| Fastener Type | Specify the connection method, installation access, serviceability, and whether the joint is permanent or removable. | Hex bolt Socket-head screw Machine screw Stud Nut Washer Rivet | Use bolts and nuts for removable structural joints, socket-head screws where access is restricted, and rivets where a permanent joint is acceptable. | Review the drawing, assembly method, tool clearance, and maintenance procedure. |
| Thread Standard | Define the thread system, nominal diameter, pitch, tolerance class, and mating component requirements. | ISO metric coarse ISO metric fine Unified inch UNC UNF | Metric threads are widely used in international equipment. Fine threads provide greater adjustment and are useful where higher tensile stress area or reduced loosening risk is required, but they are more sensitive to damage and contamination. | Confirm the thread designation, pitch gauge, plug or ring gauge results, and interchangeability with the mating part. |
| Nominal Size and Length | Define diameter, thread pitch, overall length, threaded length, head dimensions, and required grip length. | Typical industrial sizes range from small machine screws to large structural bolts. Length is normally specified in millimetres for metric products and inches for Unified products. | Select a length that provides full nut engagement without excessive protrusion. For many standard nuts, the bolt should extend beyond the nut after tightening, while avoiding interference with adjacent parts. | Measure diameter, pitch, length, head height, across-flats dimension, and thread runout against the approved drawing. |
| Strength Grade | Define the required tensile strength, yield or proof load, preload, shear load, and safety factor. | Class 8.8 Class 10.9 Class 12.9 Grade 5 Grade 8 Stainless A2-70 Stainless A4-80 | ISO property class 8.8 has a nominal tensile strength of 800 MPa and nominal yield ratio of 0.8. Class 10.9 has a nominal tensile strength of 1,000 MPa. Higher strength is not automatically better because hydrogen embrittlement, galling, and corrosion requirements must also be considered. | Request material certificates and verify hardness, tensile strength, proof load, and property-class marking where applicable. |
| Material | Define the base material, corrosion environment, operating temperature, electrical requirements, and compatibility with mating materials. | Carbon steel Alloy steel Austenitic stainless steel Brass Aluminium alloy Titanium alloy | Carbon and alloy steels provide high mechanical strength. Austenitic stainless steels are commonly selected for general corrosion resistance. Aluminium and titanium reduce weight but generally have lower thread and bearing strength than high-strength steel. | Check the material standard, heat number, chemical composition, mechanical properties, and positive material identification when required. |
| Corrosion Protection | Define salt exposure, humidity, chemicals, outdoor use, galvanic contact, service life, and appearance requirements. | Plain finish Zinc electroplating Zinc flake coating Hot-dip galvanizing Passivation Organic coating | Plain carbon steel is suitable only where corrosion is controlled. Zinc electroplating is common for indoor and moderately protected environments. Hot-dip galvanizing provides a thicker zinc layer for many outdoor steel applications, but coating thickness can affect thread fit. Stainless steel is preferred where cleanliness and corrosion resistance are important. | Specify coating standard, coating thickness, corrosion test method, visual acceptance criteria, and evidence of post-plating hydrogen-relief treatment when applicable. |
| Operating Temperature | Define minimum and maximum continuous temperature, short-term temperature peaks, thermal cycling, and exposure to fire or cryogenic conditions. | Ambient service Low-temperature service High-temperature service Cryogenic service | Temperature can reduce preload, change material strength, accelerate oxidation, and increase thermal expansion differences. Avoid selecting a coating or lubricant without confirming its temperature range. | Review temperature ratings, low-temperature impact requirements, thermal-expansion calculations, and relevant material test reports. |
| Load Type | Define static, tensile, shear, bending, impact, fatigue, vibration, and combined loading conditions. | Static preload Cyclic fatigue Shear loading Vibration Impact loading | Fatigue performance depends strongly on preload, joint stiffness, stress concentration, and surface condition. For vibration-prone joints, evaluate the joint design and locking method rather than relying only on a higher-strength fastener. | Perform torque-preload testing, fatigue assessment, shear or tensile testing, and joint-specific validation where required. |
