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 5.1.12) with ESMTP id 2347735 for flyrotary@lancaironline.net; Sun, 23 Sep 2007 19:34:29 -0400 Received-SPF: pass receiver=logan.com; client-ip=75.180.132.120; envelope-from=eanderson@carolina.rr.com Received: from edward2 ([24.74.103.61]) by cdptpa-omta06.mail.rr.com with SMTP id <20070923233348.XXCJ3972.cdptpa-omta06.mail.rr.com@edward2> for ; Sun, 23 Sep 2007 23:33:48 +0000 Message-ID: <002101c7fe3a$533f3cc0$2402a8c0@edward2> From: "Ed Anderson" To: "Rotary motors in aircraft" References: Subject: Re: [FlyRotary] Re: RV-7A Cooling Date: Sun, 23 Sep 2007 19:34:45 -0400 MIME-Version: 1.0 Content-Type: multipart/related; type="multipart/alternative"; boundary="----=_NextPart_000_0019_01C7FE18.CBF91F40" X-Priority: 3 X-MSMail-Priority: Normal X-Mailer: Microsoft Outlook Express 6.00.2900.3138 X-MimeOLE: Produced By Microsoft MimeOLE V6.00.2900.3138 This is a multi-part message in MIME format. ------=_NextPart_000_0019_01C7FE18.CBF91F40 Content-Type: multipart/alternative; boundary="----=_NextPart_001_001A_01C7FE18.CBF91F40" ------=_NextPart_001_001A_01C7FE18.CBF91F40 Content-Type: text/plain; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable Ok, for ever 10 degrees drop in OAT at your airspeed you reject an = additional 220 BTU/Min. Taking 83 F as inlet then you got a 52 F increase which if your duct air = velocity was 0.1*airspeed would only give you about 750 BTU/Min about = 1/2 of what you would need. BUT, if the air velocity in your duct was a = bit higher say 0.2* airspeed then you would be rejecting approx 1500 = BTU/Min which would still be marginal for the power you are producing to = make 165MPH TAS, but might be inline with the oil temps you are seeing. Getting 190F coolant and oil when you are hitting close to 200 MPH would = be fine as that would indicate you have your cooling system close to = optimum with no/little reserve cooling capacity at your WOT. But, = hitting 190F at 165MPH indicates to me that there is insufficient = cooling flow through your cores. You have a fairly large duct as I = recall to handle both the oil and radiator. I don't know, but I would = speculate that it is more difficult to keep that volume of air from = going turbulent with cooling robbing eddies than if you had two smaller = volume ducts. =20 I still believe you need to divide you plenum vertically - have you = tried that, I know you tried several things, but I don't recall whether = you tried that approach. Perhaps as you suggested having more exit = opening would help as well as your cowl pressure seemed a bit high near = your core exits. Keep at it, Dennis, you are breaking new ground with your cooling = configuration and its not surprising it might not give in willingly. Ed Ed ----- Original Message -----=20 From: Dennis Haverlah=20 To: Rotary motors in aircraft=20 Sent: Sunday, September 23, 2007 6:36 PM Subject: [FlyRotary] Re: RV-7A Cooling Ed I'll need to "qualify" some of my numbers. The digital OAT gage I = used for the test was looking at temp. at the face of the radiator. = But!! the wires between the probe and the read-out were severed when I = closed the canopy. I did not discover this until after I landed. The = ambient temp on the ground was 94 deg. F. Using 2 deg/1000 feet 94 - = (2*5.5) =3D 83 deg at 6500 ft altitude ( ground is 1000 ' here). If I = had thought of it, I could have used the EM-2 OAT . For this test I = believe 83 deg is close enough. The airspeed is based on the EM-2 TAS = compared to a portable GPS. I have not changed the calibration of the = EM-2 from factory. Also the inlet static 10 - 11 in water pressure was = measured after the diffuser at the radiator face. Dynamic pressure at = 165 mph is about 13.2 inches H2O. .85*13.2 =3D 11.2 in. H2O. You mentioned fuel burn rate. So far I have not flown long enough = flights to calibrate the EM-2 fuel burn. Inlet to radiator area ratios: Inlet fir water and oil combined is 45 = in. sq. Radiator face area at aft end of diffuser - water=3D247 in. sq. = and oil =3D 171 in. sq. for a total rad. area of 418 in. sq. = inlet/rad. area =3D 0.11. Dennis H Ed Anderson wrote: Dennis, I would like to see your temps at 6500 msl and 20" Hg = manifold pressure quite a bit lower. The coolant is a bit high but = acceptable for those conditions (but may not be for other conditions) , = but the oil temps is a bit on the high side to me. When my RV-6A is = operated under similar conditions, my coolant ranges between 170-180F = and oil temps the same. =20 However, when you say inlet temps - do you mean inlet to your ducts = or is that the inlet to your throttle body. The reason I ask is 90F = seems very high for OAT at 6500 MSL and since you are using that figure = to determine your Delta T across your cores, you need to insure that it = is correct. Another reason I question the 90F temp is that with a 45F temp = increase across your cooler core. If we assume the air velocity through = your duct is an ideal 0.1 * Cruise speed then your mass flow through = your core with a deltaT of 45F would only remove approx 700 BTU/Min. IF = duct air velocity were 0.2*Cruise Speed then at 45F it would remove = approx 1319 BTU/Min. You don't say what your fuel burn is so I'm = assuming at 164 MPH TAS you are making at least 100 HP (probably a good = deal more) which would mean you need to get rid of a minimum of 1500 = BTU/Min through your oil cooler. So since you oil temps are a bit on = the high I think it safe to say you are marginal in getting rid of the = oil BTU. But, if the OAT was 50F vice 90F then your delta T would be = 85F. With a 0.1*cruise speed duct speed and 85F delta T you would be = getting rid of approx 1250 BTU/Min. While still a bit on the low side = probably good enough so that the excess oil BTU not discharged by the = oil cooler is being picked up by the coolant. If your duct speed is a = bit faster than my assumption then you would get rid of more. =20 I found when I solved my oil temp problem that my coolant temps came = down considerably. So one system can "leak" heat over to the other = system to discharge. So it is important that the correct inlet temp for your ducts be = used to derive your deltaT, I strongly suspect that 90F is your throttle = body inlet temp rather than your OAT at 6500 MSL. For one thing, 4" of H20 inside the cowl does seem a bit high but I = notice it drops off to 2" H20 which is more acceptable. But, 6.5" H20 = across the core would appear to be a value which would indicate that = your duct is doing a fair job. The dynamic pressure at 165MPH is = around 10" H20. The best duct (Streamline =3D 0.84 Efficient) would = give you around 0.84 *10"h20 =3D 9.155" H20. Your 6.5/10.899 =3D 60 % = would indicate the duct is doing a fair job. However, the cowl = pressure may be lowering this value a bit. In any case, need to know whether your inlet to your ducts was = actually 90F or was this your throttle body inlet temp which is almost = always higher than OAT. Good work on gathering data. Ed Ed Anderson Rv-6A N494BW Rotary Powered Matthews, NC eanderson@carolina.rr.com http://www.andersonee.com http://members.cox.net/rogersda/rotary/configs.htm#N494BW http://www.dmack.net/mazda/index.html ----- Original Message -----=20 From: Dennis Haverlah=20 To: Rotary motors in aircraft=20 Sent: Saturday, September 22, 2007 11:40 PM Subject: [FlyRotary] RV-7A Cooling I still working to improve my oil cooling -=20 Renesis engine, PSRU 2.8:1, Catto 76X88 composite prop, water and = oil radiators under engine at about 30 degrees to inlet air flow, James = cowl - shark intake under spinner . See pictures below. Today I flew and recorded some temperature and static pressure = numbers for anyone to comment on.=20 Test conditions:=20 90 deg OAT =3D inlet air temperature=20 About 6500 foot altitude=20 TAS - GPS and EM-2 : 165 mph=20 Manifold pressure 20in.=20 RPM 5700=20 Water Temp - 192 deg F=20 Oil temp leaving oil cooler - 207 deg. F=20 Oil temp in oil pan - 235 deg. F=20 Temp of heated air leaving oil cooler -135 deg F (135-90 =3D 45 = deg temp rise of cooling air through the oil cooler)=20 Temp of heated air in cowl low and near firewall 133 deg. F=20 I measured static air pressures at 5 points inside the cowl as = follows:=20 1). Inlet side of oil cooler: 10.5 in water=20 2). Back side of oil cooler: 4 in water ( 10.5 - 4 =3D 6.5 in = water pressure drop across oil cooler.)=20 3). Midway between oil cooler and firewall: 2.75 in water=20 4). Right side within 4 inches of firewall and 3 inches above = bottom of firewall: 2 in water=20 5). Left side within 4 inches of firewall and 3 inches above = bottom of firewall: 2 in water=20 Before these tests Bobby H. and I were thinking I needed more = outlet area to improve my cooling. I am seriously considering=20 a big cowl flap to lower the pressure in the cowl. Does this data = support this position?=20 Hopefully better minds than mine will know!!=20 Dennis H.=20 ------------------------------------------------------------------------ ------------------------------------------------------------------------ ------=_NextPart_001_001A_01C7FE18.CBF91F40 Content-Type: text/html; charset="iso-8859-1" Content-Transfer-Encoding: quoted-printable
Ok, for ever 10 degrees drop in OAT at your = airspeed you=20 reject an additional  220 BTU/Min.
 
