. The clip exerts a normal (radial) force on the concrete and the resulting friction force resists the axial withdrawal of the anchor. For a correctly specified and installed wedge anchor in concrete of adequate strength, the governing failure mode should be steel fracture (bolt body tensile fracture) rather than concrete failure — this is the ductile design objective defined in ACI 318-19 Chapter 17. If concrete failure governs (concrete breakout, pull-out or side-face blowout), the failure is brittle and sudden without warning — unacceptable for safety-critical structural connections.

Request a Formal Quotation — Wedge Anchors, All Sizes & Grades
CS Zinc / HDG / SS 304/316 / Duplex · M8–M36 · ICC-ES available · EN 10204 MTC

Wedge Anchor Anatomy — Four Key Zones

Hex Nut & Washer
Above concrete surface
Standard hex nut and flat washer sit above the concrete surface. The washer distributes the bearing load under the nut over a defined area. The nut is tightened to the specified installation torque to expand the clip — over-tightening can fracture the bolt shank; under-tightening produces insufficient clip expansion and reduced capacity.
Threaded Bolt Body
Full-thread or partial-thread
The main bolt body carries the structural load from the connected element to the expansion clip zone. Available in full-thread (entire length) or partial-thread (unthreaded shank below the nut engagement zone). The shank diameter and steel grade determine the steel tension and shear capacity of the anchor.
Expansion Clip
Serrated; forced outward by cone
The serrated expansion clip is the critical bearing element. As the bolt is tightened, the tapered cone at the bolt tip is pulled into the clip from below, spreading the clip segments radially against the concrete hole wall. The serrations on the clip grip the concrete surface to resist rotational and axial movement. Clip material must be harder than the concrete to maintain bearing.
Tapered Cone Tip
Drives clip expansion
The tapered cone at the lower end of the bolt body is the mechanism that converts the tightening torque into radial clip expansion. The cone angle determines the mechanical advantage of the expansion — a steeper cone produces higher radial force per unit of axial movement but may be harder to set. The cone tip bottoms out on the drilled hole floor when fully installed.

Wedge Anchor Types

Standard Wedge Anchor
ASTM F1554 / ICC-ES
The most widely used post-installed concrete anchor globally. Threaded bolt body, expansion clip, washer and hex nut. Zinc-plated carbon steel for indoor and sheltered applications; HDG for outdoor structural use. Sizes M8–M36 (3/8"–1-1/4"). General structural connections, machinery base plates, equipment anchorage, mezzanine floors and racking systems. Not suitable for cracked concrete without specific ICC-ES seismic evaluation.
Heavy-Duty Wedge Anchor
High-load / industrial
Enlarged clip design and heavier bolt section providing higher load capacity per size compared to standard wedge anchors. Used for heavy structural connections, crane rail anchorage, industrial machinery with high dynamic loads, and structural steel column bases where high individual anchor loads are required. ICC-ES evaluated for specific concrete strengths and embedment depths.
Stainless Steel Wedge Anchor
SS 304 / SS 316 (A4)
Complete stainless steel assembly — bolt body, clip, washer and nut in SS 304 or SS 316. For outdoor, coastal, chemical, marine and food-grade environments where carbon steel anchors would corrode in service. SS 316 mandatory for coastal or chloride-exposed concrete (within 1 km of sea). Used in marine structures, seawater treatment plants, external architectural concrete, swimming pool surrounds and chemical plants.
Seismic / Cracked Concrete Anchor
ICC-ES AC193 / ACI 318 seismic
Wedge anchor specifically designed and ICC-ES evaluated for installation in cracked concrete and for use in seismic design categories C, D, E and F per IBC. The clip design maintains its expansion capacity in concrete cracks that open under seismic ground motion — standard wedge anchors lose capacity when the surrounding concrete cracks. Requires specific ICC-ES evaluation report (ESR number) for seismic use; do not substitute a standard wedge anchor in seismic-zone applications.
Through-Bolt (European Type)
DIN 529 · EN 1992-4
European-design wedge anchor where the bolt passes through the fixture (base plate or bracket) before being inserted into the concrete hole. The through-bolt design allows the fixture to be removed without disturbing the anchor body in the concrete — useful for removable structural connections. The expansion sleeve is permanently set in the concrete; the bolt can be un-threaded and the fixture removed. DIN 529 standard; widely used in European construction and machinery mounting.
NACE MR0175 Compliant
Sour service · ≤22 HRC
Wedge anchor manufactured from bar stock verified to ≤22 HRC (237 HB) throughout for use in H≶S sour service concrete structures — offshore topsides, refinery paving slabs, and petrochemical facility structural connections in H≶S atmospheric zones. The expansion clip and all components must also comply with NACE hardness limits. Full cross-section hardness mapping required in the EN 10204 3.1 MTC.

