Return-Path: Received: from mailout1.pacific.net.au ([61.8.0.84] verified) by logan.com (CommuniGate Pro SMTP 4.2.8) with ESMTP id 657040 for flyrotary@lancaironline.net; Thu, 03 Feb 2005 10:23:35 -0500 Received-SPF: none receiver=logan.com; client-ip=61.8.0.84; envelope-from=peon@pacific.net.au Received: from mailproxy2.pacific.net.au (mailproxy2.pacific.net.au [61.8.0.87]) by mailout1.pacific.net.au (8.12.3/8.12.3/Debian-7.1) with ESMTP id j13FN3A6018017 for ; Fri, 4 Feb 2005 02:23:03 +1100 Received: from ar1 (ppp25E0.dyn.pacific.net.au [61.8.37.224]) by mailproxy2.pacific.net.au (8.12.3/8.12.3/Debian-7.1) with SMTP id j13FMB8v021953 for ; Fri, 4 Feb 2005 02:22:11 +1100 Message-ID: <007201c50a03$be4093d0$e025083d@ar1> From: "Leon" To: "Rotary motors in aircraft" References: Subject: For Al & Paul - BMEP Torque BHP & Hi Comp rotors was Re: [FlyRotary] Re: more flying Date: Fri, 4 Feb 2005 02:19:21 +1100 MIME-Version: 1.0 Content-Type: multipart/mixed; boundary="----=_NextPart_000_006C_01C50A5F.F00CD1B0" X-Priority: 3 X-MSMail-Priority: Normal X-Mailer: Microsoft Outlook Express 6.00.2800.1409 X-MimeOLE: Produced By Microsoft MimeOLE V6.00.2800.1409 This is a multi-part message in MIME format. ------=_NextPart_000_006C_01C50A5F.F00CD1B0 Content-Type: multipart/alternative; boundary="----=_NextPart_001_006D_01C50A5F.F00CD1B0" ------=_NextPart_001_006D_01C50A5F.F00CD1B0 Content-Type: text/plain; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable MessageHey Al, I just had a look at your BMEP graph. Sorry to rain on your parade Al, = but I just have to disagree with your conclusions, because they fly in = the face of both theory, and practical results. I find it distressing = that Paul Connor (and others) are again being fed incorrect information. Firstly, I assume you know that BMEP is a THEORETICAL, TOTALLY = MYTHICAL number calculated from actual Torque output from a dyno? = ('Cause it's a MEAN figure - an average - therefore NOT measured = directly). WE all know that torque varies with rotation of the E-Shaft, = and is therefore not constant (which is why we run a damper between the = engine & the PSRU). BMEP is usually calculated thus: BMEP =3D 150.8 x TORQUE =F7 DISPLACEMENT (in Cu.In.) I also assume that you understand that Power is related to Torque via = RPM. It has been said that: "High BMEP and a low rpm, or a low BMEP and a high rpm, can equal the = same power". A better formula then is: BMEP =3D ( BHP * 13000 ) / ( L * RPM ) L =3D Displacement in Liters=20 Or =20 BHP =3D (BMEP * L * RPM) / 13000 BMEP doesn't relate directly to BHP. You must ALSO take into account = the RPM in the equation!!!! BHP is RPM dependant, BMEP is not!!!! = But we can play theoretical mathematics all day and prove nothing ... = Been there, done that with our "Running the numbers" mate at that other = place. (Remember the EWP fracas - nah, it can't work, just proved it = mathematically - even though they DO work in practice!!). Even a casual glance at a typical dyno sheet will show that the torque = peak (and therefore BMEP peak) for a rotary mild port is somewhere = around say 4,500 RPM. This is the point of MAXIMUM Volumetric = Efficiency, after which, Vol Eff drops off. However, the power plot = continues to climb to a peak somewhere around say 7,000 RPM (I'm = generalising here - so no NITPICKING please). So even though the Vol = Eff/Torque/BMEP is dropping off, the power is continuing to climb. So = even small increases in Vol Eff/Torque/BMEP at high RPM can mean a = considerable increase in BHP!! For further reading, the following URLs might be helpful: http://www.tsrsoftware.com/bmep.htm http://www.epi-eng.com/ET-BMEP.htm http://www.factorypipe.com/Technical/Tech_Articles/BMEP/bmep.html This last URL is particularly helpful, as it has some nice graphs which = make the topic very clear, even to a novice. Now additionally, I'm wondering as to how the BMEP figures on your = graph were arrived at. This graph looks like it was lifted by Lamar out = of Kenichi Yamamoto's excellent book, "The Rotary Engine". However, = while most of the stuff in the book is still valid, it is some 20-25-30 = years out of date in other respects. Since then, sealing grid = technologies have progressed, and, for any GIVEN compression ratio, = the calculated BMEP (based on observed torque) has risen due to better = sealing. So due to the above reasons, I question your calculated increase in BHP = with increased compression ratio based on your BMEP chart. More to the = point, it also flies in the face of hard dyno data that I have = accumulated over the past 20 years or so. Which is why I have been = beating the drum for the use of high comp rotors for aero use. As an = aside, in Improved Production Racing over here, if you DON'T have = 9.7:1 rotors in your "Chook Cooker" or "Rice Burner", you are relegated = to 5th or 6th row of the grid. Must be a lesson there somewhere ... ?? However, I can only happily agree with your figures for your own 20B = (done on a dyno), and your pro-rata calcs for a 13B on the same basis, = although I must confess that I could never understand why you (or = anybody else for that matter) would run an NA motor with turbo rotors in = it ... But then again, Lamar has always reckoned that I'm an idiot!! Now after much BS on ACRE, I initially told Paul Connor that he would = be lucky to get 140 BHP @ 5,300 RPM with his 8.5:1 turbo rotors. = You're pro-rata estimate was 142 @ 5,200 RPM for a 13B, based on your = own dyno figures. So my ballpark prognostication of 140 was PRETTY = CLOSE!! I will also happily agree with your figure of 173 BHP @ 6,000 = RPM (I can't even pretend to dispute it, after all, it's based on = practical experiment on a dyno - and it agrees within a few BHP of what = I'd expect to get down here in the Antipodes anyway). =20 However, I MUST disagree with you about the BHP increase when using = 9.7:1 rotors. After all, going from 8.5:1 to 9.7:1 compression is a = considerable step!! Seems like no body over your neck of the woods has = bothered to do any dyno runs with these rotors. Well, ...my PRACTICAL = experience tells me that I can expect about 82 - 85 BHP per rotor @ = around 5,000 RPM, slightly in excess of 100 BHP per rotor @ 6,000 RPM, = and around 112 - 113 BHP per rotor @ 7,000 RPM, using the same = carefully mild ported REW / Cosmo engine ports, (obviously assuming = good inlet and exhaust systems).. =20 Incidentally, for those that are interested, the only difference = between the REW and Cosmo ports is that the Cosmo inlet runner is bigger = at the manifold flange, and tapers down to the port. The actual port = on the side face is the same size. See attached pic. The pic shows = from left to right: Cosmo rear, REW rear, Renesis 4 port rear, Renesis 4 port front, = Cosmo front, REW front. So based on past experience, I'd be expecting about 175 BHP @ 5,200 = RPM, 200 BHP @ 6,000 RPM, and 225 BHP @ 7,000 RPM out of a 13B with = 9.7:1 rotors running on nicely ported REW or Cosmo end plates. (Again, = that's assuming you have a decent inlet and exhaust system - no cast = iron boxes etc). So summarising, to compare compression ratio changes with changes in = BHP, you have to compare compression ratio changes with changes in BHP, = NOT BMEP (which is just a theoretical mythical calculation dreamed up = by armchair engineers, and mathematically derived from torque readings = from a dyno, and doesn't take into account the RPM factor in BHP = calcs!! )=20 You must also take into account the Volumetric Efficiency of the engine, = which, among other things, has to do with the sealing grid, as well = as the compression ratio. Higher comp rotors SUCK harder as well as = squeeze harder .. but only if the sealing grid is up to scratch!!. A = properly ported and manifolded rotary will make 125% - 130% Volumetric = Efficiency, assuming the sealing grid has been cut and clearanced = properly ( another black art about which very few people have the = slightest clue). This is why good rotaries on the race track run rings = around most piston engines of a similar capacity, which rarely exceed = 110% Vol Eff. Cheers, Leon ----- Original Message -----=20 From: Al Gietzen=20 To: Rotary motors in aircraft=20 Sent: Wednesday, February 02, 2005 2:55 AM Subject: [FlyRotary] Re: more flying Al, Where are these graphs? Could you post them or email them? They sound interesting ... Jim S. It is one that PL scanned and posted 4-5 years ago; so scanning the = scan doesn't give a very good copy, even at 300dpi. It has curves for = only two compression ratios, so it takes a little = interpolation/extrapolation to get an estimate for other ratios. Al (I tried to send the scanned file of 220KB, but it was rejected as = being 301kb, over the 300kb limit. I'll try something else. Al) I pulled out a graph out of my file showing HP, compression ratio = and rpm for WOT performance. It does show that the difference would = small (about 2% at 6000rpm), and getting less as rpm increases. The = curves only go to 6000. But the difference is significant in the, say, = 3500 to 5500 range. At 5000 going from 9.7 to 9.0 loses about 4%, from = 9.7 to 8.5 loses about 6.5%. I have no info on engine model or = configuration used for the measurement. FWIW, Al ------=_NextPart_001_006D_01C50A5F.F00CD1B0 Content-Type: text/html; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable Message
Hey Al,
 
