Welcome to Journal of Automotive Safety and Energy,

Journal of Automotive Safety and Energy ›› 2020, Vol. 11 ›› Issue (3): 406-412.DOI: 10.3969/j.issn.1674-8484.2020.03.017

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Cooling strategy of a dual fuel injector needle valve under micro pilot ignition condition 

HE Ping1,2, RUAN Haoda1 , MEI Jiahua3 , WANG Congyang1 , LI Zhaoyang1   

  1. (1. School of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei 230601, China; 2. Key Laboratory of Construction Machinery Fault Diagnosis and Early Warning Technology, Anhui Jianzhu University, Hefei 230601, China; 3. Department of R & D, China Shipbuilding Power Engineering Institute Co. Ltd, Shanghai 200120, China)  
  • Received:2020-06-12 Online:2020-09-30 Published:2020-10-20

Abstract:  The cooling effect of needle valve was investigated to improve the durability and reliability of an engine injector under micro pilot ignition condition. The temperature fields of an injector needle valve were simulated in a dual fuel mode of heavy oil and natural gas by using a multiphase flow model and a k-ε standard turbulence model in a CFD (computational fluid dynamics). The cooling effects of different inlet temperature of cooling lube were simulated numerically and verified experimentally. The results show that the needle valve head has the highest temperature point at the needle valve bottom. The cooling effect of needle valve enhances at beginning and decreases at following when the inlet temperature of cooling lube increases continuously. The needle valve head reaches its lowest temperature of 256.8 ℃ for heavy oil mode and of 361.1 ℃ for natural gas mode, when the inlet temperature is 80 ℃ , so that having the best cooling effect. Therefore, it is feasible to investigate the cooling performance of the needle valve of dual fuel engine with CFD numerical simulation method. 

Key words: dual fuel engine, micro pilot ignition, injector needle valve, cooling lube, computer fluent dynamic (CFD), numerical simulation 

CLC Number: