Recumbent bicycles · Public discussion

Swing arm bearing

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Recumbent bicycles
Published
11 May 2004
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9 June 2004
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Jt
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  1. I want to put a swing arm onto a bike I'm building, but what
    bushing, what's the best aproach?

    Any know-how out there would be much appreciated.

    Regards JT

  2. Green Gear - Bike Friday has lots of experience

    "JT" <[email hidden]> wrote in message
    "]news:[email hidden]...
    | I want to put a swing arm onto a bike I'm building, but
    | what bushing,
    what's
    | the best aproach?
    |
    | Any know-how out there would be much appreciated.
    |
    | Regards JT
    |
    |

  3. Depending on the weight of the rider(s) and how hard you
    intend to use it, my friends and I use 1/2"(or 12mm) or 3/8"
    precision bearings and a grade 8 pivot bolt. Make/get a
    piece of steel tube and press the bearings into the end with
    a compression tube in the middle. The 1/2" & 12mm would be
    for the heavier/harder rider while the 3/8" would be for
    lighter and more moderate riders (say 210lbs and under ?).

    "JT" <[email hidden]> wrote in message
    "]news:[email hidden]...

    Quoted message said:

    I want to put a swing arm onto a bike I'm building, but
    what bushing,


    what's

    Quoted message said:

    the best aproach?

    Any know-how out there would be much appreciated.

    Regards JT

  4. "Sticker Jim" <[email hidden]> wrote in message
    "]news:[email hidden]...

    Quoted message said:

    Depending on the weight of the rider(s) and how hard you
    intend to use it, my friends and I use 1/2"(or 12mm) or
    3/8" precision bearings and a grade


    8

    Quoted message said:

    pivot bolt.

    Here's one vote that says precision bearings and Grade 8 are
    vast overkill/expense.

    First, figure that the suspension spring/damper element
    itself has stiction/viscous friction to begin with (some
    commercial suspension elements have a LOT of striction), so
    trying to minimize it at the swing arm pivot joint is
    pointless.

    Second, figure the loads. Rider and vehicle weight are
    largely supported by the spring/damper, and the direct
    radial loads on the bearings derive primarily from
    traction and braking, which is to say they are not that
    great. The significant loads on a swing arm derive from
    the side loads from wind and cornering. Though the
    external forces may be modest, they are applied over lever
    arms the size of ,say, the wheel radius or the swing arm
    length, and the resulting moments must be taken out across
    the side-to-side span of the pivot joint. Notice that
    these loads in a trike swing axle pivot might be 5 or 10
    times those generated in a two-wheeler. These applied
    moments are related to the other critical design issue,
    wheel alignment, which I'll discuss below.

    Third, consider the application. Ball bearings are designed
    and built to spin, and they're not particularly happy making
    small reciprocating motions as in a suspension joint. Now,
    in this case the loads are low, and I'm not claiming that
    they'll fail, but they're overkill. Look around at
    production automotive applications - a world of 100,000 mile
    warrantys and micro-penny counting. I can't think of a place
    where ball or roller bearings are used like that. Where low
    friction reciprocating joints are required, you sometimes
    see needle bearings, where the displacement allows for a
    turn or two of the rolling element.

    Fourth, alignment. Fore and aft alignment is not important,
    side-to-side medium important. What is critical are the
    wheel alignments: 1.) toe (angular displacement of the rear
    wheel about a vertical axis), and 2.) camber (angular
    displacement of the rear wheel about the longitudinal axis
    of the vehicle.), both relative to the position of the front
    wheel. These alignments are established by the relative
    positions of the two swing arm pivot bearings. Initial
    misalignment, structural flexibility, excessive clearances,
    or wear here will kill the design.

    So, considering all of this, what does the bearing look
    like? Considering the small motions, it'll have a bushing
    (well-greased bronze or Delrin if the loads are right)
    running in a thin-wall housing on a thin wall largish
    diameter shaft. The downside here is the weld or braze
    distortion you get when you join the housing to the frame.
    If you have a shop, it's pretty straightforward to bore the
    housing after welding, hard without the shop.

    But the really nifty solution would be to rip the design off
    race cars. Use a pair of spherical joints threaded into the
    ends of the swing arms. Compute the load ranges and pick a
    ball joint technology (bronze, Delrin, etc.) that fits. Make
    the span of the joint wide enough to get the loads and the
    alignment sensitivity down.

