X-Virus-Scanned: clean according to Sophos on Logan.com Return-Path: Received: from cdptpa-omtalb.mail.rr.com ([75.180.132.120] verified) by logan.com (CommuniGate Pro SMTP 5.3.10) with ESMTP id 4598972 for flyrotary@lancaironline.net; Wed, 01 Dec 2010 17:46:04 -0500 Received-SPF: pass receiver=logan.com; client-ip=75.180.132.120; envelope-from=eanderson@carolina.rr.com Return-Path: X-Authority-Analysis: v=1.1 cv=Inhw+Jdt7z1D3BivGPfn2aw54OvUEJw5lAn/booRZkE= c=1 sm=0 a=DIXCFWPcAnAA:10 a=rPkcCx1H5rrOSfN0dPC7kw==:17 a=pedpZTtsAAAA:8 a=Ia-xEzejAAAA:8 a=3oc9M9_CAAAA:8 a=pGLkceISAAAA:8 a=ayC55rCoAAAA:8 a=arxwEM4EAAAA:8 a=r1ClD_H3AAAA:8 a=7g1VtSJxAAAA:8 a=X-nh3dTj2h4S-qsUTigA:9 a=_OkG6d3ZBh5p4k051igA:7 a=m9nUAAnp-0CWkE2V84TQ2oj2RH8A:4 a=pILNOxqGKmIA:10 a=Qa1je4BO31QA:10 a=eJojReuL3h0A:10 a=EzXvWhQp4_cA:10 a=U8Ie8EnqySEA:10 a=MSl-tDqOz04A:10 a=Xqlr7tfmfTNFE1GG:21 a=4r5dbFDsHUQOVsy0:21 a=hrudUGZWC2_qP6LLuz0A:9 a=WALiyWgmuMqX3Gmu23IA:7 a=GnZU57BJoZ0REZH8HElK2TQ_3wkA:4 a=EjiUC7B1dClY65JMxLkA:9 a=uj5Mxed3I0rRA_ZGTMb0D_7fzNgA:4 a=KQqxNPgzF0kA:10 a=8ufjbHHbv2gxxpwO:21 a=-jjNXWpdnSb55RQ7:21 a=DlDAH5jqTSLfr-oQ:18 a=rPkcCx1H5rrOSfN0dPC7kw==:117 X-Cloudmark-Score: 0 X-Originating-IP: 174.110.167.5 Received: from [174.110.167.5] ([174.110.167.5:49428] helo=EdPC) by cdptpa-oedge04.mail.rr.com (envelope-from ) (ecelerity 2.2.3.46 r()) with ESMTP id B9/EB-13137-600D6FC4; Wed, 01 Dec 2010 22:45:28 +0000 Message-ID: <661F784333C74F198AF879C867472779@EdPC> From: "Ed Anderson" To: "Rotary motors in aircraft" References: In-Reply-To: Subject: Reactive Muffler Design for PP was [FlyRotary] Re: Modified header Calculations Date: Wed, 1 Dec 2010 17:45:20 -0500 MIME-Version: 1.0 Content-Type: multipart/mixed; boundary="----=_NextPart_000_000C_01CB917F.860DB330" X-Priority: 3 X-MSMail-Priority: Normal Importance: Normal X-Mailer: Microsoft Windows Live Mail 14.0.8117.416 X-MimeOLE: Produced By Microsoft MimeOLE V14.0.8117.416 This is a multi-part message in MIME format. ------=_NextPart_000_000C_01CB917F.860DB330 Content-Type: multipart/alternative; boundary="----=_NextPart_001_000D_01CB917F.860DB330" ------=_NextPart_001_000D_01CB917F.860DB330 Content-Type: text/plain; charset="Windows-1252" Content-Transfer-Encoding: quoted-printable Mark,=20 Since you have not gotten to the muffler part of your design, here are = some thoughts (Yes, I did do 6 muffler experiments - don't ask me why) The one design that was "almost" totally successful in achieving my = goals is attached. Hard to make out the details, but enough to give you = the general ideal. My objective was trying to decided how to muffler the shock wave (which = creates most of the ear problems) but let the exhaust gas flow freely. = My conclusion was that reactive design muffler was the only acceptable = choice given our constraints. What I came up with was the idea of stuffing (I put five but I think = three would make a considerable difference) disc with outer parts cut = into blades and bent at a 45 deg angle into a tube. Looked a bit like = an old farm windmill. The idea behind this approach was if you looked head on at the = fan-disc - you see basically a solid metal front. That is what the = shock wave would see and most (a lot?) of the energy would be reflected = back toward the engine (actually to the next disc in the tube). The = bent blades on the other hand would permit exhaust gas to flow with = minimum restriction. It really did deaden the sound where folks could stand by the wing tip = with no problem hearing someone else talk. I was thrilled. It also met = my minimum restriction as I could still get my 6000 rpm static. Ok, what went wrong - well, not being a welder I resorted to other = methods - which ultimately failed.