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Re: Pedal-crank interface, fretting, and gouging.

Started by chalo colina · · Last activity · 24 posts · 1,624 views

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Cycling Equipment
Published
16 May 2005
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24 May 2005
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chalo colina
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  1. Quoted message said:


    Whether it is attached or not won't make any difference, the radial
    fit in the recess is not a press fit and will fret radially as pedal
    forces push it across its contact face. I have seen washers used in
    this place that just created another interface but did not prevent
    motion at the face and in the spindle threads.

    It seems to me that if the washer has a significantly higher
    coefficient of friction on the crank than on the pedal spindle, then
    the movement and therefore the fretting will occur at the interface
    between washer and spindle, and not at the crank.

    I have not tried pedal washers, because I have yet to crack a pedal
    eye. Of course, I don't use feeble spindly cranks either.

    In my opinion, a man your size who puts in as many miles as you do
    should probably be riding tubular steel cranks.

    Chalo Colina

  2. In article <[email hidden]>,

    Quoted message said:

    So? As I said, the damage is not only the face of the crank, but
    fretting in the threads. Besides, the washers on TA cranks I have
    seen squish out into a slight cup shape beyond the diameter of the
    spindle face and do not protect the crank face. The only difference
    is that the crank face is already countersunk when new.

    I do find myself wondering though, if the washers may still
    have some marginal value to them. I would expect that having an aluminum
    washer fretting against the crank face would be better for the crank
    than a hard steel spindle face doing the fretting - the softer washer
    would sacrificially take its share of erosion rather than let the
    crank face take it all.

    Also, I'd expect any cracks that intiated at the washer/spindle
    interface, even if they propogate through the washer, to not make it
    through the washer/crank interface - this reminiscent of the
    difference in crack behaviour between fibreglass composites and solid glass.

    Of course, as pointed out, washers still do absolutely nothing
    to mitigate fretting in the threads.

    That TA offers these washers, and the recess for them would
    indicate they at least acknowledge there's an issue here. Perhaps they
    would be more receptive to suggestions here than Shimano. Too bad they
    don't have much market share here in the US.

    -Luns

  3. Quoted message said:


    Chalo Colina said:


    I have not tried pedal washers, because I have yet to crack a pedal
    eye. Of course, I don't use feeble spindly cranks either.

    Quoted message said:

    In my opinion, a man your size who puts in as many miles as you do
    should probably be riding tubular steel cranks.

    From what you have written, you weigh a substantial bit more than I.

    And from what you have written, you have cracked a lot of pedal eyes.
    That seems to me like a strong indication that your cranks are a poor
    choice for you. There are stronger cranks available that won't crack
    so readily.

    Chalo Colina

  4. Dans le message de news:[email hidden],
    [email hidden] <[email hidden]> a
    réfléchi, et puis a déclaré :

    Quoted message said:

    I don't have much hope for that. Having discussed this with many
    crank folks at InterBike and receiving either blank stares from
    engineers who don't understand what I am demonstrating and explaining
    to the ones who don't think anyone knows more about cranks than they
    and have never seen a crank failure like this.

    This is typical for the bicycle industry as I have experienced it over
    the last decades. Shimano is an extreme case.

    How much of a cone angle would it take to make the change you suggest ? Is
    it radical, or mild, to achieve the effect you are aiming at ?
    --
    Bonne route,

    Sandy
    Verneuil-sur-Seine FR

  5. Quoted message said:
    Luns Tee said:
    Quoted message said:

    So? As I said, the damage is not only the face of the crank, but
    fretting in the threads. Besides, the washers on TA cranks I have
    seen squish out into a slight cup shape beyond the diameter of the
    spindle face and do not protect the crank face. The only
    difference is that the crank face is already countersunk when new.

    Quoted message said:

    I do find myself wondering though, if the washers may still have
    some marginal value to them. I would expect that having an aluminum
    washer fretting against the crank face would be better for the crank
    than a hard steel spindle face doing the fretting - the softer
    washer would sacrificially take its share of erosion rather than let
    the crank face take it all.

