机械工程学报
機械工程學報
궤계공정학보
CHINESE JOURNAL OF MECHANICAL ENGINEERING
2009年
12期
311-317
,共7页
柴油机%辐射换热%缸内%多维模拟
柴油機%輻射換熱%缸內%多維模擬
시유궤%복사환열%항내%다유모의
Diesel engine%Radiation heat transfer%In-cylinder%Multi-dimensional numerical simulation
对柴油机来说,辐射换热极为重要,在缸内总传热量中占有非常大的比重,直接关系到发动机热效率及因传热引起的各种熟负荷、热强度问题,同时,辐射换热对燃烧系统的研究也十分重要,辐射热流量会深刻影响内燃机的燃烧性能,对发动机的各种燃烧产物的形成产生至关重要的影响.为此,利用离散传递法实现柴油机缸内辐射换热的多维数值模拟,通过多维模拟计算同时考察燃烧室部件表面发射率及喷雾提前角对柴油机缸内辐射换热的影响.结果表明:活塞的辐射热流量峰值高于缸盖的辐射热流:缸盖的辐射热流量的最大值并不在中心位置处,而是随时间变化;随着壁面辐射率的增加,缸内向燃烧室部件辐射换热量逐渐增大;喷雾提前角直接影响所有燃烧室部件表面的辐射热流密度.
對柴油機來說,輻射換熱極為重要,在缸內總傳熱量中佔有非常大的比重,直接關繫到髮動機熱效率及因傳熱引起的各種熟負荷、熱彊度問題,同時,輻射換熱對燃燒繫統的研究也十分重要,輻射熱流量會深刻影響內燃機的燃燒性能,對髮動機的各種燃燒產物的形成產生至關重要的影響.為此,利用離散傳遞法實現柴油機缸內輻射換熱的多維數值模擬,通過多維模擬計算同時攷察燃燒室部件錶麵髮射率及噴霧提前角對柴油機缸內輻射換熱的影響.結果錶明:活塞的輻射熱流量峰值高于缸蓋的輻射熱流:缸蓋的輻射熱流量的最大值併不在中心位置處,而是隨時間變化;隨著壁麵輻射率的增加,缸內嚮燃燒室部件輻射換熱量逐漸增大;噴霧提前角直接影響所有燃燒室部件錶麵的輻射熱流密度.
대시유궤래설,복사환열겁위중요,재항내총전열량중점유비상대적비중,직접관계도발동궤열효솔급인전열인기적각충숙부하、열강도문제,동시,복사환열대연소계통적연구야십분중요,복사열류량회심각영향내연궤적연소성능,대발동궤적각충연소산물적형성산생지관중요적영향.위차,이용리산전체법실현시유궤항내복사환열적다유수치모의,통과다유모의계산동시고찰연소실부건표면발사솔급분무제전각대시유궤항내복사환열적영향.결과표명:활새적복사열류량봉치고우항개적복사열류:항개적복사열류량적최대치병불재중심위치처,이시수시간변화;수착벽면복사솔적증가,항내향연소실부건복사환열량축점증대;분무제전각직접영향소유연소실부건표면적복사열류밀도.
Radiation heat transfer is extremely important for diesel engine and occupies very high ratio in total heat transfer capacity of in-cylinder. It is directly related to the diesel engine heat efficiency and all kinds of heat load and heat intensity caused by heat transfer. At the same time, the study on radiation heat transfer on combustion system is also important, for the combustion performance of internal combustion engine and formation of all combustion products will be observably effected. Hence, the multi-dimensional transient numerical simulation of in-cylinder radiation heat transfer is performed by using discrete transfer radiation method (DTRM), and the effect of surface emissivity and fuel injection advance angle on in-cylinder radiation heat transfer is investigated. The results show that the maximal radiative heat flux of piston surface is larger than that of head surface; the maximal radiative heat flux of head surface is not at the central position but changes with time. The radiative heat flux of wall surfaces is enhanced with the increase of emissivity of wall surfaces; the radiative heat flux of all combustion chamber components is directly affected by the advance angle of fuel injection.