Failure Modes — ACI 318 Chapter 17

ACI 318-19 Chapter 17 defines five possible failure modes for post-installed mechanical anchors in concrete. The design must ensure that the steel fracture mode governs (ductile failure) rather than any concrete failure mode (brittle failure):

Steel Fracture (Tension)
Bolt shank fractures at the net tensile stress area. The preferred (ductile) failure mode. Controlled by bolt diameter and material grade. Capacity = A_se × f_uta. Governs only when concrete strength, embedment and edge distance are adequate.
Concrete Breakout (Tension)
A cone of concrete breaks out around the anchor under tensile pull-out. Brittle failure. Governs when embedment depth is too shallow or concrete strength is too low. ACI 318 Eq.17.6.2.2b: N_b = k_c × λ × f'c^0.5 × h_ef^1.5. Increases with embedment depth squared (h_ef^1.5).
Pull-Out / Pull-Through
Anchor is pulled out of the concrete without a full breakout cone — the expansion clip slips or loses bearing contact with the hole wall. Occurs when the bearing area of the clip is insufficient, concrete is too weak, or the hole is drilled oversize. A pull-out failure is sudden and provides no warning.
Concrete Side-Face Blowout
Lateral spalling of the concrete side face when the anchor is installed too close to a free edge. The bearing stress from the expansion clip creates a splitting force toward the nearest concrete edge. Minimum edge distance requirements per ACI 318 Table 17.7.1 prevent this mode.
Steel Shear Failure
Bolt shank shears off at the concrete surface under lateral (shear) loading. Preferred shear failure mode (ductile). Capacity = 0.6 × A_se × f_uta. Governs when base plate provides close fit to anchor and concrete does not control. Shear lug or oversize hole affects the shear load transfer.
Concrete Pryout (Shear)
Concrete pries out behind the anchor under shear loading applied close to a free edge — the anchor pivots, pushing the concrete behind it away. Occurs in shallow embedment or near free edges under shear. ACI 318 Eq.17.7.3.1: V_cp = k_cp × N_cp where k_cp = 1.0 (h_ef < 65 mm) or 2.0 (h_ef ≥ 65 mm).
Part 02

Dimensional Data, Minimum Embedment
& Load Capacity Reference

Wedge Anchor dimensional data
Part 02 — Dimensional Data, Embedment & Load Capacity
ACI 318 · Drill Diameter · Min. Embedment · Min. Edge Distance
Tension Capacity · Shear Capacity · f'c 20–35 MPa
M10 · M12 · M16 · M20 · M24 · Drill Diameter · Min. Embedment h_ef · Min. Edge Distance · Min. Spacing · Hole Depth · Tension Capacity · Shear Capacity · ACI 318 · ICC-ES · Concrete f'c · 
Sourcing Wedge Anchors for a Structural or Industrial Project?
All sizes · Zinc / HDG / SS · ICC-ES / EN 10204 documentation · Bulk project pricing available

Critical Installation Dimensions

A wedge anchor requires five parameters to be correctly specified and installed: (1) Anchor diameter — determines the drill bit size and load capacity; (2) Drill-hole diameter — must exactly match the anchor diameter (no oversize allowed — oversize holes prevent the clip from contacting the concrete and drastically reduce capacity); (3) Minimum embedment depth h_ef — the depth from the concrete surface to the bearing surface of the expansion clip; (4) Minimum edge distance c_a — from anchor centreline to nearest concrete edge (prevents side-face blowout and breakout at edges); and (5) Minimum anchor spacing s — between adjacent anchors in a group (prevents interaction between breakout cones).