    Quoted message said:

    Also, I'd expect any cracks that initiated at the washer/spindle
    interface, even if they propagate through the washer, to not make it
    through the washer/crank interface - this reminiscent of the
    difference in crack behaviour between fibreglass composites and
    solid glass.

    Quoted message said:

    Of course, as pointed out, washers still do absolutely nothing to
    mitigate fretting in the threads.

    Quoted message said:

    That TA offers these washers, and the recess for them would indicate
    they at least acknowledge there's an issue here. Perhaps they would
    be more receptive to suggestions here than Shimano. Too bad they
    don't have much market share here in the US.

    I don't have much hope for that. Having discussed this with many
    crank folks at InterBike and receiving either blank stares from
    engineers who don't understand what I am demonstrating and explaining
    to the ones who don't think anyone knows more about cranks than they
    and have never seen a crank failure like this.

    This is typical for the bicycle industry as I have experienced it over
    the last decades. Shimano is an extreme case.

    [email hidden]

    what's this repeated assertion that fretting causes fatigue? you've
    been saying that for years jobst, but just like "stress relief" it's
    merely your assumption based on a somewhat limited understanding of
    fatigue initiation. how on earth do you expect shimano to take you
    seriously when, aside from the fact that you really do have some
    substantial personality issues, you publish "engineering" material that
    is so consistently & laughably incorrect? your "stress relief" theory
    is based on assumptions about strain aging that don't exist in stainless
    steels. such fundamental errors are just laughable. the fact that the
    contradictions are published in your own book, and that you /still/
    don't get the picture is just unbelievable. your only chance at any
    credibility [if indeed that were to be possible] is to go back & correct
    /all/ the serious errors in your publications, both dead tree & "faq",
    then start being more civil to people. you could also try going to a
    library occasionally.

    your assumption that shimano are incompetent and incapable of employing
    anything less than top flight engineers & metallurgists, ones that /do/
    understand how to talk with each other [something clearly lacking in
    certain quarters this side of the pacific] is simply ridiculous. the
    fact that they spend their time addressing issues of actual concern
    rather than getting side tracked with red herrings is a feather in their
    cap, not a cause for your misplaced criticism.

  6. Chalo Colina said:
    Quoted message said:
    Quoted message said:

    I have not tried pedal washers, because I have yet to crack a
    pedal eye. Of course, I don't use feeble spindly cranks either.

    Quoted message said:
    Quoted message said:
    Quoted message said:

    In my opinion, a man your size who puts in as many miles as you do
    should probably be riding tubular steel cranks.

    I suppose you haven't seen the failure pictures of such cranks but
    they don't give me any hope for more durability. They look more like
    tin cans that were torn apart above the pedal eye. I don't have any
    pictures but have seen them in the past. What brand do you have in
    mind?

    Quoted message said:
    Quoted message said:

    From what you have written, you weigh a substantial bit more than I.

    Quoted message said:

    And from what you have written, you have cracked a lot of pedal
    eyes. That seems to me like a strong indication that your cranks
    are a poor choice for you. There are stronger cranks available that
    won't crack so readily.

    Please don't keep it a secret. I have used Campagnolo Record and
    Shimano Dura Ace, the latter having cracked at the pedal eye and in
    the square taper. What cranks do you believe are more durable?

    Meanwhile let's not overlook the failure mode, that of bending off at
    the bottom of the stroke. You'll note that most of the pictures we
    have seen and all the cranks I have broken show failure wave
    propagation across the crank from outside to inside in bending mode.

    The latest Ritchey failure posted here was the same even though it was
    one of the "modern" shaped extra wide semi-channel shaped profiles.

    [email hidden]

  7. Sandy Leurre said:
    Quoted message said:

    I don't have much hope for that. Having discussed this with many
    crank folks at InterBike and receiving either blank stares from
    engineers who don't understand what I am demonstrating and
    explaining to the ones who don't think anyone knows more about
    cranks than they and have never seen a crank failure like this.

