When bent at the elbow, spokes are expected to have residual stresses.
It's often claimed that squeezing spoke pairs together will relieve
these residual stresses by raising the spoke tension above normal.
Unfortunately, before and after stresses have never been shown to
confirm or refute this theory, nor has any formal testing ever been
published to show whether squeezed spokes outlast unsqueezed spokes.
Fatigue testing for spokes is incredibly tedious, taking months on
expensive rigs, so there's little hope in that direction.
A further complication is that squeezing may also improve the wheel
build in other ways, such as seating spoke heads and nipples,
releasing spoke wind-up, and simply encouraging care in other steps.
So even if squeezed spokes do last longer, it may have nothing to do
with stress relief.
Neutron diffraction images are supposed to reveal stresses, but the
neutron diffractor at Fogel Labs has been on the blink for a long
time.
However, Fogel Labs has a propane torch that works just fine. Heat is
generally agreed to relieve residual stresses, and a propane torch
will heat a spoke bend to a cheery orange glow in a few seconds,
relieving any residual stresses. The heated spoke visibly bends to a
new angle as the stresses are relieved.
Alas, initial testing showed an odd problem when old-fashioned carbon
spokes were sacrificed on the altar of stress-relief. Bent in the
middle and toasted, the carbon spokes bent impressively to a new
angle. But they turned out to bend the wrong way, opposite of the
direction in which modern stainless steel spokes bend when toasted.
Hmmm . . . the general opinion in materials circles was that the
carbon steel went through a phase change that overwhelmed the change
in residual stresses. Stainless steel, on the other hand, is not
expected to suffer such phase changes, so testing proceeded with
modern spokes.
The next problem was that factory elbow bends are too tiny, too short,
and too awkward for any useful testing. If they bent after toasting,
the angle was too small to be seen, even with camera magnification.
So a spoke-bending rig was cobbled together:
http://server5.theimagehosting.com/image.php?img=339a_spoke_rig.jpg
or http://tinyurl.com/y9kmws
A U-bend is made in the middle of the spoke by spreading the jaws of
the vise. The vise tension will easily draw the elbow bend straight:
http://server5.theimagehosting.com/image.php?img=340a_spoke_rig_165kgf.jpg
or http://tinyurl.com/ycnr2f
After tensioning, the elbow end must be cut off to remove the spoke:
http://server5.theimagehosting.com/image.php?img=341a_spoke_rig_elbow_cut.jpg
or http://tinyurl.com/yenfz9
At first, the tensioned spoke was squeezed with pliers to mimic the
typical hand-squeezing. But pliers are so powerful that they left
bends in the spokes that were already at about 165 kgf:
http://server5.theimagehosting.com/image.php?img=342a_spoke_squeeze_bends.jpg
or http://tinyurl.com/tdkf3
It turned out to be much simpler to skip the pliers and just use the
vise and tension gauge to raise spoke tension to the desired levels.
Here are four straight 2mm stainless steel Sapim Leader spokes, each
bent in the vise rig and faintly marked at their ends and one side on
2mm graph paper:
http://i12.tinypic.com/2zgtfs5.jpg
From left to right:
Hand-bent, no tension 0 kgf
Elbow straightened, ~76 kgf / 167 lbs (Park gauge mark 21)
Tensioned more, ~121 kgf / 266 lbs (Park gauge mark 25)
Tensioned like crazy, ~179 kgf / 394 lbs (Park gauge mark 28)
Previous experiments found no wheels where tension rose more than
55~65 lbs when opposite pairs of spokes were squeezed with 60 lbs
of force. The spokes bend impressively, giving rise to mistaken
calculations of huge tension increases, but the rim is merely
bending into a faint N-shape that provides slack for the spokes.
After the U-bends were all heated to an orange glow with a propane
torch, all residual stresses were presumably relieved. The faint marks
on the graph paper were enhanced with a red Sharpie:
http://i11.tinypic.com/2qsc507.jpg
The hand-bent spoke shows a noticeable change. In fact, it had to be
set a little to one side to avoid hitting the next spoke. Obviously,
the residual stresses were relieved by heating.
The other three spokes show no significant change after heating.
The test suggests that practically all residual stress at the spoke
elbow is mechanically relieved long before the spokes are brought to
ordinary tension.
That is, just 76 kgf is enough to eliminate residual stresses in 2mm
stainless steel spokes bent into a U-shape.
I'll try to accomodate any suggestions for other tests.
Anyone who wants to pursue such tests can do so with some spokes (the
longer the better), a propane torch, a vise, bolts to stick in the
vise-jaw-plate holes, wire-cutters, and graph paper. A tension gauge
is nice, but not necessary.
Here's the vise, which needed 8x1.25mm bolts:
http://www.harborfreight.com/cpi/ctaf/displayitem.taf?Itemnumber=5655
It's on sale for about $40, and Harbor Freight often offers discounts
in newspaper ads and fliers.
Here's a nice site with a bad name for printing graph paper pdf's at
any size:
http://incompetech.com/beta/linedGraphPaper/easy.html
Here are long Sapim spokes without nipples, $6.50 per 20:
BikeToolsEtc also sells nipples.
Cheers,
Carl Fogel