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Experimental Heat Transfer
A Journal of Thermal Energy Generation, Transport, Storage, and Conversion
Volume 33, 2020 - Issue 7
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Research Article

Experimental study on transient heat transfer characteristics of intermittent spray cooling

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Pages 613-632 | Received 21 Apr 2019, Accepted 18 Dec 2019, Published online: 24 Dec 2019
 

ABSTRACT

Experiments were performed to investigate the transient cooling characteristics of intermittent spray cooling (ISC) in single-phase and nucleate-boiling regimes. The consumption of residual liquid in the non-injection period was confirmed via observations of the dynamic behavior through visualization experiments. The time variation of the surface heat transfer is relatively small in the single-phase regime and minimal in the initial nucleate-boiling regime. Further, ISC was considered as a process where the transient mass flow rate was specified by the characteristic time. This idea was successfully evaluated in the prediction of the critical heat flux in cryogen spray cooling.

Abbreviations: CHF: critical heat flux; CSC: cryogen spray cooling; DC: duty cycle; ISC: intermittent spray cooling; SFSM: sequential function specification method

Nomenclature

d32=

Sauter mean diameter averaged over spray impact area, μm

f=

frequency, Hz

h=

heat transfer coefficient, W/(cm2⋅K)

Hfg=

latent heat of vaporization, J/g

k=

thermal conductivity, W/(m·K)

L=

heater length, m

P=

pressure, MPa

r=

number of future time steps

q=

surface heat flux, W/cm2

qmax=

critical heat flux, W/cm2

qmax=

modified critical heat flux, qmax=qmax/ρgHfgQ′′

Qm=

spray flow rate, ml/min

Q′′=

volumetric flow rate averaged over spray impact area, m3s−1/m2

t=

time, s

t+=

dimensionless time

T=

temperature, °C

Δtinj=

injection time, ms

Δtinj=

non-injection time, ms

x=

distance coordinate, m

x+=

dimensionless distance coordinate

Dimensionless groups

St=

Strouhal number St=d32/τQ′′

Ja=

Jacob number Ja=Cp,lTwTf/Hfg

Re=

Reynolds number Re=ρfd32Q′′/μf

We=

Weber number We=ρfd32Q′′2/σ

Greek symbols

ρ=

density, kg/m3

μ=

viscosity, Pa⋅s

σ=

surface tension, N/m

φ=

unit impulse response

τ=

characteristic time

λn=

the characteristic value

Superscript

ˆ=

estimated (computed) quantity

Subscript

0=

at x=0 or t=0

0+=

near the surface

f=

liquid

L=

at x=L

i=

spatial index

j=

time index

w=

wall

s=

surface

sub=

Subcooling

Acknowledgments

This work was supported by the National Natural Science Foundation of China under grant NO. 51876020, the Joint Fund of Equipment Development Department Pre-research Project and the Ministry of Education under grant No. 6141A02022505.

Additional information

Funding

This work was supported by the National Natural Science Foundation of China [51876020];the Joint Fund of Equipment Development Department Pre-research Project and the Ministry of Education [6141A02022505];

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