Experimental Analysis of an Automotive Air Conditioning System With Two-Phase Flow Measurements



Similar documents
DESIGN OF AIR CONDITIONING SYSTEM IN AUTOMOBILE

Research on the Air Conditioning Water Heater System

Measurement And Application of Performance Characteristics Of A Free Piston Stirling Cooler

New Trends in the Field of Automobile Air Conditioning

Experimental Evaluation Of The Frost Formation

A Comparison of an R22 and an R410A Air Conditioner Operating at High Ambient Temperatures

Testing methods applicable to refrigeration components and systems

Experimental Analysis of a Variable Capacity Heat Pump System Focusing on the Compressor and Inverter Loss Behavior

Impacts of Refrigerant Charge on Air Conditioner and Heat Pump Performance

MAXIMUM HEAT LOAD TEMPERATURE TESTING ( Differential Temperature Testing )

Scroll Compressor Development for Air-Source Heat Pump Water Heater Applications

Theoretical Study on Separate Sensible and Latent Cooling Air-Conditioning System

Refrigeration Basics 101. By: Eric Nelson

A/C refrigerant system, overview

ASHRAE Boston Chapter Meeting Designing AC Refrigeration Systems Lessons Learned February 11, 2014

Air Conditioning 101. STN Presentation AC101

Analytical Study on the Performance Characteristics of a Liquid Injection Refrigeration Cycle.

How To Design A Refrigeration System

TEST REPORT #31. System Drop-in Test of Refrigerant R-32 in Split Air-conditioning System

ON-VEHICLE INSPECTION

TEST REPORT #44. System Drop-in Tests of Refrigerant R-32 in Single Packaged Vertical Heat Pump (SPVH)

Automobile Air Conditioning Primer

Why and How we Use Capacity Control

THEORETICAL AND EXPERIMENTAL EVALUATION OF AUTOMOBILE AIR-CONDITIONING SYSTEM USING R134A

Characteristics of Evaporators

High Pressure Ammonia Systems New Opportunities

How Ground/Water Source Heat Pumps Work

Refrigeration and Airconditioning Prof. M. Ramgopal Department of Mechanical Engineering Indian Institute of Technology, Kharagpur

Development and testing of a multi-type air conditioner without using AC inverters

Any Service Technician Can Fix It A Good Service Technician Can Figure Out What s Wrong With It.

SECTION 5 COMMERCIAL REFRIGERATION UNIT 22 CONDENSERS

MODELLING AND OPTIMIZATION OF DIRECT EXPANSION AIR CONDITIONING SYSTEM FOR COMMERCIAL BUILDING ENERGY SAVING

Troubleshooting an Air Conditioning system. R D Holder Eng. Roger D Holder MSME

Geothermal Alliance of Illinois. TXVs Theory and Fundamentals John Haug Senior Application Engineer Emerson Climate Technologies - Flow Controls

Refrigerant Changeover Guidelines R-22 to R-407C. Leading the Industry with Environmentally Responsible Refrigerant Solutions

The Development of a Frost-Less Heat Pump

Zhao et al. 2.2 Experimental Results in Winter Season The analysis given below was based on the data collected from Nov to Mar. 15, 2004.

Yijun Gao, Wei Wu, Zongwei Han, Xianting Li *

Low GWP Replacements for R404A in Commercial Refrigeration Applications

P. A. Hilton Ltd REFRIGERATION & AIR CONDITIONING VAPOUR COMPRESSION HEAT PUMPS VENTILATION VOCATIONAL

Optimal operation of simple refrigeration cycles Part I: Degrees of freedom and optimality of sub-cooling

Engineering Recommendation on: Accumulators Revised Issued January 10, 1979 Page 1 of 7

UNIT 2 REFRIGERATION CYCLE

Variable Capacity Compressors, a new dimension for refrigeration engineers to explore

Troubleshooting HVAC/R systems using refrigerant superheat and subcooling

Refrigerant Charge and Ambient Temperature Effects on the Refrigeration Cycle of a Small Capacity Food Freezer

Waste Heat Recovery through Air Conditioning System

Study on Performance Evaluation of a Split Air Conditioning System Under the Actual Conditions

HVAC-02, Air Conditioning Troubleshooting and Repair

Refrigerant Changeover Guidelines R-22 to R-407C. Leading the Industry with Environmentally Responsible Refrigerant Solutions

Glossary of Heating, Ventilation and Air Conditioning Terms

AUTOMOTIVE AIR CONDITIONING SYSTEM.

