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Study on Instability of Subcooled Cryogenic Cavitating Flows

Research Project

Project/Area Number 16560156
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeSingle-year Grants
Section一般
Research Field Fluid engineering
Research InstitutionIshinomaki Senshu University

Principal Investigator

OIKE Mamoru  Ishinomaki Senshu University, Faculity of Science and Engineering, Professor, 理工学部, 教授 (70292282)

Co-Investigator(Kenkyū-buntansha) TOKUMASU Takashi  Tohoku University, Institute of Fluid Science, Associate Professor, 流体科学研究所, 助教授 (10312662)
Project Period (FY) 2004 – 2005
Project Status Completed (Fiscal Year 2005)
Budget Amount *help
¥3,700,000 (Direct Cost: ¥3,700,000)
Fiscal Year 2005: ¥900,000 (Direct Cost: ¥900,000)
Fiscal Year 2004: ¥2,800,000 (Direct Cost: ¥2,800,000)
KeywordsFluid Engineering / Properties at Low Temperatures / Cavitating Flow / Subcooled Cryogenic Fluid / 流動不安定性
Research Abstract

In this study, the experimental research was carried out about the cavitating flow of liquid nitrogen both at normal boiling point (NBP) and subcooled densified condition, and some knowledge about subcooled cryogenic fluid has been obtained.
The experiments were performed at cryogenic two phase flow test equipment. A cylindrical converging-diverging nozzle is installed in the test section, which has 2.2mm throat diameter and a 1.21/25 contraction area ratio. During the experiment, pressures and temperatures at both upstream and downstream of the throat were measured, as well as volume flow rate and kinetic pressure.
In the case of subcooled condition, from the results of experimental measurements and observations, the fluid of higher flow rate was allowed to be passed through the throat without cavitation, compared with NBP conditions. The flow rate of subcooled condition at 68K reaches three times as much as that of NBP condition. Also, the different types of cavitating flow were observed in subcooled conditions. The cavitation occurrence was intermittently, that is, cavitating flow could not stay long time period and it shifted back to the single phase liquid flow. This is explained by choked flow at the throat caused by reduced acoustic velocity. This intermittent occurrence of cavitation was not only interesting phenomena, but also important in engineering application. While the cavitation occurred intermittently, the large amplitude of oscillations was induced at the same time. The pressure fluctuation amplitude reaches a maximum 35% of the base pressure, and seems to be a dangerous phenomenon in engineering applications.
These phenomena about subcooled cavitating flow are governed by acoustic velocity and cavitation number which change with temperature conditions. In this research, the relationship between the flow appearance and cavitation number or acoustic velocity was shown for predicting the cavitating flow phenomena of subcooled cryogenic fluids.

Report

(3 results)
  • 2005 Annual Research Report   Final Research Report Summary
  • 2004 Annual Research Report
  • Research Products

    (3 results)

All 2006

All Journal Article (3 results)

  • [Journal Article] 液体窒素キャビテーション流動の基礎特性び対する流体温度の影響2006

    • Author(s)
      新井山 一樹
    • Journal Title

      日本機械学会論文集(B編) 72・713

      Pages: 46-53

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2005 Final Research Report Summary
  • [Journal Article] The Effect of Fluid Temperature on Basic Characteristics about Liquid Nitrogen Cavitating Flows2006

    • Author(s)
      K.Niiyama, M.Oike, T.Tokumasu, K.Kamijo
    • Journal Title

      Trans.Jpn Soc.Mech.Eng. Vol.72, No.713,B

      Pages: 46-52

    • NAID

      110004101757

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2005 Final Research Report Summary
  • [Journal Article] 液体窒素キャビテーション流動の基礎特性に対する流体温度の影響2006

    • Author(s)
      新井山 一樹
    • Journal Title

      日本機械学会論文集(B編) 72・713

      Pages: 46-53

    • Related Report
      2005 Annual Research Report

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Published: 2004-04-01   Modified: 2016-04-21  

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