Return-Path: Received: from fed1rmmtao08.cox.net ([68.230.241.31] verified) by logan.com (CommuniGate Pro SMTP 4.2.5) with ESMTP id 484796 for flyrotary@lancaironline.net; Sun, 24 Oct 2004 12:06:29 -0400 Received-SPF: none receiver=logan.com; client-ip=68.230.241.31; envelope-from=ALVentures@cox.net Received: from BigAl ([68.107.116.221]) by fed1rmmtao08.cox.net (InterMail vM.6.01.03.04 201-2131-111-106-20040729) with ESMTP id <20041024160553.XANT768.fed1rmmtao08.cox.net@BigAl> for ; Sun, 24 Oct 2004 12:05:53 -0400 From: "Al Gietzen" To: "'Rotary motors in aircraft'" Subject: RE: [FlyRotary] oil scoop? Date: Sun, 24 Oct 2004 09:06:05 -0700 Message-ID: <000001c4b9e3$5efb51a0$6400a8c0@BigAl> MIME-Version: 1.0 Content-Type: multipart/mixed; boundary="----=_NextPart_000_0001_01C4B9A8.B29C79A0" X-Priority: 3 (Normal) X-MSMail-Priority: Normal X-Mailer: Microsoft Outlook, Build 10.0.6626 Importance: Normal In-Reply-To: X-MimeOLE: Produced By Microsoft MimeOLE V6.00.2900.2180 This is a multi-part message in MIME format. ------=_NextPart_000_0001_01C4B9A8.B29C79A0 Content-Type: multipart/alternative; boundary="----=_NextPart_001_0002_01C4B9A8.B29EEAA0" ------=_NextPart_001_0002_01C4B9A8.B29EEAA0 Content-Type: text/plain; charset="us-ascii" Content-Transfer-Encoding: quoted-printable Rusty; =20 I'm not sure I can be much help, because the vagaries of airflow are = many. Ultimately your going to have to do some experimenting. I'd suggest = that you need some more information before you start building a new duct/diffuser. Ed's suggestion about getting a handle on whether there = is enough airflow but poor distribution is a good one; and Ernest = suggestion of changing shape by some simpler means is also good. =20 Figure out some way to get an idea of flow distribution. If you are = going to measure exit air temp to determine delta T; you could get a rough = idea of flow distribution by measuring exit temp in 2 or 3 places - maybe divide = the area roughly in thirds, and measure temp in the center of each block. =20 Based on my scoop/diffuser shape, and the flow tests I did, my = conclusion about where the air is going is different than Ed's. My guess is that = there is flow separation and lots of turbulence at the front upper part of the duct, and most of the flow is actually going through the core near the = back end. It is also possible that the turbulence, (resulting poor pressure recovery) and the sharp turn into the core, may result in reduced inlet = flow (air spilling around the scoop. =20 Your second version would probably result in less flow separation, and better pressure recovery, but there could still be issues of flow distribution and the need for some vanes. I had more room for my scoop, = and may have achieved something closer to a K&W diffuser, but still had to install vanes to get a fairly uniform flow distribution through the = core. The air just didn't want to make that turn. See photos. But how the = flow behaves in the diffuser is a function of the pressure drop across the = core, so your case is different. =20 FWIW, =20 Al =20 =20 =20 =20 =20 =20 =20 -----Original Message----- From: Rotary motors in aircraft [mailto:flyrotary@lancaironline.net] On Behalf Of Russell Duffy Sent: Saturday, October 23, 2004 4:57 PM To: Rotary motors in aircraft Subject: [FlyRotary] oil scoop? =20 Greetings, =20 I'm still having some high oil temps, though the cooler weather is = allowing me to get by for now. I was thinking of trying to apply some of the pressure recovery lessons that Ed tried to teach us. It seemed to work pretty darned well with my radiator cores, so I figure I should give it = a shot for the oil cooler core as well. =20 =20 Attached is a very crude drawing of the cross section of my oil scoop. = The top flat line is the evap core, and the vertical line on the right side = is the inlet. The top drawing is the current inside shape of the scoop. = As you can see, it isn't so great. The bottom drawing is the proposed = inside shape. Anyone want to wager on whether this will help? As far as fiberglass goes, it would be a fairly painless experiment. Think it's = worth trying? =20 Thanks, Rusty (Sir fiberglass hater) =20 ------=_NextPart_001_0002_01C4B9A8.B29EEAA0 Content-Type: text/html; charset="us-ascii" Content-Transfer-Encoding: quoted-printable Message

Rusty;

 

I’m not sure I can be much = help, because the vagaries of airflow are many.  Ultimately your going to = have to do some experimenting.  I’d suggest that you need some = more information before you start building a new duct/diffuser. =  Ed’s suggestion about getting a handle on whether there is enough airflow but = poor distribution is a good one; and Ernest suggestion of changing shape by = some simpler means is also good.

 

Figure out some way to get an = idea of flow distribution.  If you are going to measure exit air temp to = determine delta T; you could get a rough idea of flow distribution by measuring = exit temp in 2 or 3 places - maybe divide the area roughly in thirds, and measure = temp in the center of each block.

 

Based on my scoop/diffuser shape, = and the flow tests I did, my conclusion about where the air is going is = different than Ed’s.  My guess is that there is flow separation and = lots of turbulence at the front upper part of the duct, and most of the flow is actually going through the core near the back end.  It is also = possible that the turbulence, (resulting poor pressure recovery) and the sharp = turn into the core, may result in reduced inlet flow (air spilling around the = scoop.

 

Your second version would = probably result in less flow separation, and better pressure recovery, but there = could still be issues of flow distribution and the need for some vanes. =  I had more room for my scoop, and may have achieved something closer to a = K&W diffuser, but still had to install vanes to get a fairly uniform flow = distribution through the core.  The air just didn’t want to make that = turn.  See photos.  But how the flow behaves in the diffuser is a function = of the pressure drop across the core, so your case is = different.

 

FWIW,

 

Al

 

 

 

 

 

 

 

-----Original = Message-----
From: Rotary motors in = aircraft [mailto:flyrotary@lancaironline.net] On Behalf Of Russell Duffy
Sent: Saturday, October = 23, 2004 4:57 PM
To: Rotary motors in = aircraft
Subject: [FlyRotary] oil = scoop?

 

Greetings,

=

 

I'm still having some high = oil temps, though the cooler weather is allowing me to get by for now.  = I was thinking of trying to apply some of the pressure recovery lessons that = Ed tried to teach us.  It seemed to work pretty darned well with my radiator = cores, so I figure I should give it a shot for the oil cooler core as = well. 

 

Attached is a very crude = drawing of the cross section of my oil scoop.  The top flat line is the evap = core, and the vertical line on the right side is the inlet.  The top = drawing is the current inside shape of the scoop.  As you can see, it isn't so great.  The bottom drawing is the proposed inside shape.  = Anyone want to wager on whether this will help?  As far as fiberglass goes, it = would be a fairly painless experiment.  Think it's worth = trying?

 

Thanks,

Rusty (Sir fiberglass = hater)

 

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