    Quoted message said:
    Quoted message said:

    This is typical for the bicycle industry as I have experienced it
    over the last decades. Shimano is an extreme case.

    Quoted message said:

    How much of a cone angle would it take to make the change you
    suggest? Is it radical, or mild, to achieve the effect you are
    aiming at?

    http://pardo.net/bike/pic/fail-001/FAIL-016.html

    The effect is the same as that of conical lug nuts on car wheels, that
    of centering and load carried in compression rather than shear. It
    prevents fretting motions that cause wear and unscrewing of right hand
    threads on left pedals or the converse for right pedals... that is to
    say, left hand threads for left pedals would not be required.

    [email hidden]

  8. Quoted message said:
    Chalo Colina said:
    Quoted message said:

    > I have not tried pedal washers, because I have yet to crack a
    > pedal eye. Of course, I don't use feeble spindly cranks either.

    Quoted message said:
    Quoted message said:

    > In my opinion, a man your size who puts in as many miles as you


    do

    Quoted message said:
    Quoted message said:
    Quoted message said:

    > should probably be riding tubular steel cranks.

    I suppose you haven't seen the failure pictures of such cranks but
    they don't give me any hope for more durability. They look more like
    tin cans that were torn apart above the pedal eye. I don't have any
    pictures but have seen them in the past. What brand do you have in
    mind?

    I have put many hard miles on Bullseye cranks without the least
    structural problem. I can't reasonably recommend them at this time,
    though, as their bearings have undergone a design revision that i
    suspect will not work in the long term.

    Redline Flight cranks are impeccably made. They are offered in lengths
    up to 190mm. To use them in a road bike, you'd have to fit it with a
    threaded BB like the one from FSA.
    http://www.danscomp.com/cgi-bin/hazel.cgi?action=DETAIL&item=451060
    http://fullspeedahead.com/fly.aspx?layout=product&taxid=92&pid=117

    FSA and Premium make nice sturdy tubular cranks that are not
    offensively heavy, but they use an interference spline fit that I find
    inferior to a pinch-bolted design.
    http://fullspeedahead.com/fly.aspx?layout=product&taxid=88&pid=258
    http://www.premiumbmx.com/cranks.html

    Quoted message said:
    Quoted message said:

    There are stronger cranks available that
    won't crack so readily.

    Please don't keep it a secret. I have used Campagnolo Record and
    Shimano Dura Ace, the latter having cracked at the pedal eye and in
    the square taper. What cranks do you believe are more durable?

    I use Primo Powerbite cranks on most of my bikes. They use cold forged
    7075 aluminum arms pinch-bolted to a 22mm spindle made of heat treated
    4140 chromoly. There is a lighter titanium spindle available for them,
    and they are offered with a threaded BB.
    http://www.danscomp.com/cgi-bin/hazel.cgi?action=DETAIL&item=451057

    Quoted message said:

    Meanwhile let's not overlook the failure mode, that of bending off at
    the bottom of the stroke. You'll note that most of the pictures we
    have seen and all the cranks I have broken show failure wave
    propagation across the crank from outside to inside in bending mode

    All the cranks I have mentioned are much thicker through the arm at the
    pedal boss than typical road bike cranks. They are also made of higher
    yield stress materials than road bike cranks. It's no mystery why they
    hold up better with heavy use.

    Chalo Colina

  9. On Tue, 17 May 2005 16:37:18 GMT,
    [email hidden] wrote:

    [snip]

    Quoted message said:

    I suppose you haven't seen the failure pictures of such [tubular
    steel] cranks but >they don't give me any hope for more durability.
    They look more like >tin cans that were torn apart above the pedal
    eye. I don't have any pictures but have seen them in the past.

