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Hi Tom,
As I say, my comment isn't directed at the calculations at all. There
has been much discussion about what the displacement is, and how much of
the rotation to count. Mazda claiming 1.3 L for example.
I stand by my statement about the displacement. That seems to be
exactly the way Ed has used it.
Quote from Ed's post:
"Taken the rotor reference we have 6 faces of 40 CID displacement
in one revolution of the rotor. So at 6000 e shaft rpm (2000 rotor rpm)
we have
Air Flow (rotor Ref) = 6 * 40 * 2000/1728 = 277.77 CFM"
The 6 * 40 is the 240 cu. in. displacement, 2000 RPM, and 1728 to
convert to CFM. What am I missing?
Bob White
On Thu, 10 Feb 2005 20:33:43 -0800 (PST)
Tom <tomtugan@yahoo.com> wrote:
> Sorry,
> Additonally, Bob you say "the rotary (uses it's displacement ) in 3
> revolutions of the E-shaft or one revolution of the rotors." While
> all of the displacement of all the rotors is disturbed during one
> revolution of all of the rotors, Ed's work attempts to determine how
> much combustion charge is consumed (factoring in displacement and
> other factors) per revolution of the rotors and then determine CFM
> based on consumed combustion charges and rpm. Apparently it isn't as
> simple as what you said about 'uses it's displacement' Or so I think.
> Tom
>
>
>
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http://www.bob-white.com
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