Critical Installation Warning — Drill Hole Diameter Tolerance

The drill-hole diameter for a wedge anchor must exactly match the specified anchor diameter — drill bits of the correct size must be used, and must be verified as not worn beyond their usable tolerance limit. A hole drilled even 1–2 mm oversize (e.g., using a worn 10 mm bit for an M10 anchor) will prevent the expansion clip from achieving contact with the concrete hole wall under the specified installation torque — resulting in a pull-out capacity that may be 30–80% lower than the published design value. Oversize holes cannot be corrected — the anchor must be relocated. Verify drill bit size before each hole; replace worn bits. Rotary hammer drill (not core drill) with the manufacturer-specified SDS or SDS-Max bit is required for wedge anchor holes.

Table 1 — Wedge Anchor Dimensions & Minimum Installation Requirements (Metric)
Anchor Dia.Drill Dia. (mm)Min h_ef (mm)Max h_ef (mm)Min Edge Dist. c_a (mm)Min Spacing s (mm)Min Concrete Thick. (mm)
M8860806060120
M1010701007070140
M1212801258090160
M1616100170100110200
M2020125200130140250
M2424150250160160300
M3030190300200200380
M3636230380240250460

Indicative minimum dimensions based on standard wedge anchor manufacturer data and ACI 318-19 Ch.17 requirements for uncracked concrete, f'c ≥ 20 MPa. Actual minimum embedment and spacing requirements depend on the applied loads, concrete strength and ICC-ES evaluation report for the specific anchor product. Always use the product-specific ICC-ES report (ESR number) dimensions for design — not generic table values. Minimum concrete thickness = h_ef + h_ef/3 (minimum) to prevent breakout through the underside of the concrete element.

Table 2 — Indicative Tension & Shear Capacity (Carbon Steel Wedge Anchor, f'c = 25 MPa, Uncracked Concrete)
Anchor Dia.h_ef (mm)Steel Tension (kN)Concrete Breakout Tension (kN)Pull-Out (kN)Steel Shear (kN)Governing Mode
M107028.518.222.016.8Concrete breakout
M1010028.533.632.016.8Steel (tension)
M128041.422.528.024.4Concrete breakout
M1212541.455.144.024.4Steel (tension)
M1610073.633.648.043.2Concrete breakout
M1617073.610680.043.2Steel (tension)
M2012511555.172.067.4Concrete breakout
M2020011514011267.4Steel (tension)

Indicative characteristic values only — for design guidance. Actual design values must be taken from the product-specific ICC-ES Evaluation Report (ESR) or ETAG 001 assessment for the exact anchor product, concrete grade and configuration. Design loads = characteristic × φ (ACI 318: φ = 0.65 for cast-in; φ = 0.65×0.75 = 0.49 for post-installed in cracked concrete). Steel tension capacity based on ASTM A36 / Grade 4.6 bolt. "Steel governs" (ductile) requires adequate embedment AND minimum edge distances.

ACI 318-19 — Single Wedge Anchor Concrete Breakout Capacity in Tension N_b = k_c × λ × f'c^0.5 × h_ef^1.5 // Basic concrete breakout [N]; ACI 318 Eq.17.6.2.2b
k_c = 7 (post-installed) // ACI 318: post-installed anchors use k_c=7 (vs 10 for cast-in)
λ = 1.0 (NW concrete) or 0.75 (LW) // Lightweight concrete modification factor

// WORKED EXAMPLE: M16 wedge anchor, h_ef=170 mm, f'c=25 MPa, NW concrete, uncracked
N_b = 7 × 1.0 × 25^0.5 × 170^1.5 = 7 × 5.0 × 2214 = 77,490 N ≈ 77.5 kN
// φN_b = 0.65 × 0.75 × 77.5 = 37.8 kN (post-installed, cracked concrete β=0.75)
// For uncracked concrete: φN_b = 0.65 × 77.5 = 50.4 kN
Part 03

