DocumentCode :
2636104
Title :
Prediction of Refrigerant Mass Flow Rates through Capillary Tubes Using Adaptive Neuro-fuzzy Inference System
Author :
Xie, Hui ; Ma, Fei ; Fan, Huifang ; Di, Yanqiang
Author_Institution :
Sch. of Civil & Environ. Eng., Univ. of Sci. & Technol. Beijing, Beijing, China
Volume :
4
fYear :
2009
fDate :
March 31 2009-April 2 2009
Firstpage :
769
Lastpage :
774
Abstract :
A capillary tube is a common expansion device widely used in small-scale refrigeration and air conditioning systems. Generalized correlation method for refrigerant flow rate through adiabatic capillary tubes is developed by combining dimensional analysis and adaptive neuron-fuzzy inference system (ANFIS).Dimensional analysis is utilized to provide the generalized dimensionless parameters and reduce the number of input parameters, while a five-layer feedforward ANFIS is served as a universal approximator of the nonlinear multi-input and single output function. For ANFIS training and test,measured data for R134a, R22, R290, R407C, R410A,and R600a in the open literature are employed. The most suitable membership function and number of membership functions are found as Gauss and two,respectively, for the ANFIS correlation. The statistical data can be considered as very promising. This paper shows the appropriateness of ANFIS for the prediction of refrigerant mass flow rates through capillary tubes.
Keywords :
capillarity; mechanical engineering computing; pipe flow; refrigerants; adaptive neuro-fuzzy inference system; capillary tubes; dimensional analysis; membership function; refrigerant mass flow rates; Adaptive systems; Computer science; Control systems; Correlation; Gaussian processes; Pressure control; Refrigerants; Refrigeration; Refrigerators; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Science and Information Engineering, 2009 WRI World Congress on
Conference_Location :
Los Angeles, CA
Print_ISBN :
978-0-7695-3507-4
Type :
conf
DOI :
10.1109/CSIE.2009.543
Filename :
5171100
Link To Document :
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