Comparative analysis of refrigerant performance between LPG and R134a under subtropical climate

被引:1
作者
Ahmad, Rakibul Hossain [1 ]
Bhuiyan, Arafat A. [1 ]
Xu, Fei [2 ]
Sujon, Abu Shaid [1 ]
Karim, Md. Rezwanul [1 ]
Moin, Emran Hossain [1 ]
Sadrul Islam, A. K. M. [1 ]
机构
[1] IUT, Dept Mech & Prod Engn, Dhaka 1704, Bangladesh
[2] Ansys Inc, Elect Business Unit, Austin, TX 78746 USA
关键词
Alternate refrigerants; Liquefied petroleum gas; R134a; Refrigerator performance; Subtropical climate; LIQUEFIED PETROLEUM GAS; ENERGY; REPLACEMENTS; HYDROGEN; SYSTEM; FLOW; CFC;
D O I
10.1007/s10973-019-09126-3
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this investigation, a series of experiments were conducted to explore the effects of liquefied petroleum gas (LPG) mixture of 60% propane and 40% commercial butane as a drop-in auxiliary for refrigerant R134a in a household refrigerator under subtropical conditions in Bangladesh. Experiments were conducted for both continuous and cycling operating conditions with fixed surrounding air temperature of T-amb = 33 +/- 1 degrees C. Three different sets of varying tube length with variable charging level were considered. The experimental outcome determined - 17.5 degrees C as the optimum freezer air temperature with the use of 65 gm LPG and 4 m capillary tube length. A comparative analysis was conducted for R134a against LPG with charge amount. After replacing refrigerant-R134a with LPG, reduction in pull-down time, discharge temperature, and mass flow rate were found about 2.4%, 17.8%, and 20%, respectively. It can be concluded that LPG is a promising substitute to refrigerant R134a in small-scale domestic refrigerators.
引用
收藏
页码:2925 / 2935
页数:11
相关论文
共 50 条
[22]   Thermal conductivity and thermal diffusivity of the R134a refrigerant in the liquid state [J].
Baginsky, A. V. ;
Shipitsyna, A. S. .
THERMOPHYSICS AND AEROMECHANICS, 2009, 16 (02) :267-273
[23]   Thermal conductivity and thermal diffusivity of the R134a refrigerant in the liquid state [J].
A. V. Baginsky ;
A. S. Shipitsyna .
Thermophysics and Aeromechanics, 2009, 16 :267-273
[24]   An analysis of the performance of an ejector refrigeration cycle working with R134a [J].
Memet, F. ;
Preda, A. .
MODERN TECHNOLOGIES IN INDUSTRIAL ENGINEERING (MODTECH2015), 2015, 95
[25]   Artificial neural network approach for irreversibility performance analysis of domestic refrigerator by utilizing LPG with TiO2-lubricant as replacement of R134a [J].
Gill, Jatinder ;
Singh, Jagdev ;
Ohunakin, Olayinka S. ;
Adelekan, Damola S. .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2018, 89 :159-176
[26]   EXPERIMENTAL ANALYSIS OF VAPOUR COMPRESSION REFRIGERATION SYSTEM USING NANO LUBRICANT WITH REFRIGERANT R134a [J].
SHEWALE, Vinod C. ;
KAPSE, Arvind A. ;
SONAWANE, Vijay R. .
Thermal Science, 2024, 28 (05) :3687-3697
[27]   EXPERIMENTAL ANALYSIS OF VAPOUR COMPRESSION REFRIGERATION SYSTEM USING NANO LUBRICANT WITH REFRIGERANT R134a [J].
Shewale, Vinod C. ;
Kapse, Arvind A. ;
Sonawane, Vijay R. .
THERMAL SCIENCE, 2024, 28 (5A) :3687-3697
[28]   Comparative Analysis of Heat Pump System with IHX Using R1234yf and R134a [J].
Santa, Robert .
PERIODICA POLYTECHNICA-MECHANICAL ENGINEERING, 2021, 65 (04) :363-373
[29]   Numerical study of high-speed two-phase ejector performance with R134a refrigerant [J].
Baek, Sunghoon ;
Ko, Seungbin ;
Song, Simon ;
Ryu, Sungmin .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 126 :1071-1082
[30]   CFD analysis of operating condition effects on optimum nozzle exit position of a supersonic ejector using the refrigerant R134a [J].
Hadj, Ali ;
Boulenouar, Mohammed .
COMPTES RENDUS MECANIQUE, 2021, 349 (01) :189-202