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Re: [Fot] Racing rod design

To: "'Michael Porter'" <mdporter@dfn.com>
Subject: Re: [Fot] Racing rod design
From: "MadMarx" <tr4racing@googlemail.com>
Date: Wed, 22 Jul 2015 09:09:32 +0200
Cc: 'FOT' <fot@autox.team.net>
Delivered-to: mharc@autox.team.net
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Hi Michael,

=20

I add a little graphic about stiffness:

=20

Bild

The graph was taken from the web but it shows very clear that the =
stiffness
of an I beam and a H beam are in different directions.

I beam  stiffness is perpendicular to the crank, H beam parallel to the
crank axis.

=20

There are 3 major forces in a rod:

Pulling at TDC

Compression at LDC

And bending from the rotation

=20

For the first two forces the area of the rod is the important factor. =
The
shape is not important.

For the bending forces the shape gets important.

If you attach a rope to a wall, take the other end in your hand and =
moving
your hand quick up and down (like a crank stroke) the rope will swing up =
and
down too and shows a bended line. A rod is like this rope and gets =
bended
caused by the rotation of the crank.

For the stiffness of the rod beam the orientation if the beam design is =
very
mandatory. Like a beam in a building there is a strong axis and a weak =
axis.

The top graph shows how the =93I =3D stiffness value=94 is affected by =
the
orientation of the H or I.

That means an I rod can bear more bending forces than a H rod. An that =
leads
to a better resistance of an I rod against fatigue.

=20

Crank flexing is there but compared to the 3 main forces so small that =
it
doesn=92t influent the total result.

If it would, then all engines would suffer from many bearing failures
because at least to transfer the flexing from the crank journal to the =
rod
beam the only contact way would be the bearing and that means the =
bearing
gets forces on its edge and it would bear this for long and fail =
quickly.

=20

I had a look to the Manly rod catalogue.

All I-beam rods seem to bear higher power than the H-beam ones by same =
or
lower weight. I think that is a clear statement of a rod designer who =
builds
both types. The H-beam is the cheap brother of the I-beam and fails =
earlier
on heavy use is my guess from all I have learned in the last few days.

=20

But I=92m open for other thoughts.

=20

Cheers

Chris

=20

=20

=20

Von: Michael Porter [mailto:mdporter@dfn.com]=20
Gesendet: Mittwoch, 22. Juli 2015 00:19
An: MadMarx
Betreff: Re: [Fot] Racing rod design

=20

On 7/21/2015 11:24 AM, MadMarx wrote:

Hi Guys,

=20

=20

In US forums I found an interesting opinion:

=20

H-beam rods are for low rev high torque engine (turbo, compressor)

I-beam are for medium torque engines with high revs

=20

=20


It's going to depend upon four variables--Young's modulus for the =
specific
material used, the section modulus of the shape used, the mass and the
finish treatment.  In a piston engine, the peak bending load is going to =
be
at the point of highest downward pressure on the piston combined with =
the
largest angular deflection of the rod from perpendicular.  That's going =
to
be somewhere around 75-90 deg. of rotation after TDC on the power =
stroke. =20

If all other variables are the same, then section modulus matters, and
generally, what determines the section modulus with regard to bending is =
the
beam strength and resistance to torsional deflection (even though the =
rod
runs in only one plane, torsional deflection has to be considered since =
the
crank throws are heaving up and down and bending the crank between the =
mains
under both varying piston pressure and inertial forces, and those forces =
are
translated to the rod at roughly 90 deg. to the plane of rod rotation).

For that reason, I think the H-beam rod would have a lower stiffness in =
the
vector approximately 90 deg from its plane of rotation, as compared to =
an
I-beam, all other things being equal. With forces parallel to the plane =
of
rotation, the H-beam ought to be stiffer.  So, maybe, the difference is =
not
exactly rpm, but how the crankshaft behaves at that rpm.  If it's =
twisting
and bending, the rods will be subject to twisting and bending loads more =
or
less normal to the plane of rotation--the vector where the H-beam has =
the
least beam strength, in addition to the expected bending loads parallel =
to
the plane of rotation.