    If you're building with angle-iron-hack-saw-and-stick-
    welder, you can use four or five spherical joints and
    forget about alignment altogether until you get to the
    mechanical assembly.

    Use bolts soft enough to drill out the centers. When you
    size the ball joint for load, you won't need anything like
    the full bolt area for shear. Before hitech materials
    arrived, it was common for race car designers to drill out
    bolt centers to save weight. It's a little mysterious why
    this technique hasn't percolated down into recumbents.

    Too, it baffles me why people insist that Grade 8 bolts are
    the "best" for anything. For moving vehicles "best" is
    usually AN.

    Just free advice, Fred Klingener

  5. "Fred Klingener" <[email hidden]> wrote in message
    "]news:[email hidden]...

    Quoted message said:

    "Sticker Jim" <[email hidden]> wrote in message news:MY6xc.1-
    [email hidden]...

    Quoted message said:

    Depending on the weight of the rider(s) and how hard you
    intend to use


    it,

    Quoted message said:
    Quoted message said:

    my friends and I use 1/2"(or 12mm) or 3/8" precision
    bearings and a


    grade

    Quoted message said:

    8

    Quoted message said:

    pivot bolt.

    Here's one vote that says precision bearings and Grade 8
    are vast overkill/expense.

    First, figure that the suspension spring/damper element
    itself has stiction/viscous friction to begin with (some
    commercial suspension


    elements

    Quoted message said:

    have a LOT of striction), so trying to minimize it at the
    swing arm pivot joint is pointless.

    Second, figure the loads. Rider and vehicle weight are
    largely supported


    by

    Quoted message said:

    the spring/damper, and the direct radial loads on the
    bearings derive primarily from traction and braking, which
    is to say they are not that great. The significant loads
    on a swing arm derive from the side loads from wind and
    cornering. Though the external forces may be modest, they


    are

    Quoted message said:

    applied over lever arms the size of ,say, the wheel radius
    or the swing


    arm

    Quoted message said:

    length, and the resulting moments must be taken out
    across the


    side-to-side

    Quoted message said:

    span of the pivot joint. Notice that these loads in a
    trike swing axle pivot might be 5 or 10 times those
    generated in a two-wheeler. These applied moments are
    related to the other critical design issue, wheel
    alignment, which I'll discuss below.

    Third, consider the application. Ball bearings are
    designed and built to spin, and they're not particularly
    happy making small reciprocating


    motions

    Quoted message said:

    as in a suspension joint. Now, in this case the loads are
    low, and I'm


    not

    Quoted message said:

    claiming that they'll fail, but they're overkill. Look
    around at


    production

    Quoted message said:

    automotive applications - a world of 100,000 mile
    warrantys and


    micro-penny

    Quoted message said:

    counting. I can't think of a place where ball or roller
    bearings are used like that. Where low friction
    reciprocating joints are required, you sometimes see
    needle bearings, where the displacement allows for a turn
    or two of the rolling element.

    Fourth, alignment. Fore and aft alignment is not
    important, side-to-side medium important. What is critical
    are the wheel alignments: 1.) toe (angular displacement of
    the rear wheel about a vertical axis), and 2.) camber
    (angular displacement of the rear wheel about the
    longitudinal axis of the vehicle.), both relative to the
    position of the front wheel. These alignments are
    established by the relative positions of the two swing arm
    pivot bearings. Initial misalignment, structural
    flexibility, excessive clearances, or wear here will kill
    the design.

    So, considering all of this, what does the bearing look
    like? Considering the small motions, it'll have a bushing
    (well-greased bronze or Delrin if the loads are right)
    running in a thin-wall housing on a thin wall largish
    diameter shaft. The downside here is the weld or braze
    distortion you get when you join the housing to the frame.
    If you have a shop, it's pretty straightforward to bore
    the housing after welding, hard without the shop.

    But the really nifty solution would be to rip the design
    off race cars.


    Use

    Quoted message said:

    a pair of spherical joints threaded into the ends of the
    swing arms. Compute the load ranges and pick a ball joint
    technology (bronze, Delrin, etc.) that fits. Make the span
    of the joint wide enough to get the loads and the
    alignment sensitivity down.