=20 Two things occurred -=20 one if the disc broke loose of the small 5/8" thread SS shaft from the = Jam nuts on each side holding the disc, well, the disc could (and did) = begin to spin inside the tube like the turbine wheel of a jet engine. = This windmilling effect acted just like a windmilling prop on the = exhaust gas and definitely impeded gas flow. So can not permit the disc = to spin (the tips polished the inside of the tube where the spun) Second because I donot weld, I did not secure the tips of the blades of = the disc to the sides of the tube. Well the shock wave naturally causes = those blades to flex and eventually break off. The SS disc were 2" in diam 1/8 thick and fit really nice inside the 2 = 1/4" tubes. I cut slots in the outer part of the SS disc and then used = pliers to bend the tabs to an approx 45 deg angle (see attached Jep). So none of this was difficult to fabricate (tedious perhaps but not = difficult). I gave up on it because without welding skills I could not figure out = away to secure the tips of the blades to the tube to give them better = support. Perhaps better than disc would have been cones but couldn't = find any {:>). So since I couldn't see any way around my lack of welding (and too cheap = to hire someone), I went the hushpower II route. Just thought I would throw some fuel on your fire {:>) FWIW Ed From: Mark Steitle=20 Sent: Wednesday, December 01, 2010 2:09 PM To: Rotary motors in aircraft=20 Subject: [FlyRotary] Re: Modified header Calculations "That PPort sounds angry!" ...and it is! ;-) Mark On Wed, Dec 1, 2010 at 1:02 PM, Bill Bradburry = wrote: Mark, I watched the video as you started up in front of Chris=92 hangar and = taxied away. I then went back and watched the video where you made the = flight 2 years ago. The difference in the sound is way more than just = volume! That PPort sounds angry! Bill B -------------------------------------------------------------------------= ----- From: Rotary motors in aircraft [mailto:flyrotary@lancaironline.net] = On Behalf Of Mark Steitle Sent: Wednesday, December 01, 2010 12:44 PM To: Rotary motors in aircraft Subject: [FlyRotary] Re: Modified header Calculations Bill,=20 Not sure what you're asking. My p-port will idle down to below 1000 = rpm, although not as smoothly as my side port 20B did, or like my LS1 = Chevy V-8. This thread was addressing WOT issues caused by an overly = restrictive exhaust system. Changing to my previous "tangential" = exhaust made a HUGH improvement in WOT power (exactly as the chart that = Ed posted earlier showed). I am now in the process of building an = equal-length header/exhaust to maximize power at around 6500 rpm. The = runners on my current exhasut are not all the same length and are made = from 2.0 DIA .140" 304SS. The new exhasut will be made of 625 inconel. I hope to get it right this time. =20 Mark =20 On Wed, Dec 1, 2010 at 11:23 AM, wrote: Mark, and group, If p-ports are so difficult why was the first car with a rotary = equiped with them? P ports can be fairly tame if you put the throttle = plate, (butterfly or slide), close to the port, or in the port. The = original powersport guys put together an in-port butterfly that idled = very well. In fact Steve Beckham told me that when using their = pendrolous damper they could idle their p-port engine at 1000 RPM! Their = p-ports were 1-5/8 diameter. Bill Jepson=20 Finally, I liked their comment regarding the peripheral ported = engines. It reads, "Traditionally relegated to speciality race cars, = occasionally a peripherally ported engine finds its way onto the street = in some high-performance vehicle. These engines are not, however, for = the faint of heart." LOL Not to worry, my heart is strong!