Material Grades, Mechanical Properties
& Surface Treatments

Wedge Anchor materials and coatings
Part 03 — Materials, Mechanical Properties & Surface Treatments
Carbon Steel · HDG · SS 304/316 · Duplex 2205
ASTM F1554 · NACE MR0175 · Zinc Plate · Epoxy
Carbon Steel Gr.4.6 · Gr.5.8 · ASTM F1554 Gr.55 · A193 B7 · B7M NACE · SS 304 A2 · SS 316 A4 · Duplex 2205 · HDG A153 · Zinc B633 · Epoxy · Climaseal · 
Table 3 — Material Grades: Properties, Corrosion & Applications
GradeStandardYield (MPa)UTS (MPa)HardnessCorrosionApplication
CS Grade 4.6ISO 898-1≥240≥400≤250 HVLowIndoor dry structural; light loads
CS Grade 5.8ISO 898-1≥400≥500≤300 HVLowGeneral structural, machinery, racking
CS Grade 8.8ISO 898-1≥640≥800225–300 HVLowHeavy structural, high-load anchors
ASTM F1554 Gr.36ASTM F1554≥248≥400≤237 HBLowStandard US structural; HDG compatible; weldable
ASTM F1554 Gr.55ASTM F1554≥380≥517≤255 HBLowMedium-high load US structural; weldable
ASTM A193 B7M (NACE)ASTM A193≥724≥862≤235 HBLowSour service; NACE MR0175 compliant
SS 304 (A2)ISO 3506-1≥210≥500≤220 HVHighOutdoor, coastal-adjacent, food, water
SS 316 (A4)ISO 3506-1≥210≥500≤220 HVVery HighCoastal, marine, chloride, chemical
Duplex 2205ASTM A182 F51≥450≥620≤310 HBVery HighOffshore, sour service, high-chloride concrete
Table 4 — Surface Treatment Options for Wedge Anchors
FinishStandardThickness (µm)Salt Spray (hrs)Notes & Application
Zinc electroplateASTM B633 SC28–1396–120Indoor structural; sheltered; light corrosion protection
Mechanically galvanisedASTM B695 Cl.1212 min200No HE risk; outdoor sheltered; better than electroplate
Hot-dip galvanisedASTM A153 Class C/D45–86500+Standard outdoor structural; coastal-adjacent; thread re-tap after HDG
Climaseal / GeometISO 106838–12480–720High-strength bolts; no HE; outdoor; alternative to HDG for 8.8
Epoxy coatASTM A775175–3001000+Coastal and marine concrete environments; bridges; water infrastructure
SS 304 passivationASTM A380N/A1000+All SS 304 anchors; mandatory post-machining
SS 316 passivationASTM A380N/A1000+All SS 316 anchors; coastal / marine / chloride environments

NOTE: The expansion clip of the wedge anchor must be made from material compatible with the anchor bolt and with the concrete environment. A stainless steel anchor body with a carbon steel clip will produce galvanic corrosion at the clip — specify full SS assembly (bolt + clip + washer + nut) for corrosion-resistant applications. For HDG anchors, verify that the HDG coating does not prevent the expansion clip from seating correctly in the hole — some manufacturers specify that HDG wedge anchors use a hole drilled 1 mm oversize to accommodate the HDG thickness on the anchor body.

Part 04

Installation Requirements, QC,
Applications & Export Documentation

Wedge Anchor installation and QC
Part 04 — Installation, QC, Applications & Documentation
Rotary Hammer · SDS Bit · Hole Cleaning · Installation Torque
Structural · Industrial · Seismic · Marine · Offshore
Rotary Hammer Drill · SDS-Plus · SDS-Max · Hole Cleaning · Installation Torque · Torque Wrench · Pull-Test · EN 10204 3.1 · ICC-ES ESR · Structural · Industrial Machinery · Mezzanine · Seismic SDC · Marine · Offshore · 

Installation Requirements

Step 1 — Drilling

Drill the hole with a rotary hammer drill (never a core drill — core-drilled holes have a smoother surface and reduced pull-out capacity compared to hammer-drilled holes) using an SDS-Plus or SDS-Max carbide-tipped bit of the exact diameter specified for the anchor size. Drill to the required hole depth (minimum = embedment depth + 6 mm clearance for drill tip). Keep the drill perpendicular to the concrete surface — an angular hole reduces the bearing contact of the expansion clip. Do not use a worn or chipped drill bit — replace bits that have drilled more than their rated number of holes per the manufacturer's wear recommendation.

