Cryogenic flow boiling in microgravity: Effects of reduced gravity on two-phase fluid physics and heat transfer

被引:14
|
作者
Kim, Sunjae [1 ]
Damle, Nishad [1 ]
Mudawar, Issam [1 ]
Hartwig, Jason [2 ]
机构
[1] Purdue Univ, Sch Mech Engn, Boiling & Two Phase Flow Lab PU BTPFL, 585 Purdue Mall, W Lafayette, IN 47907 USA
[2] NASA, Glenn Res Ctr, Fluids & Cryogen Branch, 21000 Brookpark Rd, Cleveland, OH 44135 USA
基金
美国国家航空航天局;
关键词
Cryogens; Microgravity; Flow boiling; Parabolic flight; TRANSFER COEFFICIENT; GENERAL CORRELATION; SINGLE-PHASE; TUBES; ORIENTATION; CONVECTION; BEHAVIOR; CHANNEL; METHANE;
D O I
10.1016/j.ijheatmasstransfer.2023.124751
中图分类号
O414.1 [热力学];
学科分类号
摘要
With the growing interest in space exploration, cryogenic technologies involving two-phase flow and heat transfer are in high demand to successfully procure advanced space applications such as fuel depots and nuclear thermal propulsion (NTP) systems for deep space missions. However, the unique and extreme thermal properties of cryogenic fluids introduce distinct flow boiling fluid physics and energy transport phenomena, which differ significantly from those observed with conventional fluids. Understanding the unique two-phase physics in cryogenic flow boiling remains an ongoing challenge. Furthermore, the lack of readily available microgravity cryogenic steady-state heat transfer data hinders the assessment of gravitational effects on cryogenic flow boiling. This study aims to elucidate the gravitational effects on two-phase fluid physics and heat transfer by conducting the first-ever experimental measurement of cryogenic flow boiling performance using a steady-state heated method in a reduced gravity environment. Parabolic flight experiments were performed to acquire both heat transfer measurements and high-speed video of interfacial behaviors, under varying gravity levels (microgravity, hypergravity, Lunar gravity, and Martian gravity). The experiments involved flow boiling of liquid nitrogen (LN2) with a near-saturated inlet along a circular heated tube of dimensions 8.5-mm inner diameter and 680-mm heated length. The operating parameters varied are mass velocity of 398.3 - 1342.8 kg/ m2s, inlet quality of -0.08 to -0.01, and inlet pressure of 413.68 - 689.48 kPa. Captured microgravity flow patterns range from bubbly to annular, all having vapor structures that are larger than those under higher gravity levels. Under microgravity, absence of buoyancy yields symmetrical vapor structures without flow stratification, laying a physical foundation for the distinct two-phase heat transfer trends during LN2 flow boiling in microgravity. Transient data collected during the flight parabolas exhibited decreasing heated wall temperature as the aircraft transitioned from hypergravity to microgravity phases. The temperature variation indicated an enhancement in flow boiling heat transfer with decreasing gravity levels and a reduction with increasing gravity levels. The effect of reduced gravity on cryogenic flow boiling heat transfer coefficient (HTC) is discussed based on steady state heat transfer analysis. Seminal HTC correlations are evaluated against the measured microgravity HTC data, of which one is identified for superior accuracy in predicting microgravity data. Finally, a new HTC correlation is proposed to improve accuracy of microgravity predictions, yet there still exists room for further improvement with future terrestrial flow boiling experiments at different flow orientations relative to Earth gravity.
引用
收藏
页数:35
相关论文
共 50 条
  • [31] Flow and Heat Transfer of Single-and Two-Phase Boiling of Nanofluids in Microchannels
    Duursma, Gail
    Sefiane, Khellil
    Dehaene, Alexandre
    Harmand, Souad
    Wang, Yuan
    HEAT TRANSFER ENGINEERING, 2015, 36 (14-15) : 1252 - 1265
  • [32] Infrared thermography measurement of two-phase boiling flow heat transfer in a microchannel
    Liu, Tsung-Lin
    Pan, Chin
    APPLIED THERMAL ENGINEERING, 2016, 94 : 568 - 578
  • [33] On the advancements in boiling, two-phase flow heat transfer, and interfacial phenomena - Preface
    Manglik, Raj M.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2006, 128 (12): : 1237 - 1242
  • [34] Flow boiling heat transfer in two-phase micro-channel heat sinks - II. Annular two-phase flow model
    Qu, WL
    Mudawar, I
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2003, 46 (15) : 2773 - 2784
  • [35] Gravity effects on subcooled flow boiling heat transfer
    Lebon, Michel T.
    Hammer, Caleb F.
    Kim, Jungho
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 128 : 700 - 714
  • [36] Stability of the boiling two-phase flow of a magnetic fluid
    Lshimoto, Jun
    Journal of Applied Mechanics, Transactions ASME, 2007, 74 (06): : 1187 - 1196
  • [37] Stability of the boiling two-phase flow of a magnetic fluid
    Ishimoto, Jun
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2007, 74 (06): : 1187 - 1196
  • [38] STUDY OF HEAT TRANSFER IN BOILING TWO-PHASE CHANNEL FLOW - 2. HEAT TRANSFER IN THE NUCLEATE BOILING REGION.
    Pagel, R.
    1600, (01):
  • [39] Heat Transfer and Fluid Flow Characteristics of Nonboiling Two-Phase Flow in Microchannels
    Choo, Kyosung
    Kim, Sung Jin
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2011, 133 (10):
  • [40] Heat transfer mechanisms in microgravity flow boiling
    Ohta, H
    MICROGRAVITY TRANSPORT PROCESSES IN FLUID, THERMAL, BIOLOGICAL, AND MATERIALS SCIENCES, 2002, 974 : 463 - 480