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Emirates Modern Industrial Area, Umm Al Quwain, U.A.E. · P.O. Box 7071 · ISO 9001:2015 · Technical Library
TECHNICAL LIBRARY

Hammer bolts (T-bolts) — how to read them, how to choose one

Called a hammer bolt or T-bolt in the Gulf, a channel bolt or hammer-head bolt in Europe — the same fastener. It is the only one you fit by turning it. Get the head geometry wrong and it either will not enter the slot, or it enters and never locks. This page explains the principle, the three head forms and what to measure — then gives the material and finish limits from the standards.

On this page: hammer bolt, T-bolt, T-head bolt, hammer-head bolt and channel bolt all mean the same product. The hook-head bolt is a related form covered below. The channel or rail is the section it fixes into.

The principle: enter narrow, bear wide

Every hammer bolt works the same way. The head is rectangular. Its width is small enough to drop through the slot; its length is longer than the slot but shorter than the channel's internal width. Insert it, turn it a quarter turn, and the head bears on the underside of both lips.

head widthA slot opening1 · THE WIDTH PASSES THE SLOTturn 90°head lengthB internal width2 · THE LENGTH BEARS ON BOTH LIPS
Figure 1 — the same bolt and channel, before and after the quarter turn

It must turn

If the head length exceeds the internal width, it cannot rotate to the locked position. It will feel tight and be doing nothing.

It must bear

If the head length barely exceeds the slot, the bearing area on each lip is tiny. The lips deform under load and the joint relaxes.

It must be seen

A quarter turn is invisible once the fixture is on. Check every one before the bracket goes over it.

The two numbers in the name

A hammer bolt is usually called by two numbers — something of the form 28/15. They are the head dimensions in millimetres: length / width. The first number is what bears on the lips; the second is what has to pass the slot.

This is why a bolt named for one rail will not necessarily suit another of the same nominal size. The name describes the bolt head, not the channel. Two channels of the same catalogue size from different makers can have different slot openings and different internal widths. Thread size is quoted separately and is independent of the head.

How it is fitted

The quarter turn is the whole job, and it is the one thing you cannot see once the bracket is on. Below it runs in two views at once: section shows the head seating under the lips, plan shows it turning.

Three head forms

head length
Hammer head (T-head)
teethhead length
Serrated hammer head
liphookhead length
Hook head

Hammer head

Plain rectangular head. Enters the slot, turns a quarter turn, bears on both lips. The general-purpose form. Relies entirely on the clamping force to stay put.

Serrated hammer head

Teeth on the underside bite into the lips as it tightens. Resists slip along the channel and resists the bolt turning back. For loads that push along the rail, or where vibration is present.

Hook head

Engages one lip only, so it can be hooked in from the side of an already-installed run without threading it from the end. Used where access is limited.

The teeth on a serrated head are part of the load path. Never fit a serrated bolt to a channel whose maker has not approved it — the teeth are designed against a specific lip thickness and material.

Three ways it goes wrong

Every one of these passes a visual check from above once the bracket is fitted. That is why the orientation has to be confirmed before, not after.

Head too long

The head length exceeds the channel's internal width, so it cannot complete the quarter turn. It jams at an angle and feels tight while carrying nothing.

Check: head length < internal width B

Head too short

The head only just passes the slot, so the bearing area on each lip is a sliver. Under load the lips bend down, the bolt relaxes, and the joint loosens.

Check: head length well over slot opening A

Never turned

Inserted, the bracket fitted over it, the nut run down — but the head was never rotated. It holds while nothing pulls on it, then lifts straight back out through the slot.

Check: every head turned, before the fixture goes on

Choose by the channel, not the label

Site labels fall off, and the same nominal channel size differs between makers. Four measurements settle it. Take them off the channel in front of you, with a vernier, not from a delivery note.

A slot openingB internal widthC internal depthD lipMEASURE THE CHANNEL · NOT THE BRAND ON THE LABEL
Figure 2 — the four dimensions that decide which head fits
ASlot opening

Head width must be less than A, with clearance for the coating.

BInternal width

Head length must be less than B, or the head cannot turn.

CInternal depth

Head thickness plus any spring or locator must fit inside C.

DLip thickness

Decides how much bearing the lips can take, and whether serrations are appropriate.

Add the coating to the head, not to the channel: hot-dip galvanizing builds roughly 85 µm a surface, and on a head that was a sliding fit before coating, that is enough to stop it entering.

Material classes — mechanical

ClassStandardMaterial and conditionTensile Rm min, MPaYield min, MPaElongation minHardness
4.6ISO 898-1:2013Carbon steel, not heat treated400240 ReL22 %120–220 HV
8.8 ≤ M16ISO 898-1:2013Carbon or alloy steel, Q&T80064012 %250–320 HV
8.8 > M16ISO 898-1:2013Carbon or alloy steel, Q&T83066012 %255–335 HV
A2-70 · A4-70ISO 3506-1Austenitic, cold worked7004500.4 d
A2-80 · A4-80ISO 3506-1Austenitic, cold worked8006000.3 d

Stainless elongation is expressed as a multiple of d on the whole fastener, not as a percentage on a machined test piece. ISO 3506 was revised in 2020 — confirm which edition the project specifies.

Material classes — chemical

ClassStandardC %Cr %Ni %Mo / other %P maxS max
4.6ISO 898-1 Table 20.55 max0.0500.060
8.8 ≤ M16ISO 898-1 Table 20.15 – 0.400.0250.025
8.8 > M16ISO 898-1 Table 20.25 – 0.550.0250.025
A2 · 1.4301EN 10088-30.08 max17.0 – 19.58.0 – 10.50.0450.015
A4 · 1.4401EN 10088-30.08 max16.5 – 18.510.0 – 13.02.00 – 2.50 Mo0.0450.015

Finishes for Gulf exposure

FinishStandardWhere it belongsWhat to watch
Zinc electroplatedISO 4042Indoor, dryThin coating; baking required above class 10.9 or 39 HRC (ISO 4042)
Hot-dip galvanizedISO 10684 · ISO 1461External, generalNuts tapped oversize after coating — order galvanized nuts with galvanized bolts
Zinc flakeISO 10683External, thin film neededNo hydrogen embrittlement route; check the channel maker accepts it
A2 · 1.4301ISO 3506-1 · EN 10088-3Indoor, fresh water, foodPits in chlorides — not the Gulf coastal default
A4 · 1.4401ISO 3506-1 · EN 10088-3Coastal, marine, chemicalThe molybdenum buys chloride pitting resistance

A hammer bolt sits in a slot where water collects and does not drain. Treat it as a more severe exposure than the surrounding steelwork, not a milder one.

What this page does not give you — and why

You will not find tightening torques, permissible loads or design resistances here. Those values belong to the channel system, not to the bolt: they depend on the lip geometry, the channel material and the anchor behind it, and they are established by the channel manufacturer's own testing and approval documents.

Quoting them out of that context is how a joint gets designed to a number that does not apply to the channel actually on site. For a load-bearing connection, work from the channel manufacturer's approval document (ETA or equivalent) and the project structural engineer — and ask us for the certificates covering the fasteners themselves.