    [snip]

    Dear Jobst,

    While not pedal eye failures, these are pictures of tubular
    cranks that failed:

    A failed Bullseye crank:

    http://pardo.net/bike/pic/fail-001/FAIL-002.html

    Three pictures of a failed Tioga Revolver crank:

    http://pardo.net/bike/pic/fail-001/FAIL-003.html

    (The third picture on the page above shows the "tin cans
    that were torn apart" notion, but that's merely what to
    expect from such hollow failures--a solid crank looks like a
    piece of snapped chalk when it breaks.)

    Carl Fogel

  10. Quoted message said:
    Sandy Leurre said:
    Quoted message said:

    I don't have much hope for that. Having discussed this with many
    crank folks at InterBike and receiving either blank stares from
    engineers who don't understand what I am demonstrating and
    explaining to the ones who don't think anyone knows more about
    cranks than they and have never seen a crank failure like this.

    Quoted message said:
    Quoted message said:

    This is typical for the bicycle industry as I have experienced it
    over the last decades. Shimano is an extreme case.

    Quoted message said:

    How much of a cone angle would it take to make the change you
    suggest? Is it radical, or mild, to achieve the effect you are
    aiming at?

    http://pardo.net/bike/pic/fail-001/FAIL-016.html

    The effect is the same as that of conical lug nuts on car wheels, that
    of centering and load carried in compression rather than shear. It
    prevents fretting motions that cause wear and unscrewing of right hand
    threads on left pedals or the converse for right pedals... that is to
    say, left hand threads for left pedals would not be required.

    [email hidden]

    so, based on your research, what effect does the interface angle have on
    the effect you're trying to achieve?

  11. jim beam said:

    [email hidden] wrote:


    [...]

    Quoted message said:
    Quoted message said:

    prevents fretting motions that cause wear and unscrewing of right hand
    threads on left pedals or the converse for right pedals... that is to
    say, left hand threads for left pedals would not be required.

    so, based on your research, what effect does the interface angle have on
    the effect you're trying to achieve?

    For a given bolt tension, the torque required to unscrew the joint is

    tau1 = mu*T*R/cos(theta)

    where

    T = bolt tension
    tau = required torque to unscrew
    mu = coefficient of friction (steel to aluminum)
    R = average radius of taper
    theta = angle of taper (0 is the usual)

    With theta = pi/4 (Jobst's modification) the relative torque
    is increased from 1 to sqrt(2) ~ 41%.

    Suppose we model the interface as a ball joint and then compute the
    torque required to make the joint rotate in the plane in which the
    spindle lies. Note that this torque is orthogonal to the unscrewing
    torque. The required torque is then

    tau2 = 2*mu*T*R/sin(2*theta)

    This is a minimum at theta = pi/4! However, this model is too
    simplistic. It predicts an infinite torque is required with a
    standard spindle (theta = 0) because the lever arm goes to infinity.

    Joe Riel

  12. Joe Riel said:
    jim beam said:

    [email hidden] wrote:


    [...]

    Quoted message said:
    Quoted message said:

    prevents fretting motions that cause wear and unscrewing of right hand
    threads on left pedals or the converse for right pedals... that is to
    say, left hand threads for left pedals would not be required.

    so, based on your research, what effect does the interface angle have on
    the effect you're trying to achieve?

    For a given bolt tension, the torque required to unscrew the joint is

    [snip unscrewing equations]

    Dear Joe,

    Is the torque required to unscrew the joint the same as
    fretting?

    That is, do the pedals actually unscrew from the crank in
    this situation and then screw back in, remaining in the same
    place forever?

    I'm not arguing, just not clear on the motion.

    Is it rotary from the point of view of the pedal shaft, like
    a bolt being turned by a wrench, with an X on the bolt head
    rotating?

    Or is it more a bending motion, like a fence-post set in
    concrete being pushed back and forth, with an X on the top
    of the fence post not rotating when viewed from above, but
    moving off-center to one side?

    Carl Fogel

  13. Carl Fogel said:

    Is the torque required to unscrew the joint the same as fretting?

    Quoted message said:

    That is, do the pedals actually unscrew from the crank in this
    situation and then screw back in, remaining in the same place
    forever?