Taking 83 F as inlet then you got a 52 F = increase which if=20 your duct air velocity was 0.1*airspeed would only give you about 750 = BTU/Min=20 about 1/2 of what you would need.  BUT, if the air velocity in your = duct=20 was a bit higher say 0.2* airspeed then you would be rejecting = approx 1500=20 BTU/Min which would still be marginal for the power you are producing to = make=20 165MPH TAS, but might be inline with the oil temps you are = seeing.
 
Getting 190F coolant and oil when you are = hitting close to=20 200 MPH would be fine as  that would indicate you have your = cooling=20 system close to optimum with no/little reserve cooling capacity at your=20 WOT.  But, hitting 190F at 165MPH indicates to me that there is=20 insufficient cooling flow through your cores.  You have a fairly = large duct=20 as I recall to handle both the oil and radiator.  I don't know, but = I would=20 speculate that it is more difficult to keep that volume  of = air from=20 going turbulent with cooling robbing eddies than if you had two smaller = volume=20 ducts. 
 
I still believe you need to divide you plenum = vertically -=20 have you tried that, I know you tried several things, but I don't recall = whether=20 you tried that approach.  Perhaps as you suggested having more exit = opening=20 would help as well as your cowl pressure seemed a bit high near your = core=20 exits.
 
Keep at it, Dennis, you are breaking new ground = with your=20 cooling configuration and its not surprising it might not give in=20 willingly.
 
Ed
 
Ed
----- Original Message -----
From:=20 Dennis Haverlah
Sent: Sunday, September 23, = 2007 6:36=20 PM
Subject: [FlyRotary] Re: RV-7A=20 Cooling

Ed

I'll need to "qualify" some of my = numbers.  The=20 digital OAT gage I used for the test was looking at temp. at the face = of the=20 radiator.  But!! the wires between the probe and the read-out = were=20 severed when I closed the canopy.  I did not discover this until = after I=20 landed.  The ambient temp on the ground was 94 deg. F.  = Using 2=20 deg/1000 feet 94 - (2*5.5) =3D 83 deg at 6500 ft altitude ( ground is = 1000 '=20 here).  If I had thought of it, I could have used the EM-2 OAT = . =20 For this test I believe 83 deg is close enough.    The = airspeed is=20 based on the EM-2 TAS compared to a portable GPS.  I have not = changed the=20 calibration of the EM-2 from factory.  Also the inlet static 10 - = 11 in=20 water pressure was measured after the diffuser at the radiator = face. =20 Dynamic pressure at 165 mph is about 13.2 inches  H2O.  = .85*13.2 =3D=20 11.2 in. H2O.

You mentioned fuel burn rate.  So far I have = not=20 flown long enough flights to calibrate the EM-2 fuel = burn.

Inlet to=20 radiator area ratios:  Inlet fir water and oil combined is 45 in. = sq.  Radiator face area at aft end of diffuser - water=3D247 in. = sq. and=20 oil =3D 171 in. sq. for a total rad. area of  418 in. sq.  = inlet/rad.=20 area =3D 0.11.

Dennis H



Ed Anderson wrote:
Dennis, I would like to see your temps at = 6500 msl and=20 20" Hg manifold pressure quite a bit lower.  The coolant = is a bit=20 high but acceptable for those conditions (but may not be for = other=20 conditions) , but the oil temps is  a bit on the high side = to=20 me.  When my RV-6A is operated under similar conditions, my = coolant=20 ranges between 170-180F and oil temps the same. 
 
However, when you say inlet temps - do you = mean inlet=20 to your ducts or is that the inlet to your throttle body.  = The =20 reason I ask is 90F seems very high for OAT at 6500 MSL and since = you are=20 using that figure to determine your Delta T across your cores, you = need to=20 insure that it is correct.
 