I just had a look at your BMEP = graph.  Sorry=20 to rain on your parade Al,  but I just have to disagree with your=20 conclusions,  because they fly in the face of both theory,  = and=20 practical results.  I find it distressing that Paul Connor (and = others) are=20 again being fed incorrect information.
 
Firstly,  I assume you know = that BMEP is=20 a THEORETICAL,  TOTALLY MYTHICAL number calculated = from=20 actual Torque output from a dyno?  ('Cause it's a MEAN figure - an = average=20 - therefore NOT measured directly).  WE all know that torque varies = with=20 rotation of the E-Shaft,  and is therefore not constant (which is = why we=20 run a damper between the engine & the PSRU).  BMEP is usually=20 calculated thus:
 
BMEP =3D 150.8 x = TORQUE =F7=20 DISPLACEMENT (in Cu.In.)
 
I also assume that you understand that = Power is=20 related to Torque via RPM.  It has been said that:
 
"High BMEP and a low rpm, or a low BMEP and a high rpm, can equal = the same=20 power".
 
A better formula = then is:
 

BMEP =3D ( BHP * 13000 ) / ( L * RPM )

L =3D Displacement in Liters =

Or =20

BHP  =3D (BMEP * L * RPM) / = 13000

BMEP doesn't relate directly to = BHP.  You=20 must ALSO take into account the RPM in the equation!!!!  BHP = is RPM=20 dependant,  BMEP is not!!!!   But we can play theoretical = mathematics all day and prove nothing ...  Been there,  done = that with=20 our "Running the numbers" mate at that other place.  (Remember the = EWP=20 fracas - nah,  it can't work,  just proved it mathematically - = even=20 though they DO work in practice!!).
 
Even a casual glance at a typical dyno = sheet will=20 show that the torque peak (and therefore BMEP peak) for a rotary mild=20 port is somewhere around say 4,500 RPM.  This is the point of = MAXIMUM=20 Volumetric Efficiency,  after which,  Vol Eff drops off.  = However,  the power plot continues to climb to a peak somewhere = around say=20 7,000 RPM (I'm generalising here - so no NITPICKING please).  = So even=20 though the Vol Eff/Torque/BMEP is dropping off,  the power is = continuing to=20 climb.  So even small increases in Vol Eff/Torque/BMEP at high = RPM can=20 mean a considerable increase in BHP!!
 
 
For further reading,  the following URLs might be = helpful:
 
http://www.tsrsoftware.com/b= mep.htm
 
http://www.epi-eng.com/ET-BME= P.htm
 
http://www.factorypipe.com/Technical/Tech_Articles/BMEP/bmep.html
 
This last URL is particularly = helpful,  as it=20 has some nice graphs which make the topic very clear,  even to a=20 novice.
 
Now additionally,  I'm wondering = as to how the=20 BMEP figures on your graph were arrived at.  This graph looks = like=20 it was lifted by Lamar out of Kenichi Yamamoto's excellent = book, =20 "The Rotary Engine".  However,  while most of the stuff = in the=20 book is still valid,  it is some 20-25-30 years out of date in = other=20 respects.   Since then,  sealing grid technologies have=20 progressed,  and, for any GIVEN compression ratio,  the=20 calculated BMEP (based on observed torque) has risen due to better=20 sealing.

So due to the above reasons,  I question your calculated = increase=20 in BHP with increased compression ratio based on your BMEP chart.  = More to=20 the point,  it also flies in the face of hard dyno data that I have = accumulated over the past 20 years or so.  Which is why I have been = beating=20 the drum for the use of high comp rotors for aero use.  As an = aside, =20 in Improved Production Racing over here,  if you DON'T  have = 9.7:1=20 rotors in your "Chook Cooker" or "Rice Burner",  you are relegated = to 5th=20 or 6th row of the grid.  Must be a lesson there somewhere ... = ??
 
However,  I can only happily agree with your figures for = your own=20 20B (done on a dyno),  and your pro-rata calcs for a 13B on the = same=20 basis,  although I must confess that I could never understand why = you (or=20 anybody else for that matter) would run an NA motor with turbo rotors in = it=20 ...  But then again,  Lamar has always reckoned that I'm an=20 idiot!!
 