Step 2 — Hole Cleaning

Clean the drilled hole of all loose concrete dust and debris before inserting the anchor. The presence of concrete dust in the hole acts as a lubricant between the expansion clip and the hole wall, significantly reducing the friction-based pull-out capacity. Standard cleaning: blow compressed air into the hole twice (from bottom to top), then brush with a stiff wire brush of the correct diameter, then blow again. For ICC-ES evaluated anchors in seismic applications, the cleaning procedure (number of blow-and-brush cycles) must follow the exact procedure stated in the ICC-ES evaluation report.

Step 3 — Insertion and Setting

Insert the wedge anchor through the fixture (base plate, bracket) and into the hole. Drive the anchor to the required embedment depth by striking the head with a hammer until the clip contacts the bottom of the fixture hole. The fixture must be in contact with the concrete surface — shims or grout under the base plate are permitted provided the gap does not exceed the maximum specified in the ICC-ES report. Then apply the nut and washer finger-tight.

Step 4 — Installation Torque

Tighten the nut to the manufacturer's specified installation torque using a calibrated torque wrench. The installation torque draws the bolt upward relative to the expansion clip, pulling the tapered cone into the clip segments and forcing them against the concrete hole wall. Do not use impact wrenches or pneumatic tools for final torquing — these cannot be controlled to the required torque accuracy. Installation torque values vary by anchor size and manufacturer; typical values are M10: 20–25 N·m; M12: 40–50 N·m; M16: 80–100 N·m; M20: 150–175 N·m. Over-torquing can fracture the anchor shank or strip the concrete thread — both are irreversible installation failures.

Step 5 — Proof Load Testing

For safety-critical structural applications (overhead anchors, seismic restraints, equipment supports with dynamic loads), proof load testing of installed anchors is specified. A portable hydraulic pull-test jack is used to apply a specified proof load (typically 80% of the design tension load) to each anchor after installation. Anchors that show measurable displacement under the proof load or fail the test must be removed and the connection redesigned with additional or larger anchors. Proof testing does not substitute for correct design — it verifies installation quality only.

Applications by Industry

Structural Steel Connections — Retrofit and Post-Construction

Wedge anchors are the standard post-installed anchor for structural steel connections where welding to the existing concrete structure is not possible or is prohibited: steel column base plates added to existing concrete slabs and foundations, steel mezzanine floor column bases, structural bracing knee braces anchored to concrete walls and floors, staircase stringers and handrail posts, and overhead structural steel grid connections to concrete roof and wall panels. For seismic zones (IBC Seismic Design Categories C through F), ICC-ES seismic-rated wedge anchors per AC193 criteria must be specified — standard wedge anchors have not been evaluated for cracked concrete or seismic load reversals.

Industrial Machinery Anchorage

Heavy industrial machines (CNC machining centres, presses, compressors, pumps, centrifuges, generators) are anchored to concrete pads using wedge anchors that resist the combined static weight of the machine and the dynamic reaction forces generated during operation. The anchor design must account for dynamic load amplification factors — typically 2–4× the static load for rotating machinery with unbalanced loads. Wedge anchors for machinery with continuous dynamic loading should be specified at a higher embedment depth than the minimum required for static tension, to ensure the concrete breakout mode does not govern under cyclic loading.

Racking and Storage Systems

Pallet racking, shelving systems, cantilever racks and mezzanine storage floors are anchored to concrete warehouse slabs using wedge anchors. Rack anchoring is governed by the rack supplier's design calculations per EN 15512 (Europe) or RMI MH16.1 (USA), specifying anchor diameter, embedment, spacing and minimum concrete slab thickness. The critical design case for racking anchors is often the impact from forklift contact with the rack uprights — a dynamic lateral shear load that must be resisted by the anchor without failure of either the anchor or the concrete slab.

Offshore and Marine Concrete Structures

Wedge anchors in stainless steel 316 or duplex 2205 are used in offshore platform concrete structures, harbour quay walls, marine jetty decks and coastal infrastructure for equipment mounting, structural connection brackets, railing anchorage and cable management. The marine concrete environment — high chloride, cyclic wetting and drying, biological fouling — requires SS 316 minimum for exposed anchors; duplex 2205 for long-term reliability in chloride-saturated or submerged concrete. EN 10204 3.1 MTC, PMI and corrosion class certification are standard offshore project requirements.