=20 =20 Mark -----Original Message----- From: Mark Steitle To: Rotary motors in aircraft Sent: Wed, Dec 1, 2010 8:37 am Subject: [FlyRotary] Re: Modified header Calculations Ed, =20 It took a while, but my copy of Street Rotary - How to Build Maximum = Horsepower & Reliability into Mazda's 12A, 13B & Renesis Engines finally = arrived yesterday. Thanks for the recommendation. Lots of good info, = everyone on the list ought to order a copy and read it from cover to = cover, except for Lynn H. - he ought to write his own book on rotary = engines. (I'd buy the first copy.)=20 =20 As you suggested, I've been reading the chapter on exhaust systems. I = found a paragraph that is right on target relating to what we've been = discussing (exhaust system restriction). They compare a 2-rotor wankel = to a 2 cylinder 4-stroke where both cylinders share the same exhaust = port.=20 =20 Quote, "...the exhaust system on a 12A or 13B rotary engine is roughly = analogous to a two-cylinder piston engine in which both cylinders are = served by a single exhaust port. If cylinder #1 was in overlap period, = and the exhaust valve of the #2 cylinder then opened, high pressure gas = would flow from the #2 to #1 cylinders. A highly restrictive exhaust = system would aggravate the situation. This, the authors point out, is = the major reason why a free-flowing exhaust system is so important in a = rotary engine." This explains why I saw such an improvement when = switching exhaust systems.=20 =20 There is also much discussion on primary header length. Disregarding = the "long" header system as we don't have the room, the "short" header = length shown for a p-port engine is between 10 and 18 inches. So, your = calculations for header length seem to be right in the ballpark. Now I = have to figure how to get the three very short primary tubes of 11 3/4" = to meet on the same tangent at the collector.=20 =20 Finally, I liked their comment regarding the peripheral ported = engines. It reads, "Traditionally relegated to speciality race cars, = occasionally a peripherally ported engine finds its way onto the street = in some high-performance vehicle. These engines are not, however, for = the faint of heart." LOL Not to worry, my heart is strong!=20 =20 Mark On Sun, Nov 21, 2010 at 7:53 AM, Ed Anderson = wrote: Mark, =20 I did some additional reading in the rotary book I recommended to you = and a bit more head scratching on exhaust systems. =20 I modified the tube length formula I used earlier to compensate for = the fact the rotary puts out two exhaust pulses per port per 720 deg = cycle compared to 1 for the piston engine. This in effect halved the = length of tube needed to get the same scavenging effect. =20 Also using the recommended rotary book values for area of a rotary = exhaust tube , I calculated the tube diameter which came out to 1.8".=20 =20 In any case, I have attached the spreadsheet with those modifications =20 Ed =20 =20 Edward L. Anderson Anderson Electronic Enterprises LLC 305 Reefton Road Weddington, NC 28104 http://www.andersonee.com http://www.eicommander.com -- Homepage: http://www.flyrotary.com/ Archive and UnSub: = http://mail.lancaironline.net:81/lists/flyrotary/List.html -- Homepage: http://www.flyrotary.com/ Archive and UnSub: = http://mail.lancaironline.net:81/lists/flyrotary/List.html ------=_NextPart_001_000D_01CB917F.860DB330 Content-Type: text/html; charset="Windows-1252" Content-Transfer-Encoding: quoted-printable
Mark,
 