| Preload and Torque | Define target preload, tightening method, torque tolerance, lubrication condition, and whether torque-angle or tension-controlled tightening is required. | Torque control Torque-angle control Direct tension indicator Hydraulic tensioning | Torque is affected by thread friction, bearing-surface friction, lubrication, coating, and installation speed. A torque value should not be transferred between different finishes without validation. | Use calibrated tools and measure the torque-preload relationship for the exact fastener, coating, lubricant, and washer combination. |
| Locking and Anti-Loosening | Define vibration level, thermal cycling, access for maintenance, required reusability, and allowable prevailing torque. | Prevailing-torque nut All-metal locknut Threadlocker Lock washer Safety wire Mechanical locking feature | Select the locking method according to temperature, chemical exposure, serviceability, and joint movement. Some locking elements are single-use or have limited reuse capability. | Check prevailing torque, reuse limits, chemical compatibility, temperature rating, and vibration performance. |
| Washer and Bearing Surface | Define hole diameter, joint material, surface hardness, clamping area, risk of embedment, and need for load distribution. | Flat washer Hardened washer Structural washer Sealing washer Spring washer | Use a washer when the bearing surface is soft, oversized, slotted, painted, or vulnerable to damage. Hardened washers are appropriate where high-strength bolts could embed into the joint surface. | Verify washer outside diameter, inside diameter, thickness, hardness, flatness, and compatibility with the fastener grade. |
| Installation Access and Tooling | Define access from one or both sides, available tools, head clearance, assembly sequence, and automation requirements. | External hex Internal hex Torx-type recess Captive fastener Blind rivet | Use blind fasteners where only one side is accessible. Select recess and head geometry that provide sufficient tool engagement and reduce stripping during production assembly. | Conduct trial assembly using production tools, approved bits or sockets, target torque, and the actual joint geometry. |
| Dimensional Tolerance and Fit | Define hole class, clearance, thread fit, concentricity, straightness, head dimensions, and interchangeability requirements. | Standard clearance hole Close-fit hole Fine thread fit Custom tolerance | Standard clearance holes simplify assembly and international sourcing. Close-fit or controlled-shank designs may be required for accurate positioning or high shear transfer. | Inspect with calibrated gauges, coordinate measurement, optical measurement, or sampling plans defined by the drawing. |
| Standards and Documentation | Identify the required product, material, testing, coating, marking, and inspection standards before quotation. | ISO ASTM ASME DIN EN SAE | Use one clearly defined standard system for geometry, material, mechanical properties, and inspection. Equivalent standards should be accepted only after technical review. | Require drawings, certificates of conformity, material certificates, inspection reports, coating reports, and traceability records as applicable. |
| Marking and Traceability | Define head marking, lot identification, packaging labels, batch control, and retention period for quality records. | Manufacturer identification Strength-class marking Lot number Barcode or QR label | Marking requirements should not compromise the functional surface or create unacceptable stress concentration. Traceability is particularly important for safety-critical and pressure-containing applications. | Verify markings visually and match the lot number to certificates, inspection records, and shipping documents. |
| Packaging and International Logistics | Define pack quantity, moisture protection, corrosion prevention, labeling language, palletization, and mixed-lot controls. | Bulk cartons Compartment boxes Moisture-barrier bags Returnable containers | Use sealed, dry packaging for corrosion-sensitive products and separate different sizes, grades, and lots. Packaging should protect threads and prevent foreign-particle contamination during long-distance transport. | Conduct packaging inspection, quantity verification, corrosion checks after simulated transport, and label-to-product reconciliation. |
| Supplier Qualification | Define manufacturing capability, quality system, process controls, testing capacity, capacity planning, and change-notification requirements. | Approved supplier list Process audit First-article inspection Production-part approval | Evaluate cold forming, machining, heat treatment, thread rolling, coating, sorting, inspection, and lot traceability capabilities relevant to the specified product. | Review audit results, process flow, control plan, inspection equipment calibration, sample reports, and nonconformance procedures. |