| name | rivet-joints |
| description | Rivet joint design — shear failure (single/double shear), bearing stress (on plate and rivet), tearing (net section), joint efficiency, rivet patterns (lap, butt, multiple row), pitch and spacing (AISC/ASME), solid vs. blind rivets (AN/MS aerospace), rivet materials (aluminum 2117-T4, steet A502), hot vs. cold riveting, aerodynamic riveting, pull-through failure, MIL-HDBK-5 allowables, AISC bolt/rivet standards, and aerospace fastener selection. |
| metadata | {"priority":7,"promptSignals":{"phrases":["rivet joint","riveted joint","rivet design","rivet shear","riveted connection","blind rivet"],"minScore":3}} |
Rivet Joint Design — Complete Skill
Rivet Types
Solid Rivets (Structural)
Materials:
Aluminum 2017-T4 (AD): shear allowable F_su = 207 MPa; most common structural aerospace rivet
Aluminum 2117-T4 (AD): F_su = 186 MPa; softer; used for thinner sheet; easier cold forming
Aluminum 2024-T4 (DD): F_su = 269 MPa; high-strength; requires refrigeration before driving (ice box rivet)
Steel A502 Grade 1 (ASTM A502): F_su = 165 MPa; Grade 2: F_su = 207 MPa; heavy structural construction
Monel: corrosion resistant; used for stainless assemblies
Titanium: high-strength; aerospace Ti-6Al-4V or CP titanium
Solid rivet designations (AN/NAS):
AN426: 100° countersunk (flush); AN470: universal head; AN441, 442: flat head
NAS (National Aerospace Standard): tighter tolerances; certified
Blind Rivets
Pull mandrel (POP-type):
CherryMAX, CherryLock, Avdel; mandrel pulled to upset tail; mandrel breaks or locks
Used when access from one side only
Failure modes: mandrel pull-through; shear; pull-out
Properties (blind rivets):
Shear strength: typically 60–80% of equivalent solid rivet
CherryMAX CR3214: shear allow. 2.4 kN per rivet (3/16 in dia); tensile 2.6 kN
Failure Modes and Analysis
Shear Failure
Single shear (lap joint — one shear plane):
P_shear = F_su × A_rivet = F_su × π × d² / 4 [N; F_su = ultimate shear stress; d = rivet diameter]
Required: P_applied / P_shear ≤ 1/SF [SF = 1.5 for static; 1.15 for fatigue-checked aerospace]
Double shear (butt joint with two cover plates — two shear planes):
P_shear = 2 × F_su × π × d² / 4 [twice the area for double shear]
Example (single shear, 2117-T4 aluminum, d = 5 mm = 3/16 in):
A_rivet = π × 0.005² / 4 = 1.96×10⁻⁵ m²
P_shear = 186×10⁶ × 1.96×10⁻⁵ = 3,650 N per rivet
Bearing Failure
Bearing stress on plate (most often governs for thin plates):
σ_bearing = P / (d × t) [P = load; d = rivet diameter; t = plate thickness]
Allowable: F_bru = bearing ultimate strength of plate material (not rivet)
F_bru = 1.5 × F_tu (full bearing for e/d ≥ 2.0); reduced for e/d < 2.0
Bearing stress on rivet:
σ_bearing_rivet = P / (d × t); allowable from MIL-HDBK-5 or MMPDS for rivet material
Table: aluminum plate bearing allowable (2024-T3 clad, t = 0.040 in):
F_bru = 496 MPa (aligned with Ft_u = 290 MPa × 1.71 bearing factor = 496 MPa)
Tearing (Net Section Failure)
Minimum net section (row with maximum rivets):
A_net = (p - d) × t [per unit row; p = pitch; d = rivet hole diameter = rivet + 0.1 mm clearance]
σ_net = P_row / A_net ≤ F_tu (allowable tensile stress of plate material)
Net section efficiency:
η_net = (p - d) / p [fraction of gross area remaining]
For structural: η_net ≥ 0.70 (30% reduction from holes allowable)
Edge Distance
Minimum edge distance (e/d):
e ≥ 2d minimum; e ≥ 2.5d preferred (full bearing value F_bru available)
e < 2d → reduced bearing allowable and possible shear-out
ASME boiler code: e ≥ 1.5d (for steam boiler rivet edge; older standard)
Shear tearout (block shear):
P_tearout = F_su × 2 × e × t [shear failure along two planes from hole to plate edge; less common if e ≥ 2d]
Joint Efficiency
Calculating Joint Efficiency
For each failure mode, compute load per rivet at failure:
P₁ = F_su × A_shear (shear)
P₂ = F_bru × d × t (bearing)
P₃ = F_tu × (p - d) × t (tearing, per pitch unit)
Governing failure: P_govern = min(P₁, P₂, P₃)
