> There are surely tradeoffs in charge cooling, the advantages are
no oil
> cooling hardware, the VE goes up as load is applied due to the
additional
> Air fuel ratio passing thru the engine. The Charge cooled track
and or
> intake length increases the torque and flattens the torque in this
engine > is
> flat from 3000-8000RPM. The path naturally atomizes fuel due to
the >
passing
> thru the rotor. Some of the above benefits are opinions and
speculation > due
> to the inherent differences in our engine compared to the Mazda and
the > fact
> that these above stated characteristics show a major difference in
> performance characteristics out of a very similar sized engine >
650cc/rotor.
> I hope this provides you some answers.
>
> Note: The engine loves cool air, full load, and alcohol as stated
above > the
> VE gets better as you introduce anything that cools the rotor
and or the
> intake charge.
>
> Eric Barger
Eric,
Not knocking your product simply trying to understand and evaluate the
differences between your product and the Mazda.
Interesting point is that the passage through the rotor increases the
torque, or put another way, increases the tuning effect of the inlet
manifold or reduces the length needed of an external manifold. If I am
correct in interpreting your comments in regard to this, can you
comment on
the internal length in question.
Also what sort of compression ration is in your engines?
Also I have had many a discussion with Mistral on aluminum side
housings -
we all appreciate the weight savings, however what sort of surface
preparation do you use? My understanding is the substrate is the major
hurdle to overcome, it that if it fails any surface goes with it. The
solution is to build sufficient depth into the surface treatment to
establish density/ strength to support the surface.
George (down under)
George,
We don?t take any comments as knocking our product like any other
mechanical
device we have advantages and disadvantages, and quite frankly we
appreciate
input and comments from this forum.
We run 8:1 compression ratio originally it was 10:1 and that did nothing
but
increase the charge temp and lower the torque.
Intake length is approximately 8" from injector to intake stroke. (This
is a
rough guess knowing the engine dimensions)
Coatings a 6 month challenge and several engines later we have what we
consider to be a bullet proof coating combination. We don?t give the
exact
coating information out although I can comment and say it is plasma
sprayed,
is ground and lapped to finish at .010 thick.
Coatings, seals, and the manufacturing process to get to a
production ready
engine is more of a hurdle than anyone can appreciate until they
have went
thru it. Rotary engines are simple and have minimal parts that is a good
thing if it were an IC engine we would have never made it this far
as with
minimal parts you can focus your team in on each and every part or
process
that needs attention and enough of that persistence then produces
what we
are proud to call our GEN II engine. We are very excited here to be at a
point where we can get engines out in various applications for third
party
testing and acceptance.
Again I appreciate the input and especially areas as Paul has shared
from
previous rotary attempts and or hurdles, because at the end of the day
we do
not want to learn the hard way if someone else has learnt and is
willing to
share the results.
Eric Barger
The people I have talked to that have built successful all aluminum
rotary
engines swear the only thing that works well is silicon carbide
detonation gun coatings
diamond ground. This is expensive. It is what Mazda used on the Lemans
four rotor.
Many have tried other things and have failed.
The issue is the modulus of elasticity of the aluminum rotor housing
wear
surface. There are two springs involved. The spring behind the apex
seal
and the
spring of the wear surface. Steel is three times stiffer than aluminum.
That
is the main reason Mazda lines their rotor housings with chrome plated
steel. Chatter is the penalty for failure.
The aluminum foundry I deal with, American International in San Fernando
Calif., claim they can cast in steel liners no problem. I have been
there
and seen dozens of casting with cast in steel parts. If it were me I
would copy Mazda
exactly with the steel liners. Way cheaper than detonation coated
diamond ground
aluminum.
Wankel Germany went belly up when some of the Nicasil wear coatings on
aluminum started to flake off. There is no real way to control the
quality.
Mazda has built 2 million engines and spent millions on R&D on this
subject
alone. Don't fool around. Copy exactly.
Paul Lamar ...No rotor no motor.
Paul,
Thanks again you are right we have used the process that was part of
the
engine program when we started and merely found the right material.
We have
also looked into and talked to the foundries that do steel insert to
aluminum type castings. This is the long term plan as it takes the
process
and time out of coating after receipt and machining of the housings.