Since you have not gotten to the muffler part of = your=20 design, here are some thoughts (Yes, I did do 6 muffler experiments - = don't ask=20 me why)
 
The one design that was "almost" totally = successful=20 in achieving my goals is attached.  Hard to make out the details, = but=20 enough to give you the general ideal.
 
My objective was trying to decided how to = muffler the=20 shock wave (which creates most of the ear problems) but let the exhaust = gas flow=20 freely.  My conclusion was that reactive design muffler was the = only=20 acceptable choice given our constraints.
 
What I came up with was the idea of stuffing = (I  put=20 five but I think three would make a considerable difference) disc with = outer=20 parts cut into blades and bent at a 45 deg angle into a tube.  = Looked a bit=20 like an old farm windmill.
 
  The idea behind this approach was if you = looked=20 head on at the fan-disc - you see basically a solid metal front.  = That is=20 what the shock wave would see and most (a lot?) of the energy would be = reflected=20 back toward the engine (actually to the next disc in the tube).  = The bent=20 blades on the other hand would permit exhaust gas to flow with minimum=20 restriction.
 
It really did deaden the sound where folks could = stand by=20 the wing tip with no problem hearing someone else talk. I was=20 thrilled.  It also met  my minimum restriction as I could = still get my=20 6000 rpm static.
 
Ok, what went wrong - well, not being a welder I = resorted=20 to other methods - which ultimately failed. 
 
 Two things occurred -
 
one if the disc broke loose of the small 5/8" = thread SS=20 shaft from the Jam nuts on each side holding the disc, well, the disc = could (and=20 did) begin to spin inside the tube like the turbine wheel of a jet=20 engine. This windmilling effect acted just like a windmilling prop = on the=20 exhaust gas and definitely impeded gas flow.  So can not permit the = disc to=20 spin (the tips polished the inside of the tube where the = spun)
 
 Second because I donot weld, I did not = secure the=20 tips of the blades of the disc to the sides of the tube.  Well the = shock=20 wave naturally causes those blades to flex and eventually break=20 off.
 
The SS disc were 2" in diam 1/8 thick and = fit really=20 nice inside the 2 1/4" tubes.  I cut slots in the outer part of the = SS disc and then used pliers to bend the tabs to an approx 45 deg = angle=20 (see attached Jep).
 
So none of this was difficult to fabricate = (tedious=20 perhaps but not difficult).
 
I gave up on it because without welding skills I = could not=20 figure out away to secure the tips of the blades to the tube to give = them better=20 support.  Perhaps better than disc would have been cones but = couldn't find=20 any {:>).
 
So since I couldn't see any way around my lack = of welding=20 (and too cheap to hire someone), I went  the hushpower II=20 route.
 
Just thought I would throw some fuel on your = fire=20 {:>)
 
FWIW
 
Ed

From: Mark Steitle
Sent: Wednesday, December 01, 2010 2:09 PM
To: Rotary motors in = aircraft
Subject: [FlyRotary] Re: Modified header=20 Calculations

"That PPort sounds angry!"
 
...and it is!  ;-)

Mark
On Wed, Dec 1, 2010 at 1:02 PM, Bill Bradburry = <bbradburry@bellsouth.net>= =20 wrote:

Mark,

I watched = the video=20 as you started up in front of Chris=92 hangar and taxied away.  I = then went=20 back and watched the video where you made the flight 2 years = ago.  The=20 difference in the sound is way more than just volume!  That PPort = sounds=20 angry!

 

Bill=20 B

 


From: Rotary=20 motors in aircraft [mailto:flyrotary@lancaironline.net] On Behalf Of Mark = Steitle
Sent: Wednesday, December 01, = 2010 12:44=20 PM
To: Rotary = motors in=20 aircraft
Subject: = [FlyRotary]=20 Re: Modified header Calculations

 

Bill,

 

Not sure what you're asking.  My p-port = will idle=20 down to below 1000 rpm, although not as smoothly as my side port 20B = did, or=20 like my LS1 Chevy V-8.  This thread was addressing WOT = issues caused=20 by an overly restrictive exhaust system.  Changing to my = previous=20 "tangential" exhaust made a HUGH improvement in WOT power = (exactly=20 as the chart that Ed posted earlier showed).  I am now in = the=20 process of building an equal-length header/exhaust to maximize = power at=20 around 6500 rpm.  The runners on my current exhasut are not=20 all the same length and are made from 2.0 DIA .140"=20 304SS.  The new exhasut will be made of 625=20 inconel.

 

I hope to get it right this=20 time.  