Gross plate capacity: P_gross = F_tu × p × t (gross section at pitch)
Joint efficiency: η = P_govern / P_gross × 100%
Example (single-riveted lap joint, d = 6 mm, p = 18 mm, t = 3 mm, mild steel):
F_su = 0.6 × 400 = 240 MPa (rivet); F_bru = 1.5 × 400 = 600 MPa (plate); F_tu = 400 MPa (plate)
P_shear = 240 × π × 0.006²/4 = 6,786 N
P_bearing = 600 × 0.006 × 0.003 = 10,800 N
P_tearing = 400 × (0.018 - 0.006) × 0.003 = 14,400 N
Governing: P_shear = 6,786 N
P_gross = 400 × 0.018 × 0.003 = 21,600 N
η = 6,786 / 21,600 = 31.4% (very low; should use multiple rows)
Multiple-Row Riveted Joint
Efficiency of n-row lap joint:
Distribute load equally among rows (assumption for equal pitch); each row carries P/n
For n rows: efficiency approaches plate tear efficiency = (p-d)/p if shear per rivet adequately large
Optimal design:
Choose d, p, n such that P_shear ≈ P_bearing ≈ P_tearing (all modes equally utilized)
η_optimal ≈ 75–85% for well-designed multi-row joints
ASME/AISC Efficiency Limits
Pressure vessel (ASME BPV Section I):
Single-riveted lap: maximum η = 45–56%
Double-riveted: η = 56–66%
Triple-riveted: η = 66–80%
ASME does not permit riveted joints in modern pressure vessels (use welding per ASME VIII)
Rivet Pitch and Spacing (AISC/AISC 360)
AISC (structural steel, A502 rivets — historical):
Minimum pitch: p_min = 3d; preferred 4d for adequate working space
Maximum pitch: p_max = min(12t, 150 mm) [prevents buckling between fasteners]
Minimum edge distance: e_min = 1.5d (AISC Table J3.4)
Maximum edge distance: e_max = min(12t, 150 mm)
Aerospace (MIL-HDBK-5 / MMPDS):
Minimum pitch: 3d; edge distance: 2d; row spacing: 3d minimum
Aerospace Riveting
Rivet Driving
Cold driving (aluminum rivets):
2117-T4 and 2017-T4: driven cold; no annealing needed; room temperature OK
2024-T4 (DD): heat treat to T4 → very soft; must be driven within 10–20 min (ice box: refreeze and redrive)
Driven head specifications:
Machine countersunk (flush head): countersink depth ≤ 2/3 t (minimum plate) to prevent knife-edge failure
Driven head height: 50–55% of rivet diameter; width: 1.5 × diameter (per MIL-R-47196)
Hole preparation:
Drill undersized by 0.1 mm; ream to final diameter; remove burrs; anodize or prime before assembly
Interference fit (cold working): expand hole with mandrel → compressive residual stress around hole → fatigue life 3–5×
Aerodynamic Smoothness
Flush riveting: countersunk allows flush surface; critical for laminar flow regions on aircraft skin
Filler/faying surface: sealed with PR-1440 or PRC-DeSoto sealant to prevent fretting and galvanic corrosion
Lap joint of aluminum to carbon fiber: titanium rivets only (galvanic compatibility)
Standards and References
| Standard | Scope |
|---|
| AISC 360 | Structural Steel Specification (rivets and bolts) |
| ASTM A502 | Specification for steel structural rivets |
| MIL-HDBK-5J / MMPDS | Aerospace structural metals handbook (rivet allowables) |
| MIL-R-47196 | Rivet, solid, aluminum alloy |
| NAS1097 | Aerospace rivet specifications |
| ASME Section I | Power boiler (riveted joint efficiency limits — historical) |
Output
Provide: joint type (lap/butt; single/double shear; plate materials and thicknesses [mm]), rivet material and specification (AN/NAS/AS designation; F_su [MPa]; diameter d [mm]), pitch p [mm] and edge distance e [mm] (minimum limits check; e/d ratio), failure mode analysis (P_shear [N]; P_bearing [N]; P_tearing [N] per rivet; governing failure mode), joint efficiency η [%] (P_govern / P_gross; multiple rows if applicable), number of rivets required for given joint load P [N] (with SF = 1.5 or as specified), net section check (A_net [mm²]; σ_net [MPa] vs. F_tu [MPa]), countersunk check (depth vs. 2/3t limit; flush head geometry), hole preparation (drill size; ream; cold working if specified), galvanic compatibility (rivet material vs. plate material; sealant), and applicable standard (MIL-HDBK-5/MMPDS, AISC 360, ASTM A502).