Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines

Tesla turbines are a kind of unconventional bladeless turbines, which utilize the viscosity of working fluid to rotate the rotor and realize energy conversion. They offer an attractive substitution for small and micro conventional bladed turbines due to two major advantages. In this study, the effec...

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Main Authors: Wenjiao Qi, Qinghua Deng, Yu Jiang, Qi Yuan, Zhenping Feng
Format: Article
Language:English
Published: MDPI AG 2018-12-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/12/1/44
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author Wenjiao Qi
Qinghua Deng
Yu Jiang
Qi Yuan
Zhenping Feng
author_facet Wenjiao Qi
Qinghua Deng
Yu Jiang
Qi Yuan
Zhenping Feng
author_sort Wenjiao Qi
collection DOAJ
description Tesla turbines are a kind of unconventional bladeless turbines, which utilize the viscosity of working fluid to rotate the rotor and realize energy conversion. They offer an attractive substitution for small and micro conventional bladed turbines due to two major advantages. In this study, the effects of two influential geometrical parameters, disc thickness and disc spacing distance, on the aerodynamic performance and flow characteristics for two kinds of multichannel Tesla turbines (one-to-one turbine and one-to-many turbine) were investigated and analyzed numerically. The results show that, with increasing disc thickness, the isentropic efficiency of the one-to-one turbine decreases a little and that of the one-to-many turbine reduces significantly. For example, for turbine cases with 0.5 mm disc spacing distance, the former drops less than 7% and the latter decreases by about 45% of their original values as disc thickness increases from 1 mm to 2 mm. With increasing disc spacing distance, the isentropic efficiency of both kinds of turbines increases first and then decreases, and an optimal value and a high efficiency range exist to make the isentropic efficiency reach its maximum and maintain at a high level, respectively. The optimal disc spacing distance for the one-to-one turbine is less than that for the one-to-many turbine (0.5 mm and 1 mm, respectively, for turbine cases with disc thickness of 1 mm). To sum up, for designing a multichannel Tesla turbine, the disc spacing distance should be among its high efficiency range, and the determination of disc thickness should be balanced between its impacts on the aerodynamic performance and mechanical stress.
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spelling doaj.art-22add5ea39e84b9e8bbdf31b1b5752272022-12-22T02:10:10ZengMDPI AGEnergies1996-10732018-12-011214410.3390/en12010044en12010044Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla TurbinesWenjiao Qi0Qinghua Deng1Yu Jiang2Qi Yuan3Zhenping Feng4Shaanxi Engineering Laboratory of Turbomachinery and Power Equipment, Institute of Turbomachinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaShaanxi Engineering Laboratory of Turbomachinery and Power Equipment, Institute of Turbomachinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaShaanxi Engineering Laboratory of Turbomachinery and Power Equipment, Institute of Turbomachinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaShaanxi Engineering Laboratory of Turbomachinery and Power Equipment, Institute of Turbomachinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaShaanxi Engineering Laboratory of Turbomachinery and Power Equipment, Institute of Turbomachinery, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, ChinaTesla turbines are a kind of unconventional bladeless turbines, which utilize the viscosity of working fluid to rotate the rotor and realize energy conversion. They offer an attractive substitution for small and micro conventional bladed turbines due to two major advantages. In this study, the effects of two influential geometrical parameters, disc thickness and disc spacing distance, on the aerodynamic performance and flow characteristics for two kinds of multichannel Tesla turbines (one-to-one turbine and one-to-many turbine) were investigated and analyzed numerically. The results show that, with increasing disc thickness, the isentropic efficiency of the one-to-one turbine decreases a little and that of the one-to-many turbine reduces significantly. For example, for turbine cases with 0.5 mm disc spacing distance, the former drops less than 7% and the latter decreases by about 45% of their original values as disc thickness increases from 1 mm to 2 mm. With increasing disc spacing distance, the isentropic efficiency of both kinds of turbines increases first and then decreases, and an optimal value and a high efficiency range exist to make the isentropic efficiency reach its maximum and maintain at a high level, respectively. The optimal disc spacing distance for the one-to-one turbine is less than that for the one-to-many turbine (0.5 mm and 1 mm, respectively, for turbine cases with disc thickness of 1 mm). To sum up, for designing a multichannel Tesla turbine, the disc spacing distance should be among its high efficiency range, and the determination of disc thickness should be balanced between its impacts on the aerodynamic performance and mechanical stress.http://www.mdpi.com/1996-1073/12/1/44Tesla turbinefluid dynamicsdisc thicknessdisc spacing distanceisentropic efficiency
spellingShingle Wenjiao Qi
Qinghua Deng
Yu Jiang
Qi Yuan
Zhenping Feng
Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
Energies
Tesla turbine
fluid dynamics
disc thickness
disc spacing distance
isentropic efficiency
title Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
title_full Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
title_fullStr Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
title_full_unstemmed Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
title_short Disc Thickness and Spacing Distance Impacts on Flow Characteristics of Multichannel Tesla Turbines
title_sort disc thickness and spacing distance impacts on flow characteristics of multichannel tesla turbines
topic Tesla turbine
fluid dynamics
disc thickness
disc spacing distance
isentropic efficiency
url http://www.mdpi.com/1996-1073/12/1/44
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