Do you
have any data on what side housing material should be cast in or can be
used
in this recommended process? We have very stable and good coatings
for now
the only reason to look outside of this is process time and cost as you
stated. Also the materials used in the process are very subject to
surcharges and market fluctuations.
Eric Barger
No real solution on the end housings as Mazda simply uses nitrided cast
iron.
End housings are less of a problem as the seal leaning angle and G
forces are
constant. We have had a bunch of ideas however over the last ten
years that
you are free to experiment with and use if you so desire. A two piece
pre hardened
thin steel sheet metal is the best similar to what Mazda does on the
rotor housings.
End housing run cooler so heat sink grease can be used to transfer the
heat from
the steel to the aluminum if it is not cast together.
Richard Sohn has built successful engines with two piece end housings
working out
of his own shop and is continuing to develop them. I'll send some
picture of his
engines with the next message.
BTW the steel liner that Mazda uses is also hardened before inserting in
the aluminum
mold.
-- Paul Lamar ...No rotor no motor.
Paul,
I think you know that I am squarely behind the idea of a cast in wear
surface from earlier discussions. I don't believe however that a good
aluminum side plate with coating isn't possible. Mazda has done it
of course with the 726 engine, though that is an expensive coating.
I do believe that some of the coatings or alternate materials, used in
the casting can work. Porsche used the "Vega block material" in all the
928 V-8s. Mercedes has used a variant of the same material in many of
their V-8s. There is no reason these materials couldn't be used for
rotary side plates. These were plenty durable thru heat cycles and
sliding wear. The only thing that needed to be done in early versions
was to iron plate the pistons, (later unneeded as alloys were improved),
which wouldn't be needed in the rotary since the rotors are already
iron! There are Nicasil cylinders that hold up long term too. My GSXR
750 uses a coated aluminum cylinder and it is holding up perfectly well.
I don't think an all aluminum rotor housing is needed as Mazda has done
such a good job of producing a good light rotor housing I would use
theirs, it is so much cheaper. side and end plates I am still thinking
about though.
FWIW
Bill Jepson
I am not saying it is impossible. If it ain't steel or iron good luck :)
Piston engines are not rotaries. Eric Barger is not BMW or GM yet.
Paul Lamar ...No rotor no motor.
Using exotic coatings can make overhauling more difficult. Overhauls
may be required not just at the end of a wear cycle - at TBO, but when
repairing damage from FOD injestion.
BMW has had problems with Nikasil durability (lack of) because of high
sulfur content in the fuel in some markets (so I've read on the internet).
I like the idea of a wear liner.
Regards,
Matt-
Matt,
I'm with you on the wear liner in most instances. the thing to remember
on side plates intermediate housings is that FOD will likely render ANY
housing unusable. Irons can't be cut/lapped a lot thinner than original.
On his so-called superlite engine, Everette Hatch built a brazed
together all steel carefully skeletonized side plate. (P-port, no side
holes) This was a machined half, brazed together. I like the idea of the
independent wear plate in an aluminum housing, captured at the OD
and replaceable if necessary. The wear plate could have some screws near
the ID if needed for retention. Richard has done a lot of work towards
this already. If this idea only lost 15 instead of 25 lbs on a 13B it
would still be a lot. The 20B would lose even more since the large
intermediate housing on it weighs even more. I also like Cermet,
(ceramic metal matrix), Honda has used it for liners on several exotic
engines RC45 and several others. Expensive too but super tough. as light
or lighter than aluminum. Grinding needed for flatness though.
Bill Jepson
The main point is you want to reduce the technical risk to a minimum.
That means copying what works. Use something that is low tech and sure to work.
You don't want a lot of hi tech coatings out in the field and have them fail.
When that happens you can kiss the biz goodbye.
There is no time to do extensive long term testing. Money equals time squared
when you are starting a new biz. You have a limited amount of time to
start shipping product and get a substantial cash flow going.
"Show me an innovator and I will show you a candidate for bankruptcy."
Henry Ford.
The time for innovation and R&D is later. After you are shipping a lot of
product and you have the cash.
Paul Lamar ...No rotor no motor.
The Rotary Engine NewsLetter. Powered by Linux.
ACRE NL web site.
http://www.rotaryeng.net
Copyright 1998-2006 All world wide rights reserved.