Another reason I question the 90F  =  temp is=20 that with a 45F temp increase across your cooler core. If we = assume the=20 air velocity through your duct is an ideal 0.1 * Cruise speed then = your mass=20 flow through your core with a deltaT of 45F would only remove approx = 700=20 BTU/Min.  IF duct air velocity  were 0.2*Cruise Speed = then at=20 45F it would remove approx  1319 BTU/Min.  You don't say = what your=20 fuel burn is so I'm assuming at 164 MPH TAS you are making at least = 100 HP=20 (probably a good deal more) which would mean you need to get rid of = a=20 minimum of 1500 BTU/Min through your oil cooler.  So since you = oil=20 temps are a bit on the high I think it safe to say you are marginal = in=20 getting rid of the oil BTU.  But, if the OAT was 50F vice 90F = then your=20 delta T would be 85F.
 
With a 0.1*cruise speed duct speed and 85F = delta T you=20 would be getting rid of approx 1250 BTU/Min.  While still a bit = on the=20 low side probably good enough so that the excess oil BTU not = discharged by=20 the oil cooler is being picked up by the coolant.  If your duct = speed=20 is a bit faster than my assumption then you would get rid of = more. =20
 
I found when I solved my oil temp problem = that my=20 coolant temps came down considerably.  So one system can "leak" = heat=20 over to the other system to discharge.
 
So it is important that the correct inlet = temp for=20 your ducts be used to derive your deltaT, I strongly suspect that = 90F is=20 your throttle body inlet temp rather than your OAT at 6500 = MSL.
 
For one thing, 4" of H20 inside the cowl = does seem a=20 bit high but I notice it drops off to 2" H20 which is more = acceptable. =20 But, 6.5" H20 across the core would appear to be a  value which = would=20 indicate that your duct is doing a  fair job.  The dynamic = pressure at 165MPH is around 10" H20.  The best duct = (Streamline =3D 0.84=20 Efficient) would give you around 0.84 *10"h20 =3D 9.155" H20.  = Your=20 6.5/10.899 =3D 60 % would indicate the duct is doing a  fair = job. =20 However, the cowl pressure may be lowering this value a = bit.
 
In any case, need to know whether your inlet = to your=20 ducts was actually 90F or was this your throttle body inlet temp = which is=20 almost always higher than OAT.
 
Good work on gathering data.
 
Ed
 
Ed Anderson
Rv-6A N494BW Rotary=20 Powered
Matthews, NC
eanderson@carolina.rr.comhttp://www.andersonee.com
http:/= /members.cox.net/rogersda/rotary/configs.htm#N494BW
http://www.dmack.net/mazda= /index.html
-----=20 Original Message ----- From:=20 Dennis Haverlah = To:=20 Rotary motors in = aircraft=20 Sent:=20 Saturday, September 22, 2007 11:40 PM Subject:=20 [FlyRotary] RV-7A Cooling



I still working to improve my oil = cooling  -=20
Renesis engine, PSRU 2.8:1, Catto 76X88 composite prop, water = and oil=20 radiators under engine at about 30 degrees to inlet air flow, = James cowl -=20 shark intake under spinner .   See pictures = below.

Today=20 I flew and recorded some temperature and static pressure numbers = for=20 anyone to comment on.

Test conditions:
90 deg OAT = =3D =20 inlet air temperature
About 6500 foot altitude
TAS - GPS = and EM-2=20 : 165 mph
Manifold pressure 20in.
RPM 5700
Water Temp = - 192=20 deg F
Oil temp leaving oil cooler - 207 deg. F
Oil temp in = oil pan=20 - 235 deg. F
Temp of heated air leaving oil cooler -135 deg F = (135-90=20 =3D 45 deg temp rise of cooling air through the oil cooler) =
Temp of=20 heated air in cowl low and near firewall  133 deg. F =

I=20 measured static air pressures at 5 points inside the cowl as = follows:=20
1). Inlet side of oil cooler:  10.5 in water
2). Back = side of=20 oil cooler:  4 in water  ( 10.5 - 4 =3D 6.5 in water = pressure drop=20 across oil cooler.)
3). Midway between oil cooler and = firewall: 2.75=20 in water
4). Right side within 4 inches of firewall and 3 = inches above=20 bottom of firewall: 2 in water
5). Left side within 4 inches = of=20 firewall and 3 inches above bottom of firewall: 2 in water=20


Before these tests Bobby H. and I were thinking I = needed more=20 outlet area to improve my cooling.  I am seriously = considering
a=20 big cowl flap to lower the pressure in the cowl.  Does this = data=20 support this position?

Hopefully better minds than mine = will=20 know!!



Dennis H.










=
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