 

Mark  =20

On Wed, Dec 1, 2010 at 11:23 AM, <wrjjrs@aol.com>=20 wrote:

Mark, and group,
If p-ports are so = difficult why=20 was the first car with a rotary equiped with them? P ports can be = fairly tame=20 if you put the throttle plate, (butterfly or slide), close to the = port, or in=20 the port. The original powersport guys put together an in-port = butterfly that=20 idled very well. In fact Steve Beckham told me that when using their=20 pendrolous damper they could idle their p-port engine at 1000 RPM! = Their=20 p-ports were 1-5/8 diameter.
Bill Jepson



Finally, I liked=20 their comment regarding the peripheral ported engines.  It=20 reads, "Traditionally relegated to speciality race cars, = occasionally a=20 peripherally ported engine finds its way onto the street in some=20 high-performance vehicle. These engines are not, however, for the = faint of=20 heart."  LOL  Not to worry, my heart is=20 = strong! 
  
Mark



-----Original Message-----
From: Mark = Steitle=20 <msteitle@gmail.com>
To: Rotary motors in = aircraft=20 <flyrotary@lancaironline.net>
Sent: Wed, Dec = 1, 2010=20 8:37 am
Subject: [FlyRotary] Re: Modified header=20 Calculations


Ed,
 
It took a while, but my copy=20 of Street Rotary - How to Build Maximum Horsepower & = Reliability=20 into Mazda's 12A, 13B & Renesis Engines finally arrived=20 yesterday.  Thanks for the recommendation.  Lots of good = info,=20 everyone on the list ought to order a copy and read it from cover to = cover,=20 except for Lynn H. - he ought to write his own book on = rotary=20 engines.  (I'd buy the first copy.) 
 
As you = suggested,=20 I've been reading the chapter on exhaust systems.  I found a = paragraph=20 that is right on target relating to what we've been discussing = (exhaust system=20 restriction).  They compare a 2-rotor wankel to a 2 cylinder=20 4-stroke where both cylinders share the same exhaust=20 port. 
 
Quote, "...the exhaust system on a 12A or 13B = rotary=20 engine is roughly analogous to a two-cylinder piston engine in which = both=20 cylinders are served by a single exhaust port.  If cylinder #1 = was in=20 overlap period, and the exhaust valve of the #2 cylinder then opened, = high=20 pressure gas would flow from the #2 to #1 cylinders.  A highly=20 restrictive exhaust system would aggravate the situation.  This, = the=20 authors point out, is the major reason why a free-flowing exhaust = system is so=20 important in a rotary engine."  This explains why I saw such an=20 improvement when switching exhaust systems. 
 
There = is also=20 much discussion on primary header length.  Disregarding the = "long" header=20 system as we don't have the room, the "short" header length shown for = a p-port=20 engine is between 10 and 18 inches.  So, your calculations for = header=20 length seem to be right in the ballpark.  Now I have to figure = how to get=20 the three very short primary tubes of 11 3/4" to meet on the same = tangent=20 at the collector. 
 
Finally, I liked their=20 comment regarding the peripheral ported engines.  It=20 reads, "Traditionally relegated to speciality race cars, = occasionally a=20 peripherally ported engine finds its way onto the street in some=20 high-performance vehicle. These engines are not, however, for the = faint of=20 heart."  LOL  Not to worry, my heart is=20 strong! 
  
Mark


On Sun, Nov 21, 2010 = at 7:53=20 AM, Ed Anderson <eanderson@carolina.rr.com>=20 wrote:


Mark,
 
I did some additional reading in = the=20 rotary book I recommended to you and a bit more head scratching on = exhaust=20 systems.
 
I modified the tube length formula = I used=20 earlier to compensate for the fact the rotary puts out two exhaust = pulses per=20 port per 720 deg cycle compared to 1 for the piston engine.  This = in=20 effect halved the length of tube needed to get the same scavenging=20 effect.
 
Also using the recommended rotary  book = values for=20 area of a rotary exhaust tube , I calculated the tube diameter = which came=20 out to 1.8". 
 
In any case, I have attached the = spreadsheet=20 with those modifications
 
Ed
 
 
Edward = L.=20 Anderson
Anderson Electronic Enterprises LLC
305 Reefton=20 Road
Weddington, NC 28104
http://www.andersonee.com
http://www.eicommander.com


--
Homepage:= =20  http://www.flyrotary.com/
Archive and UnSub: =   http://mail.lancaironline.net:81/lists/flyrotary/List.htm= l






--
Homepage:=20  http://www.flyrotary.com/
Archive and UnSub: =   http://mail.lancaironline.net:81/lists/flyrotary/List.htm= l

 


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