Table V. Troubleshooting Checklist for Refrigeration Systems. Air or non-condensable gas in system. Inlet water warm.

A car air-conditioning system based on an absorption refrigeration cycle using energy from exhaust gas of an internal combustion engine

Energy Analysis and Comparison of Advanced Vapour Compression Heat Pump Arrangements

SERVICE GUIDELINES HCFC R22 TO HFC REFRIGERANT BLENDS

Lesson. 11 Vapour Compression Refrigeration Systems: Performance Aspects And Cycle Modifications. Version 1 ME, IIT Kharagpur 1

42-Volt Electric Air Conditioning System Commissioning and Control For a Class-8 Tractor

Accumulators and Receivers

Performance of R-438A in R-22 Refrigeration and Air Conditioning Systems

PERFORMANCE ANALYSIS OF VAPOUR COMPRESSION REFRIGERATION SYSTEM WITH R404A, R407C AND R410A

Chapter 3.4: HVAC & Refrigeration System

Rating Water-Source Heat Pumps Using ARI Standard 320 and ISO Standard

Design of a Heat Pump Assisted Solar Thermal System

Air-sourced 90 Hot Water Supplying Heat Pump "HEM-90A"

FEASIBILITY OF A BRAYTON CYCLE AUTOMOTIVE AIR CONDITIONING SYSTEM

Performance Evaluation of a Heat Pump System for Simultaneous Heating and Cooling

Environmental and Safety Impacts of HFC Emission Reduction Options for Air Conditioning and Heat Pump Systems

ROOFTOP - HEAT PUMP UNIT. This document applies when installing into an air handler or as part of an air handling system.

AIR CONDITIONING LIFE EXTENDER ACX10 FIELD INSTALLATION AND PERFORMANCE EVALUATION

ENGINE COOLING SYSTEM

Performance Test of Solar Assisted Solid Desiccant Dryer

AIR CONDITION & REFRIGERATION INSTALLATION & REPAIR

How To Know If A Refrigeration System Is Efficient

ECOCIAT. Domestic hot water heat recovery unit

Technical data. Danfoss DHP-A

Increasing the evaporation temperature with the help of an internal heat exchanger

Optimization of Water - Cooled Chiller Cooling Tower Combinations

18th International Congress of Mechanical Engineering

How To Calculate The Performance Of A Refrigerator And Heat Pump

Development of Air-to-Water Heat Pump for Home Air conditioning/hot Water Supply Combination System with Chilled/Hot Water in European Markets

How To Clean Water From An Ammonia Refrigeration System

AIR REVERSING R744 AIR CONDITIONING SYSTEM

Performance Improvement of an Air Conditioning System Using Matrix Heat Exchanger

Heating, Ventilation, Air Conditioning and Refrigeration (HVACR)

Thermodynamics - Example Problems Problems and Solutions

Performance of R-438A in R-22 Refrigeration and Air Conditioning Systems

DEVELOPMENT OF A TWIN SCREW EXPRESSOR AS A THROTTLE VALVE REPLACEMENT FOR WATER-COOLED CHILLERS

Ground-breaking conversion of critical Data Room WaterChiller from R22 to R422D / MO29

In Situ Performance Evaluation of Industrial Reciprocating Air Compressors

International Telecommunication Union SERIES L: CONSTRUCTION, INSTALLATION AND PROTECTION OF TELECOMMUNICATION CABLES IN PUBLIC NETWORKS

It will be available soon as an 8.5 X 11 paperback. For easier navigation through the e book, use the table of contents.

Federal Wage System Job Grading Standards for Air Conditioning Equipment Operating, Table of Contents

MAINTENANCE INSTRUCTIONS. Thermia Robust heat pump

Benefits of Cold Aisle Containment During Cooling Failure

Test Report issued under the responsibility of:

CLIMATE CONTROL SYSTEM OPERATION, DIAGNOSIS, AND REPAIR

Reflux Gas Densification Technology An Innovative Dry Compression Process

CHAPTER 7 THE SECOND LAW OF THERMODYNAMICS. Blank

Transcription:

Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering Experimental Analysis of an Automotive Air Conditioning System With Two-Phase Flow Measurements Shu Jun Wang Carleton University Jun Jie Gu Carleton University Follow this and additional works at: http://docs.lib.purdue.edu/iracc Wang, Shu Jun and Gu, Jun Jie, "Experimental Analysis of an Automotive Air Conditioning System With Two-Phase Flow Measurements" (). International Refrigeration and Air Conditioning Conference. Paper 7. http://docs.lib.purdue.edu/iracc/7 This document has been made available through Purdue e-pubs, a service of the Purdue University Libraries. Please contact epubs@purdue.edu for additional information. Complete proceedings may be acquired in print and on CD-ROM directly from the Ray W. Herrick Laboratories at https://engineering.purdue.edu/ Herrick/Events/orderlit.html

EXPERIMENTAL ANALYSIS OF AN AUTOMOTIVE AIR CONDITIONING SYSTEM WITH TWO-PHASE FLOW MEASUREMENTS Shujun WANG and Junjie GU* Carleton University, Department of Mechanical and Aerospace Engineering Colonel By Drive, Ottawa, Ontario, Canada KS B *Author for Correspondence E-Mail: jgu@mae.carleton.ca Tel: () ext. 89 Fax: () 7 R, Page ABSTRACT A fully equipped automotive air-conditioning test system consists of main components: a compressor, a condenser, an orifice tube, an evaporator and an accumulator. R-a is used as refrigerant. The coefficient of performance, evaporator cooling capacity, compressor power consumption, total mass flow rate, vapor mass flow rate, liquid mass flow rate and oil in circulation, pressures and temperatures of refrigerant at each component (inlet and outlet) are measured and analyzed with the variation of the temperatures at evaporator and condenser and refrigerant charge. The systematic experimental results obtained from this real-size test system depict the relations of the abovementioned parameters in an automotive air conditioning system, which constitute a useful source for automotive air conditioning systems design and analysis. The two-phase flow measurements realized in this work provide an extremely important tool to diagnose system performance. Keywords: Automotive; Air conditioning; Two-phase flow; Performance; R-a; Experimental. INTRODUCTION Compared with other air conditioning (A/C) systems, automotive A/C systems have some significant characteristics. Automotive A/C systems present challenges not normally encountered in stationary A/C systems, such as those used in building A/C systems. For example, the A/C panel outlet airflow direction, volume, velocity and temperature must be adjustable over a wide range of climatic and driving conditions. The rotating speed of the compressor is usually directly related to the vehicle speed, which changes dramatically. The sun load through the windshield and side windows is much greater than that through buildings. The A/C system must be capable of cooling down a hot vehicle quickly and it must be reasonably quiet. All these aspects make the analysis of automotive A/C system more complicated than that of a stationary A/C system (Bhatti, 999; Kargilis, ). During the last two decades automotive A/C systems have experienced worldwide significant advances introduced by industry and research institutes. Experimental analysis is an effective method in analyzing automotive A/C system as well as the method of simulation (Joudi et al., ). Ratts and Brown () used experimental method to analyze automotive A/C system COP, focusing on the relationships between the COP and the compressor revolution and vehicle speed. Kiatsiriroat and Euakit (997) analyzed the COP of an automotive A/C system with R/R/Ra refrigerant mixture. Jabardo et al. () analyzed an automotive A/C system with a variable capacity compressor. Schwarz et al. () studied the flow inside an accumulator of an automotive air-conditioning system, which is critical to system COP, lubrication and safety of the compressor. Gu et al. () experimentally determined the two-phase flow inside an evaporator and noticed its effect on heat transfer performance of an evaporator. In this work, two-phase flow is measured using a custom-built vapor-liquid separation device and two Coriolis mass flow meters. Data analyses will quantitatively determine the two-phase state at each stage of the International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page system, e.g., refrigerant quality, two-phase flowrate etc, which are closely related to the performance of an automotive A/C system, but a lack of knowledge on this aspect exists.. DESCRIPTION OF EXPERIMENTAL SETUP There are two main types of automotive air-conditioners: one is a Thermal Expansion Valve (TXV) system which regulates rate of refrigerant flow into evaporator as governed by evaporator outlet pipe temperatures sensed by the sensing bulb, and the other is Clutch Cycling Orifice Tube (CCOT) system which controls evaporator temperature by turning the compressor on and off with a clutch cycling switch. A CCOT automotive A/C system includes a compressor, a condenser, an expansion device, an evaporator and an accumulator as shown in Figure. The schematic illustration of the experimental setup used in this experimental investigation is shown in Figure. It is a closed