The Wankel rotary engine offers a greater power density than piston engines, but higher fuel consumption and hydrocarbon emissions, in large part due to poor gas sealing. This paper presents a model for the deformable dynamics of the side seal, which completes a set of modeling tools for the comprehensive assessment of the gas leakage mechanisms in the rotary engine. It is shown that the main leakage mechanisms for the side seals are: (1) opening of the inner flank due to the contact with the trailing corner seal, (2) flow through the gap with the leading corner seal, (3) simultaneous opening of both inner and outer flanks due to body force at high speed, and (4) running face leakage due to nonconformability at high speed. The leakage mechanisms are qualitatively validated at low speed with observed oil patterns on the rotor from laser-induced fluorescence (LIF) experiments. Finally, the predicted total leakage area for all the gas seals ranges from 1.5 mm2/chamber at low speeds to 2 mm2/chamber at high speeds, which is in agreement with the previous experimental studies, and the three gas seal types (side seals, apex seals, and corner seals) each accounts for about 1/3 of the total leakage, with minor variation as a function of speed.

References

1.
Eberle
,
M. K.
, and
Klomp
,
E. D.
,
1973
, “
An Evaluation of the Potential Performance Gain From Leakage Reduction in Rotary Engines
,”
SAE
Technical Paper No. 730117.
2.
Danieli
,
G. A.
,
Ferguson
,
C. R.
,
Heywood
,
J. B.
, and
Keck
,
J. C.
,
1974
, “
Predicting the Emissions and Performance Characteristics of a Wankel Engine
,”
SAE
Technical Paper No. 740186.
3.
Norman
,
T. J.
,
1983
, “
A Performance Model of a Spark Ignition Wankel Engine: Including the Effects of Crevice Volumes, Gas Leakage, and Heat Transfer
,” Master's thesis, Massachusetts Institute of Technology, Cambridge, MA.
4.
Roberts
,
J. A.
,
Norman
,
T. J.
,
Ekchian
,
J. A.
, and
Heywood
,
J. B.
,
1986
, “
Computer Models for Evaluating Premixed and Disc Wankel Engine Performance
,”
SAE
Technical Paper No. 860613.
5.
Sierens
,
R.
,
Baert
,
R.
,
Winterbone
,
D. E.
, and
Baruah
,
P. C.
,
1983
, “
A Comprehensive Study of Wankel Engine Performance
,”
SAE
Technical Paper No. 830332.
6.
Knoll
,
J.
,
Vilmann
,
C. R.
,
Schock
,
H. J.
, and
Strumpf
,
R. P.
,
1984
, “
A Dynamic Analysis of Rotary Combustion Engine Seals
,”
SAE
Technical Paper No. 840035.
7.
Orlandea
,
N. V.
,
Welnert
,
M. S.
, and
Keleher
,
D. B.
,
1987
, “
Computer Simulation of the Rotary Engine Apex Seal System
,”
SAE
Technical Paper No. 870410.
8.
Rachel
,
T.
,
Schock
,
H.
, and
Bartrand
,
T.
,
1991
, “
Analysis of Frictional Power Losses Associated With the Side and Apex Seals of a Wankel Rotary Engine
,”
SAE
Technical Paper No. 910626.
9.
Handschuh
,
R.
,
2010
, “
Analysis of Apex Seal Friction Power Loss in Rotary Engines
,” NASA Glenn Research Center, Cleveland, OH,
NASA
Technical Memorandum No. 2010-216353.
10.
Picard
,
M.
,
Tian
,
T.
, and
Nishino
,
T.
, “
Predicting Gas Leakage in the Rotary Engine—Part I: Apex and Corner Seals
,”
ASME J. Eng. Gas Turbines Power
, ▪, ▪–▪.
11.
Greenwood
,
J. A.
, and
Tripp
,
J. H.
,
1970
, “
The Contact of Two Nominally Flat Rough Surfaces
,”
Proc. Inst. Mech. Eng.
,
185
(
1
), pp.
625
633
.
12.
Hu
,
Y.
,
Cheng
,
H. S.
,
Arai
,
T.
,
Kobayashi
,
Y.
, and
Aoyama
,
S.
,
1994
, “
Numerical Simulation of Piston Ring in Mixed Lubrication—A Nonaxisymmetrical Analysis
,”
ASME J. Tribol.
,
116
(
3
), pp.
470
478
.
13.
Baelden
,
C.
,
2014
, “
A Multi-Scale Model for Piston Ring Dynamics, Lubrication and Oil Transport in Internal Combustion Engines
,” Ph.D. thesis, Massachusetts Institute of Technology, Cambridge, MA.
14.
Picard
,
M.
,
Baelden
,
C.
,
Tian
,
T.
,
Nishino
,
T.
,
Arai
,
E.
, and
Hidaka
,
H.
,
2014
, “
Oil Transport Cycle Model for Rotary Engine Oil Seals
,”
SAE
Technical Paper No. 2014-01-1664.
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