Optimization and Pumping Loss Analysis on Atkinson Cycle Engine Considering Valve Timing and EGR[J]. 2018, 52(3): 47-54+62.
DOI:
Optimization and Pumping Loss Analysis on Atkinson Cycle Engine Considering Valve Timing and EGR[J]. 2018, 52(3): 47-54+62.DOI: 10.7652/xjtuxb201803007.
Optimization and Pumping Loss Analysis on Atkinson Cycle Engine Considering Valve Timing and EGR
To reduce energy loss caused by pumping work in Atkinson cycle gasoline engine
this paper conducted the research on an one-dimensional thermodynamic model of naturally aspirated Atkinson cycle gasoline engine
and analyzed the effect of IVC and EVC on the pumping loss of a naturally aspirated gasoline engine. The results showed that when the intake valve closing time is delayed
the pressure in the intake manifold increases
the pumping loss is reduced to -64.7 kPa when the intake valve closing time is delayed to 101° at low load; however
when the intake valve closing time is delayed too late
the negative expansion power gradually increases and causes pump loss increase. Delaying exhaust closing angle to 55° can increase the valve overlap period and decrease the pumping loss to -52.6 kPa
while advancing exhaust closing angle to -45° can reuse negative compression power and reduce the pumping loss to -30.4 kPa. Then
under the premise of stable combustion
the EGR valve can be controlled to adjust the EGR rate. The results showed that
at high load
the pumping loss gain comes from the increase of inlet pressure and the decrease of exhaust pressure; with the increase of EGR
the pumping loss can be reduced by 18.8%; at low load
the pumping loss gain mainly comes from the increase of inlet pressure
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