With a theoretically perfect crankshaft, one that does not deflect under
load, the H-beam rod would be stronger and less prone to deflection in =
all
cases, I'm presuming, because its section modulus would be higher, and =
its
beam strength higher in the plane of rotation.  It might be that the =
H-beam
is still actually superior in all cases, if properly finished, is no
heavier, is of the best material and is not subjected to =
bending/torsional
loads beyond its limits angular to the plane of rotation. But, to know =
for
sure, one would need to know the actual section modulus of the specific
shapes to be compared, and to have some idea of the crankshaft behavior =
at
the speeds required.  And, it would probably be helpful to do some =
detailed
analysis of the failure mode of the rod in question.  Signs of fatigue =
from
torsional flexing or side bending loads would be helpful to know, and =
would
inform any decision about what to buy next.


Cheers, Chris.







--=20
=20
=20
Michael Porter
Roswell, NM
=20
=20
Never let anyone drive you crazy when you know it's within walking
distance....

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</o:shapelayout></xml><![endif]--></head><body bgcolor=3Dwhite lang=3DDE =
link=3Dblue vlink=3Dpurple><div class=3DWordSection1><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Hi Michael,<o:p></o:p></span></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>I add a little graphic about stiffness:<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><img width=3D1024 height=3D664 id=3D"Bild_x0020_1" =
src=3D"cid:image001.jpg@01D0C45C.23F5EFE0" alt=3DBild></span><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>The graph was taken from the web but it shows very clear that the =
stiffness of an I beam and a H beam are in different =
directions.<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>I beam =A0stiffness is perpendicular to the crank, H beam parallel to =
the crank axis.<o:p></o:p></span></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>There are 3 major forces in a rod:<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Pulling at TDC<o:p></o:p></span></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Compression at LDC<o:p></o:p></span></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>And bending from the rotation<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>For the first two forces the area of the rod is the important factor. =
The shape is not important.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>For the bending forces the shape gets =
important.<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>If you attach a rope to a wall, take the other end in your hand and =
moving your hand quick up and down (like a crank stroke) the rope will =
swing up and down too and shows a bended line. A rod is like this rope =
and gets bended caused by the rotation of the =
crank.<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>For the stiffness of the rod beam the orientation if the beam design =
is very mandatory. Like a beam in a building there is a strong axis and =
a weak axis.<o:p></o:p></span></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>The top graph shows how the &#8220;I =3D stiffness value&#8221; is =
affected by the orientation of the H or I.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>That means an I rod can bear more bending forces than a H rod. An =
that leads to a better resistance of an I rod against =
fatigue.<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Crank flexing is there but compared to the 3 main forces so small =
that it doesn&#8217;t influent the total result.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>If it would, then all engines would suffer from many bearing failures =
because at least to transfer the flexing from the crank journal to the =
rod beam the only contact way would be the bearing and that means the =
bearing gets forces on its edge and it would bear this for long and fail =
quickly.<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>I had a look to the Manly rod catalogue.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>All I-beam rods seem to bear higher power than the H-beam ones by =
same or lower weight. I think that is a clear statement of a rod =
designer who builds both types. The H-beam is the cheap brother of the =
I-beam and fails earlier on heavy use is my guess from all I have =
learned in the last few days.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>But I&#8217;m open for other thoughts.<o:p></o:p></span></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Cheers<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Chris<o:p></o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'><o:p>&nbsp;</o:p></span></p><div><div =