    If you're building with angle-iron-hack-saw-and-stick-
    welder, you can use four or five spherical joints and
    forget about alignment altogether until you get to the
    mechanical assembly.

    Use bolts soft enough to drill out the centers. When you
    size the ball joint for load, you won't need anything like
    the full bolt area for shear. Before hitech materials
    arrived, it was common for race car designers to drill out
    bolt centers to save weight. It's a little mysterious why
    this technique hasn't percolated down into recumbents.

    Too, it baffles me why people insist that Grade 8 bolts
    are the "best" for anything. For moving vehicles "best" is
    usually AN.

    Just free advice, Fred Klingener

    Good points, but . . .

    First, I'm not an engineer. I try to take into consideration
    the direction of the loads but I have no idea what the loads
    are, nor do I know what the bearings, bolts, steel, etc
    loads are. What I do know about is rider abuse. I usually
    try to idiot-proof anything I build but I am sometimes
    surprised.

    I understand what role the bearings play and what they are
    designed for but for lack of anything better/more applicable
    at the same price, I use the bearings. They have precision
    dimensions, fit easily in standard tubing (no machining),
    they're hardened and easy to come by. Sintered bushings are
    easy to get and cheap but also much softer. I've seen guys
    that used bushings for similar pivot points and they get
    elongated in the small section where they are constantly
    under load and that doesn't include the wrenching/yawing
    motion that the lateral forces from a trike would add.

    I get precision bearings at a pretty good price (I think) of
    about $2.50 Cdn ea - that's $5 for two 12mm or 1/2" bearings
    - 3/8" are less. A grade 8 bolt is less than $2 and a Gr 5
    is cheaper still. They have more than enough strength BUT
    I'm interested in hardness, not shear or tensile str. I've
    seen and had stainless and Gr 2 bolts bend and shear (even
    Gr 5 bolts), especially on chain pulleys when someone gets
    on and tries to power away in high gear. So, for ~$12 I have
    a pretty sweet pivot point not counting maybe another $1 in
    washers and a nyloc nut. No slop, and no play in this
    assembly either.

    Now, let's switch to your idea of the spherical type rod
    end. The cheapest ones I can get are $13 Cdn and I don't
    really like them because there is already play in them.
    That's for 5/16" too. If I get 3/8" and up it's over $15
    each and that is for what I perceive to be low end rod ends.
    They aren't stainless and don't have any kind of protective
    boot. I have no idea how strong they are either (even the
    parts store doesn't know/can't be bothered to find out). So,
    I'm at $30 already and haven't bought any nuts, bolts or
    washers AND I don't trust the joint already. I have no idea
    what good joints would cost and the time it would take to
    track them down would be more time than it would take to
    build a pivot the way I do now. Also, all the current parts
    I use were found at the same place I buy the rest of my
    hardware so there was no searching required for them.

    In the end, I'll buy a Gr 8 bolt and spend an extra .50
    cents to a dollar on it because it's peace of mind. The
    precision bearings are the same, AND cheap and easy to
    replace (but I haven't heard of any of my friends needing to
    replace theirs yet and that's with almost 2 years running
    them at ~200 to 400 km a week. Good enough for me.

    Reliable, inexpensive, TIGHT pivots are what is stopping me
    from building a full suspension trike. I've seen some
    commercial offerings of full suspension and even brand new,
    there's play in them, too much for me to be happy with.

    Lastly, while I am not much of a sheep, I am a little
    pragmatic when it comes to pivot point design. Of all the
    bikes and trikes I've seen with rear suspension, none of
    them use spherical ball. I'm sure there's a reason why, but
    I'm not wasting my time finding out because I'll be busy
    building pivots the way I do. As I become 100% confident in
    the strength, reliability and durability of the pivots, I'll
    start downsizing components (which the 3/8" bolt is an
    example) and again, I'll watch it 'til I'm happy with it. It
    would be pretty easy to tear apart a commercial offering of
    a pivot point and measure everything, but I don't have one
    and don't know of anyone that would let me temporarily
    disassemble theirs. I'm not too worried though as from the
    looks of them, I decided to start with a bolt and 2
    bearings, and go from there. In the end, the experimentation
    and overbuilding only amounts to a few dollars per trike.
    I'm fine with that. I'd rather be overbuilt/overkilled than
    have it fall apart.

    YMMV

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