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M64×4 Torque Spec

Calculated preload torque by grade, plus what actually changes the number.

M64×4 · 8.8 · dry threads 15873 N·m 11707 lb-ft · targets 1240.1 kN clamp load (75% of proof)

By grade

GradeDry (N·m)Lubed (N·m)Dry (lb-ft)Clamp loadUltimate tensile
4.6
Low-carbon steel, general purpose
615846184542481.1 kN1140.3 kN
8.8
Medium-carbon, quenched & tempered — the default structural grade
1587311905117071240.1 kN2280.6 kN
10.9
Alloy steel, Q&T — high strength
2271517036167541774.6 kN2964.8 kN
12.9
Alloy steel, Q&T — highest common grade (socket head cap screws)
2654719910195802073.9 kN3478 kN
A2-70
304 stainless, cold worked
1231592379083962.1 kN1995.6 kN

Why lubrication changes everything

Roughly 90% of the torque you apply is consumed by friction — under the head and in the threads. Only about 10% becomes useful bolt stretch. That means the friction coefficient, not the bolt, sets the relationship between torque and clamp load. Here is the same M64×4 8.8 fastener under different conditions:

Thread conditionNut factor KTorque for same preload
Plain / as-received, dry0.2015873 N·m
Zinc plated, dry0.2217460 N·m
Black oxide, lightly oiled0.1814286 N·m
Machine oil on threads0.1511905 N·m
Molybdenum disulfide / anti-seize0.129524 N·m
Waxed or PTFE coated0.107937 N·m
Torquing a lubricated bolt to the dry spec overloads it — the 7937 N·m row and the 15873 N·m row produce the same clamp load. Apply the dry number to a waxed fastener and you are at roughly twice the intended preload, which for a 8.8 is past yield.

Assumptions behind these numbers

T = K × D × F with K = 0.20, F = 0.75 × proof load, and proof load = tensile stress area (2850.79 mm²) × the grade's proof strength. This is a general-engineering starting point for a reusable steel-on-steel joint. It is not a substitute for a manufacturer's torque sequence on an engine, a suspension component, a pressure vessel or any structural connection.

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