    The pedal spindle is displaced as you would expect a steel pin in a
    stiff rubber crank bore. It skews and precesses but cannot tighten
    farther than it is because it is bearing on the crank face with a flat
    shoulder. As the crank face erodes from fretting, the pedal screws in
    as much as this loss of length predicts plus the erosion on the thread
    faces that hold the pedal in place.

    This moving thread interface is about as dirty as you can imagine. As
    many of us have found, the wear debris makes the pedal almost
    un-removable and about these we read here off and on. That is why the
    most benign removal is done by heating the crank on a gas flame until
    it sizzles to the wet finger.

    Quoted message said:

    Is it rotary from the point of view of the pedal shaft, like a bolt
    being turned by a wrench, with an X on the bolt head rotating?

    It would like to but because it is already hard up against the crank
    face, it cannot advance farther. The main motion is a radial offset
    from the geometric center of spindle and crank thread.

    Quoted message said:

    Or is it more a bending motion, like a fence-post set in concrete
    being pushed back and forth, with an X on the top of the fence post
    not rotating when viewed from above, but moving off-center to one
    side?

    Since these are metals and metals are elastic, there is always some
    bending taking place, but in this interface the radial displacement is
    the main culprit.

    [email hidden]

  14. Quoted message said:
    Carl Fogel said:

    Is the torque required to unscrew the joint the same as fretting?

    Quoted message said:

    That is, do the pedals actually unscrew from the crank in this
    situation and then screw back in, remaining in the same place
    forever?

    The pedal spindle is displaced as you would expect a steel pin in a
    stiff rubber crank bore. It skews and precesses but cannot tighten
    farther than it is because it is bearing on the crank face with a flat
    shoulder. As the crank face erodes from fretting, the pedal screws in
    as much as this loss of length predicts plus the erosion on the thread
    faces that hold the pedal in place.

    This moving thread interface is about as dirty as you can imagine. As
    many of us have found, the wear debris makes the pedal almost
    un-removable and about these we read here off and on. That is why the
    most benign removal is done by heating the crank on a gas flame until
    it sizzles to the wet finger.

    Quoted message said:

    Is it rotary from the point of view of the pedal shaft, like a bolt
    being turned by a wrench, with an X on the bolt head rotating?

    It would like to but because it is already hard up against the crank
    face, it cannot advance farther. The main motion is a radial offset
    from the geometric center of spindle and crank thread.

    Quoted message said:

    Or is it more a bending motion, like a fence-post set in concrete
    being pushed back and forth, with an X on the top of the fence post
    not rotating when viewed from above, but moving off-center to one
    side?

    Since these are metals and metals are elastic, there is always some
    bending taking place, but in this interface the radial displacement is
    the main culprit.

    [email hidden]

    Dear Jobst,

    So it's more two pieces rattling against each other than a
    rotary motion between the two faces.

    (Plus the tiny bit of tightening of the thread that you
    point out will occur as the faces wear away.)

    I'll try to think of it as a microscopic version of a
    rattlesnake's rattle, where the buttons rock back and forth
    at the joints, but don't twist relative to each other.

    Thanks for explaining it (again),

    Carl Fogel

  15. Quoted message said:

    Is the torque required to unscrew the joint the same as
    fretting?

    That is, do the pedals actually unscrew from the crank in
    this situation and then screw back in, remaining in the same
    place forever?

    Good question. I don't claim to understand what is going on,
    just making a few computations based on a simplistic model.

    Given that with normal pedals there is no unscrewing torque
    (the "precession" torque causes the spindles to tighten),
    my first computation is pointless.

    The more interesting computation is the second, where I make a
    reckless attempt to estimate how Jobst's conical design may reduce the
    presumed rocking/fretting motion caused by the cyclical load.
    However, the model is clearly wrong, the fretting motion doesn't, I
    think, cause a rocking motion that can be modeled as a ball joint, if
    anything the the pivot is on the other side (i.e. through crankarm).
    In which case the motion is more sliding/distorting. I'm not sure
    that there is a simple way to model this.