style=3D'border:none;border-top:solid #B5C4DF 1.0pt;padding:3.0pt 0cm =
0cm 0cm'><p class=3DMsoNormal><b><span =
style=3D'font-size:10.0pt;font-family:"Tahoma","sans-serif";color:windowt=
ext'>Von:</span></b><span =
style=3D'font-size:10.0pt;font-family:"Tahoma","sans-serif";color:windowt=
ext'> Michael Porter [mailto:mdporter@dfn.com] <br><b>Gesendet:</b> =
Mittwoch, 22. Juli 2015 00:19<br><b>An:</b> MadMarx<br><b>Betreff:</b> =
Re: [Fot] Racing rod design<o:p></o:p></span></p></div></div><p =
class=3DMsoNormal><o:p>&nbsp;</o:p></p><div><p class=3DMsoNormal>On =
7/21/2015 11:24 AM, MadMarx wrote:<o:p></o:p></p></div><blockquote =
style=3D'margin-top:5.0pt;margin-bottom:5.0pt'><div><p =
class=3DMsoNormal><span =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>Hi Guys,</span><o:p></o:p></p><p class=3DMsoNormal><span =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>&nbsp;</span><o:p></o:p></p><p =
class=3DMsoNormal><o:p>&nbsp;</o:p></p><p class=3DMsoNormal><span =
lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>In US forums I found an interesting opinion:</span><o:p></o:p></p><p =
class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>&nbsp;</span><o:p></o:p></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>H-beam rods are for low rev high torque engine (turbo, =
compressor)</span><o:p></o:p></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>I-beam are for medium torque engines with high =
revs</span><o:p></o:p></p><p class=3DMsoNormal><span lang=3DEN-US =
style=3D'font-size:10.0pt;font-family:"Verdana","sans-serif";color:#1F497=
D'>&nbsp;</span><o:p></o:p></p><p =
class=3DMsoNormal><o:p>&nbsp;</o:p></p></div></blockquote><p =
class=3DMsoNormal><br>It's going to depend upon four variables--Young's =
modulus for the specific material used, the section modulus of the shape =
used, the mass and the finish treatment.&nbsp; In a piston engine, the =
peak bending load is going to be at the point of highest downward =
pressure on the piston combined with the largest angular deflection of =
the rod from perpendicular.&nbsp; That's going to be somewhere around =
75-90 deg. of rotation after TDC on the power stroke.&nbsp; <br><br>If =
all other variables are the same, then section modulus matters, and =
generally, what determines the section modulus with regard to bending is =
the beam strength and resistance to torsional deflection (even though =
the rod runs in only one plane, torsional deflection has to be =
considered since the crank throws are heaving up and down and bending =
the crank between the mains under both varying piston pressure and =
inertial forces, and those forces are translated to the rod at roughly =
90 deg. to the plane of rod rotation).<br><br>For that reason, I think =
the H-beam rod would have a lower stiffness in the vector approximately =
90 deg from its plane of rotation, as compared to an I-beam, all other =
things being equal. With forces parallel to the plane of rotation, the =
H-beam ought to be stiffer.&nbsp; So, maybe, the difference is not =
exactly rpm, but how the crankshaft behaves at that rpm.&nbsp; If it's =
twisting and bending, the rods will be subject to twisting and bending =
loads more or less normal to the plane of rotation--the vector where the =
H-beam has the least beam strength, in addition to the expected bending =
loads parallel to the plane of rotation.<br><br>With a theoretically =
perfect crankshaft, one that does not deflect under load, the H-beam rod =
would be stronger and less prone to deflection in all cases, I'm =
presuming, because its section modulus would be higher, and its beam =
strength higher in the plane of rotation.&nbsp; It might be that the =
H-beam is still actually superior in all cases, if properly finished, is =
no heavier, is of the best material and is not subjected to =
bending/torsional loads beyond its limits angular to the plane of =
rotation. But, to know for sure, one would need to know the actual =
section modulus of the specific shapes to be compared, and to have some =
idea of the crankshaft behavior at the speeds required.&nbsp; And, it =
would probably be helpful to do some detailed analysis of the failure =
mode of the rod in question.&nbsp; Signs of fatigue from torsional =
flexing or side bending loads would be helpful to know, and would inform =
any decision about what to buy next.<br><br><br>Cheers, =
Chris.<br><br><br><br><br><br><o:p></o:p></p><pre>-- =
<o:p></o:p></pre><pre><o:p>&nbsp;</o:p></pre><pre><o:p>&nbsp;</o:p></pre>=
<pre>Michael Porter<o:p></o:p></pre><pre>Roswell, =
NM<o:p></o:p></pre><pre><o:p>&nbsp;</o:p></pre><pre><o:p>&nbsp;</o:p></pr=
e><pre>Never let anyone drive you crazy when you know it's within =
walking distance....<o:p></o:p></pre></div></body></html>
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