This paper discusses the performance and the mass flow characteristics of a twin-entry turbocharger turbine with a fixed nozzle entry and a nozzleless entry for the automotive application. Because the configuration, which is based on a conventional twin-entry nozzleless turbine, has both a fixed nozzle entry and nozzleless entry simultaneously, and the fixed nozzle entry and the nozzleless entry have different rotor incidence angles, stratified flow is formed in the rotor inlet. The numerical simulation results show that the new turbine with double-rotor incidence angles has higher efficiency compared to the original twin-entry nozzleless turbine, especially in low-speed condition, which can greatly improve the low-speed torque of the engine. By investigating the installation locations of the fixed nozzle, it is more beneficial to improve the turbine efficiency when the fixed nozzle is set at the outer scroll near the turbine outlet. The influence of the vane installation angle on the turbine performances is studied in order to optimize the turbine structure and to find out the turbine performance characteristics. It shows that 60 deg is the optimal vane angle. This paper introduces the concept of the double-rotor incidence angles and the details of the configuration optimization.
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Simulation of a Combined Nozzled and Nozzleless Twin-Entry Turbine for Improved Efficiency
Jimin Ni,
Jimin Ni
Professor
School of Automotive Studies,
Tongji University,
Shanghai 201804, China
e-mail: njmwjyx@hotmail.com
School of Automotive Studies,
Tongji University,
Shanghai 201804, China
e-mail: njmwjyx@hotmail.com
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Dayong Qu,
Dayong Qu
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: qusdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: qusdt@yahoo.com
Search for other works by this author on:
Yi Zheng,
Yi Zheng
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: zysdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: zysdt@yahoo.com
Search for other works by this author on:
Yinghong Zheng
Yinghong Zheng
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng City 118100, China
e-mail: zyhsdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng City 118100, China
e-mail: zyhsdt@yahoo.com
Search for other works by this author on:
Houchuan Fan
Jimin Ni
Professor
School of Automotive Studies,
Tongji University,
Shanghai 201804, China
e-mail: njmwjyx@hotmail.com
School of Automotive Studies,
Tongji University,
Shanghai 201804, China
e-mail: njmwjyx@hotmail.com
Xiuyong Shi
Dayong Qu
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: qusdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: qusdt@yahoo.com
Yi Zheng
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: zysdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng 118100, China
e-mail: zysdt@yahoo.com
Yinghong Zheng
Fengcheng SDT Turbo Co., Ltd,
Erlong Modern Industrial Zone,
Fengcheng City 118100, China
e-mail: zyhsdt@yahoo.com
Erlong Modern Industrial Zone,
Fengcheng City 118100, China
e-mail: zyhsdt@yahoo.com
1Corresponding author.
Manuscript received August 2, 2017; final manuscript received August 6, 2018; published online March 11, 2019. Assoc. Editor: David L. S. Hung.
J. Eng. Gas Turbines Power. May 2019, 141(5): 051019 (9 pages)
Published Online: March 11, 2019
Article history
Received:
August 2, 2017
Revised:
August 6, 2018
Citation
Fan, H., Ni, J., Shi, X., Qu, D., Zheng, Y., and Zheng, Y. (March 11, 2019). "Simulation of a Combined Nozzled and Nozzleless Twin-Entry Turbine for Improved Efficiency." ASME. J. Eng. Gas Turbines Power. May 2019; 141(5): 051019. https://doi.org/10.1115/1.4041315
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