Now after much BS on ACRE,  I initially told Paul Connor that = he would=20 be lucky to get 140 BHP @ 5,300 RPM with his 8.5:1 turbo rotors.  =20 You're pro-rata estimate was 142 @ 5,200 RPM for a = 13B, =20 based on your own dyno figures.  So my ballpark prognostication of=20 140 was PRETTY CLOSE!!  I will also happily agree with your = figure of=20 173 BHP @ 6,000 RPM (I can't even pretend to dispute it,  = after=20 all,  it's based on practical experiment on a dyno - and it agrees = within a=20 few BHP of what I'd expect to get down here in the Antipodes = anyway). =20
 
However,  I MUST disagree with you about the BHP increase when = using=20 9.7:1 rotors. After all,  going from 8.5:1 to 9.7:1 = compression is a=20 considerable step!!  Seems like no body over your neck of the woods = has=20 bothered to do any dyno runs with these rotors. Well, ...my PRACTICAL = experience=20 tells me that I can expect about 82 - 85 BHP per rotor @ around = 5,000=20 RPM,  slightly in excess of 100 BHP per rotor @ 6,000 = RPM,  and=20 around 112 - 113 BHP per rotor @ 7,000 RPM,  using the same = carefully=20 mild ported REW /  Cosmo engine ports,  (obviously assuming = good inlet=20 and exhaust systems).. 
 
Incidentally,  for those that are interested,  the only=20 difference between the REW and Cosmo ports is that the Cosmo inlet = runner is=20 bigger at the manifold flange,  and tapers down to the port.  = The=20 actual port on the side face is the same size.  See attached = pic.  The=20 pic shows from left to right:
 
Cosmo rear,  REW rear,  Renesis 4 port rear,  = Renesis 4 port=20 front, Cosmo front, REW front.
 
So based on past experience,  I'd be expecting about  175 = BHP @=20 5,200 RPM,  200 BHP @ 6,000 RPM,  and 225 BHP @ 7,000 RPM out = of a 13B=20 with 9.7:1 rotors running on nicely ported REW or Cosmo end = plates. =20 (Again,  that's assuming you have a decent inlet and exhaust system = - no=20 cast iron boxes  etc).
 
So summarising,  to compare compression ratio = changes with=20 changes in BHP,  you have to compare compression ratio=20 changes with changes in BHP,  NOT BMEP (which is just a = theoretical=20 mythical calculation dreamed up by armchair engineers,  and=20 mathematically derived from torque readings from a dyno,  and = doesn't=20 take into account the RPM factor in BHP calcs!! )
 
You must also take into account the Volumetric Efficiency of the=20 engine,  which,  among other things, has to do with the = sealing=20 grid,  as well as the compression ratio.  Higher comp rotors = SUCK=20 harder as well as squeeze harder .. but only if the sealing grid is up = to=20 scratch!!.  A properly ported and manifolded rotary will make 125% = -=20 130%  Volumetric Efficiency,  assuming the sealing grid has = been cut=20 and clearanced properly ( another black art about which very few people = have the=20 slightest clue).  This is why good rotaries on the race track = run=20 rings around most piston engines of a similar capacity, which rarely = exceed 110%=20 Vol Eff.
 
 
Cheers,
 
Leon
----- Original Message -----
From:=20 Al = Gietzen=20
Sent: Wednesday, February 02, = 2005 2:55=20 AM
Subject: [FlyRotary] Re: more=20 flying

 

Al,
Where are these = graphs?  Could you post them or email them?
They sound = interesting=20 ... Jim S.

It is = one that PL=20 scanned and posted 4-5 years ago; so scanning the scan doesn=92t = give a very=20 good copy, even at 300dpi.  It has curves for only two = compression=20 ratios, so it takes a little interpolation/extrapolation to get an = estimate=20 for other ratios.

 

Al

 

(I tried = to send=20 the scanned file of 220KB, but it was rejected as being 301kb, over = the=20 300kb limit.  I=92ll try something else. Al)

 

I = pulled out a=20 graph out of my file showing HP, compression ratio and rpm for WOT=20 performance. It does show that the difference would small (about 2% = at=20 6000rpm), and getting less as rpm increases.  The curves only = go to=20 6000.  But the difference is significant in the, say, 3500 to = 5500=20 range.  At 5000 going from 9.7 to 9.0 loses about 4%, from 9.7 = to 8.5=20 loses about 6.5%.  I have no info on engine model or = configuration used=20 for the measurement.

FWIW,

Al

 

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