    Quoted message said:

    Or is it more a bending motion, like a fence-post set in
    concrete being pushed back and forth, with an X on the top
    of the fence post not rotating when viewed from above, but
    moving off-center to one side?

    I believe that that is a reasonable approximation.

    Joe

  16. Quoted message said:

    Since these are metals and metals are elastic, there is always some
    bending taking place, but in this interface the radial displacement is
    the main culprit.

    So the idea behind the "chamfer" is to convert a radial displacement
    into an axial displacement that increases the screw tension, hence
    reduces the movement.

    Joe

  17. Joe Riel said:
    Quoted message said:

    Since these are metals and metals are elastic, there is always some
    bending taking place, but in this interface the radial displacement
    is the main culprit.

    Quoted message said:

    So the idea behind the "chamfer" is to convert a radial displacement
    into an axial displacement that increases the screw tension, hence
    reduces the movement.

    Visualize the spindle as having a node in the middle of the tread
    about which the spindle yaws in rotation. The outer end of the
    spindle is not restrained from moving radially except by friction of
    the plane shoulder of the spindle that is screwed tight against the
    face of the crank.

    With the conical seat, as with lug nuts on cars, radial loads can be
    transmitted in compression between spindle and crank. A flat face
    cannot do that nor can a cylindrical one without a radial preload
    (press fit). That's why the square taper BB spindle is tapered. A
    conical seat takes care of furnishing preload and carrying the canting
    load in compression.

    [email hidden]

  18. Quoted message said:
    Carl Fogel said:

    Is the torque required to unscrew the joint the same as fretting?

    Quoted message said:

    That is, do the pedals actually unscrew from the crank in this
    situation and then screw back in, remaining in the same place
    forever?

    The pedal spindle is displaced as you would expect a steel pin in a
    stiff rubber crank bore. It skews and precesses but cannot tighten
    farther than it is because it is bearing on the crank face with a flat
    shoulder. As the crank face erodes from fretting, the pedal screws in
    as much as this loss of length predicts plus the erosion on the thread
    faces that hold the pedal in place.

    How does the initial tightness of the pedal affect this situation?
    From your description is sounds as if there will always be some wear
    and further turning of the pedal in the crank. Does this lead all
    pedal/cranks to eventually end up in the same state, or am I
    misunderstanding something?

  19. Joe Riel said:
    Quoted message said:

    Is the torque required to unscrew the joint the same as
    fretting?

    That is, do the pedals actually unscrew from the crank in
    this situation and then screw back in, remaining in the same
    place forever?

    Good question. I don't claim to understand what is going on,
    just making a few computations based on a simplistic model.

    Given that with normal pedals there is no unscrewing torque
    (the "precession" torque causes the spindles to tighten),
    my first computation is pointless.

    The more interesting computation is the second, where I make a
    reckless attempt to estimate how Jobst's conical design may reduce the
    presumed rocking/fretting motion caused by the cyclical load.
    However, the model is clearly wrong, the fretting motion doesn't, I
    think, cause a rocking motion that can be modeled as a ball joint, if
    anything the the pivot is on the other side (i.e. through crankarm).
    In which case the motion is more sliding/distorting. I'm not sure
    that there is a simple way to model this.

    the angled interface merely migrates the rocking pivot point from about
    the middle of the spindle thread to the shamfer itself.

    Quoted message said:
    Quoted message said:

    Or is it more a bending motion, like a fence-post set in
    concrete being pushed back and forth, with an X on the top
    of the fence post not rotating when viewed from above, but
    moving off-center to one side?

    I believe that that is a reasonable approximation.

    Joe

  20. Quoted message said:

    The effect is the same as that of conical lug nuts on car wheels, that
    of centering and load carried in compression rather than shear. It
    prevents fretting motions that cause wear and unscrewing of right hand
    threads on left pedals or the converse for right pedals... that is to
    say, left hand threads for left pedals would not be required.

    Would this then be a good mod to do on
    regular-cranksets-converted-for-tandem-use?

    Jasper

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