The absorption air-conditioning system is a low-power-consumption and low-noise system and is also good at balancing the electricity peak-valley system. It can be driven by low-grade energy, such as solar energy and industrial exhaust heat. The nanofluids, which possess the superior thermophysical properties, exhibit a great potential in enhancing heat and mass transfer. In this paper, nanofluids of H2O/LiBr with Fe3O4 nanoparticles were introduced into absorption air conditioning system. The effects of critical parameters, such as the flow rate of H2O/LiBr nanofluids, nanoparticle size and mass fraction, on the falling film absorption were investigated. The H2O/LiBr nanofluids with Fe3O4 nanoparticle mass fractions of 0.01 wt %, 0.05 wt % and 0.1 wt %, and nanoparticle sizes of 20 nm, 50 nm and 100 nm were tested. The results imply that the vapor absorption rate could be improved by adding the nanoparticles to H2O/LiBr solution. The smaller the nanoparticle size, the greater the enhancement of the heat and mass transfer. The absorption enhancement ratio increases sharply at first by increasing the nanoparticle mass fraction within a range of relatively low mass fraction and then exhibits a slow growing even reducing trends with increasing the mass fraction further. For Fe3O4 nanoparticle mass fraction of 0.05 wt % and nanoparticle size of 20 nm, the maximum mass transfer enhancement ratio is achieved about 2.28 at the flow rate of 100 L h−1. Meanwhile, a fitting formula of mass transfer enhancement ratio for Fe3O4 nanofluids has been improved.

References

1.
Wonchala
,
J.
,
Hazledine
,
M.
, and
Boulama
,
K. G.
,
2014
, “
Solution Procedure and Performance Evaluation for a Water–LiBr Absorption Refrigeration Machine
,”
Energy
,
65
, pp.
272
284
.
2.
Kızılkan
,
Ö.
,
Şencan
,
A.
, and
Kalogirou
,
S. A.
,
2007
, “
Thermoeconomic Optimization of a LiBr Absorption Refrigeration System
,”
Chem. Eng. Process.
,
46
(
12
), pp.
1376
1384
.
3.
Ma
,
W. B.
, and
Deng
,
S. M.
,
1996
, “
Theoretical Analysis of Low-Temperature Hot Source Driven Two-Stage LiBr/H2O Absorption Refrigeration System
,”
Int. J. Refrig.
,
19
(
2
), pp.
141
146
.
4.
Kang
,
Y. T.
,
Kunugi
,
Y.
, and
Kashiwagi
,
T.
,
2000
, “
Review of Advanced Absorption Cycles: Performance Improvement and Temperature Lift Enhancement
,”
Int. J. Refrig.
,
23
(
5
), pp.
388
401
.
5.
Deng
,
S. M.
, and
Ma
,
W. B.
,
1999
, “
Experimental Studies on the Characteristics of an Absorber Using LiBr/H2O Solution as Working Fluid
,”
Int. J. Refrig.
,
22
(
4
), pp.
293
301
.
6.
Choi
,
S. U. S.
, and
Eastman
,
J. A.
,
1995
, “
Enhancing Thermal Conductivity of Fluids With Nanoparticles
,” International Mechanical Engineering Congress and Exhibition, San Francisco, CA, Nov. 12–17, Paper No. CONF-951135--29.
7.
Xuan
,
Y. M.
, and
Roetzel
,
W.
,
2000
, “
Conceptions of Heat Transfer Correlation of Nanofluids
,”
Int. J. Heat Mass Transfer
,
43
(
19
), pp.
3701
3707
.
8.
Tohidi
,
A.
,
Hosseinalipour
,
S. M.
,
Monfared
,
Z. G.
, and
Mujumdar
,
A. S.
,
2014
, “
Laminar Heat Transfer Enhancement Utilizing Nanofluids in a Chaotic Flow
,”
ASME J. Heat Transfer
,
136
(
9
), p.
091704
.
9.
Chen
,
T.
,
Kim
,
J.
, and
Cho
,
H.
,
2014
, “
Theoretical Analysis of the Thermal Performance of a Plate Heat Exchanger at Various Chevron Angles Using Lithium Bromide Solution With Nanofluid
,”
Int. J. Refrig.
,
48
, pp.
233
244
.
10.
Moghadassi
,
A.
,
Ghomi
,
E.
, and
Parvizian
,
F.
,
2015
, “
A Numerical Study of Water Based Al2O3 and Al2O3–Cu Hybrid Nanofluid Effect on Forced Convective Heat Transfer
,”
Int. J. Therm. Sci.
,
92
, pp.
50
57
.
11.
Pang
,
C.
,
Wu
,
W.
,
Sheng
,
W.
,
Zhang
,
H.
, and
Kang
,
Y. T.
,
2012
, “
Mass Transfer Enhancement by Binary Nanofluids (NH3/H2O+Ag Nanoparticles) for Bubble Absorption Process
,”
Int. J. Refrig.
,
35
(
8
), pp.
2240
2247
.
12.
Khan
,
W. A.
, and
Gorla
,
R. S. R.
,
2012
, “
Heat and Mass Transfer in Power-Law Nanofluids Over a Nonisothermal Stretching Wall With Convective Boundary Condition
,”
ASME J. Heat Transfer
,
134
(
11
), p.
112001
.
13.
Khanolkar
,
R. U.
, and
Suresh
,
A. K.
,
2015
, “
Enhanced Mass Transfer Rates in Nanofluids: Experiments and Modeling
,”
ASME J. Heat Transfer
,
137
(
9
), p.
091008
.
14.
Kang
,
Y. T.
,
Kim
,
H. J.
, and
Lee
,
K. I.
,
2008
, “
Heat and Mass Transfer Enhancement of Binary Nanofluids for H2O/LiBr Falling Film Absorption Process
,”
Int. J. Refrig.
,
31
(
5
), pp.
850
856
.
15.
Kim
,
H.
,
Jeong
,
J.
, and
Kang
,
Y. T.
,
2012
, “
Heat and Mass Transfer Enhancement for Falling Film Absorption Process by SiO2 Binary Nanofluids
,”
Int. J. Refrig.
,
35
(
3
), pp.
645
651
.
16.
Feng
,
X.
, and
Johnson
,
D. W.
,
2012
, “
Mass Transfer in SiO2 Nanofluids: A Case Against Purported Nanoparticle Convection Effects
,”
Int. J. Heat Mass Transfer
,
55
(
13–14
), pp.
3447
3453
.
17.
Chen
,
W. K.
, and
Xia
,
W. H.
,
1987
, “
The Physical Parameters Expression of H2O/LiBr Solution
,”
Refrigeration
,
6
(3), pp.
15
20
(in Chinese).
18.
Lee
,
J. K.
,
Koo
,
J.
,
Hong
,
H.
, and
Kang
,
Y. T.
,
2010
, “
The Effects of Nanoparticles on Absorption Heat and Mass Transfer Performance in NH3/H2O Binary Nanofluids
,”
Int. J. Refrig.
,
33
(
2
), pp.
269
275
.
19.
Nagy
,
E.
,
Feczkó
,
T.
, and
Koroknai
,
B.
,
2007
, “
Enhancement of Oxygen Mass Transfer Rate in the Presence of Nanosized Particles
,”
Chem. Eng. Sci.
,
62
(
24
), pp.
7391
7398
.
You do not currently have access to this content.