Overhead Applications — MEPS and Suspended Loads

Wedge anchors in overhead applications (HVAC duct hangers, fire sprinkler pipe hangers, electrical cable tray supports, suspended ceilings) carry their full design load in sustained tension — the most severe loading condition for a concrete anchor. All overhead wedge anchors must be designed with a generous safety margin, must be proof-tested after installation, and must use ICC-ES evaluated anchors where seismic ground motion could impose additional load. Undetected improper installation of overhead anchors (oversize holes, insufficient embedment, improper torque) is a life-safety hazard — these applications require contractor verification and inspection records for every installed anchor.

Export Packaging and Preservation

  • Wedge anchors packed by size and coating in sealed polypropylene bags or cardboard boxes, labelled with anchor diameter, length, material grade, coating, batch/lot number and quantity
  • Each anchor assembly must include all components (bolt, expansion clip, washer and nut) — missing components discovered on site cause installation delays; verify component count per bag before dispatch
  • VCI (Volatile Corrosion Inhibitor) poly liner for carbon steel zinc-plated anchors for sea freight or storage exceeding 3 months
  • SS anchors in clean sealed poly bags — segregated from carbon steel anchors to prevent ferrous contamination of stainless surfaces
  • Boxes in double-wall corrugated cartons, palletised on ISPM-15 heat-treated timber with stretch wrap
  • For ICC-ES evaluated anchors: the ICC-ES Evaluation Report (ESR) number must appear on the product label and the MTC, enabling the installer and inspector to download the current version of the ESR for the installation requirements
  • MTC, dimensional inspection report, mechanical test report (proof load, installation torque), corrosion test certificate (salt spray), PMI report (SS/duplex), ICC-ES compliance statement (if applicable), and all project documents in waterproof sealed envelope on each pallet
EPC & Structural Project Documentation Package — Wedge Anchors (10 Documents)
#DocumentStandard / ReferenceMinimum Requirement
01Material Test Certificate (MTC)EN 10204 3.13.1 for EPC structural; 3.2 for offshore, NACE, safety-critical applications
02Dimensional Inspection ReportManufacturer / ICC-ES ESRAQL 1.0; anchor diameter, length, clip dimensions mandatory
03Mechanical Test ReportASTM F606 / ISO 898-1Proof load, tensile strength, installation torque per batch
04Pull-Out Test Report (In-Situ)ACI 355.2 / ETAG 001Required for safety-critical structural applications; on-site pull test records
05Corrosion / Salt Spray CertificateISO 9227 / ASTM B117Required for all coated anchors; confirms coating class and hours-to-rust
06Hardness Test ReportASTM E10 / E18Mandatory for NACE MR0175 sour service; ≤22 HRC full cross-section
07PMI Report (XRF / OES)Project specification100% of SS, duplex and all exotic grade wedge anchors
08ICC-ES Evaluation Report ReferenceICC-ES AC193 / ESRESR number + current report version; required for seismic and cracked concrete
09ISO 9001 Manufacturer CertificateISO 9001:2015Current; scope must include wedge anchor manufacture
10ISPM-15 Phytosanitary CertificateIPPC / FAOAll wood packing for international export
Manufacturer Capability — RR Hydraulics

RR Hydraulics manufactures and exports wedge anchors in all types — standard, heavy-duty, seismic/cracked concrete, through-bolt and custom — in carbon steel grades 4.6, 5.8 and 8.8, ASTM F1554 Gr.36/55, A193 B7M (NACE), stainless steel SS 304 and SS 316, and duplex 2205. Sizes M8–M36 metric and 3/8"–1-1/4" inch UNC. Coatings: zinc plate (ASTM B633), mechanical zinc (ASTM B695), hot-dip galvanise (ASTM A153), Climaseal/Geomet, epoxy coat, SS passivation. EN 10204 3.1 MTC, mechanical test reports, salt spray certificates, NACE hardness mapping, PMI, ICC-ES compliance statements. 48-hour express dispatch on standard in-stock sizes.

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