refrigeration loop charged with R-a (,,,-Tetrafluoethane) as working fluid and built to operate as a CCOT system. The main components are a compressor stand, a water-cooled condenser stand, an evaporator stand, two mass flow meters, an accumulator stand, a separator, and various process instruments. These stands enable an easy service access and changing system components. Expansion Evaporator Condenser Accumulator Compressor Figure. Vapor compression refrigeration cycle. Expansion Valve Total Mass FlowWater Cooled Meter Condenser Evaporato r Separator Compressor Accumulator Vapor Flow Figure. Experimental Setup International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page The compressor stand consists of a typical automotive swashplate type compressor driven by a HP variable-speed electric motor. A one-to-one pulley ratio was used to connect the electric motor to the compressor. The watercooled condenser stand consists of a helical coil of half-inch diameter aluminum pipe as condenser, a water bath, a water pump, a valve, and temperature controller. A mass flow meter was installed at the condenser outlet to measure the total mass flow rate of the refrigerant lubricant oil flow. The compressor is lubricated using Polyakylene-glycol (PAG). A sight glass tube is placed at the outlet of the flow meter to ensure that the flow meter chamber was filled with sub-cooled liquid refrigerant PAG oil single phase. An orifice tube is used as expansion device to change the higher pressure sub-cooled liquid refrigerant into lower pressure and temperature vapor-liquid mixture. The evaporator stand consists of an automotive evaporator, an electric heater, an air-blower to circulate the air inside the duct to simulate environmental conditions, and a temperature controller to keep the air at a certain temperature. The evaporator stand was well insulated so that the power input from heater is considered as the same as cooling capacity. The accumulator stand consists of an accumulator, an electric heater to simulate environment temperature, a temperature controller to keep the air at a certain temperature, and an insulated box to contain these components. A sight glass tube is placed at the outlet of the accumulator for observing the refrigerant PAG oil flow (two-phase). An aluminum pipe,. m long and mm in diameter, is placed following the sight glass tube, which allows the annular flow to slow down and become separated. The flow separates completely in the liquid/vapor separator. The refrigerant vapor flows through the mass flow meter so that the vapor flow rate was measured. A sight glass tube at the outlet of mass flow meter ensures that the flow meter chamber was filled with vapor refrigerant only. Then, the vapor refrigerant and liquid refrigerant PAG oil are mixed again at the inlet of compressor. To conduct data acquisition processing and control the operation of A/C system, a control and measurement system was set up, which includes thermocouples, sensors, transducers, data acquisition devices, signal conditioning extensions for instrumentation devices and a computer with LabVIEW software. By this system, the temperature and pressure at each component, mass flow rate, power, compressor speed are measured as analog signals, then the analog signals are converted to digital signals and sent to the computer to display on LabVIEW windows directly or be processed to calculate other parameters. All the data can be recorded to Excel file in the interval up to once one second. This system also can control the operation of the air conditioning system, such as turning the power on or off, setting the temperature of evaporator and condenser, adjusting the compressor speed. Meters are placed at the inlet and outlet of the compressor to show the gauge pressure at these two locations.. EXPERIMENTAL RESULTS AND DISCUSSIONS The experiments were carried out at different refrigerant charges, evaporator air-side temperatures, and condenser water temperatures. Several parameters were measured, charted and discussed in following paragraphs, such as the cooling capacity, the compressor power consumption, total flow rate, vapor flow rate, the quality (R-a and PAG) at the inlet of compressor, the pressure at outlet of compressor, and the pressure at the outlet of evaporator.. Effects of Refrigerant Charge In the automotive A/C system, loss of refrigerant through seals, elastomeric hoses, and fittings causes a charge reduction over time. The practical solution is overcharging the systems, and let the accumulators contain the spare refrigerant. It is time to recharge the system when enough refrigerant is lost so that A/C performance is degraded. The effects of refrigerant charge on system operation are shown in Figures -. During this experiment, the evaporator air-side temperature is at o C, condenser water temperature o C and the compressor speed is rpm. Figure shows that the total mass flow rate (R-a and PAG oil) increases slightly, vapor flow rate stays at a constant value or decreases slightly and the quality at accumulator outlet decreases slightly with the increasing of refrigerant charge. The quality is the ratio of vapor flow rate to total mass flow rate, which is believed to have a major influence on the compressor. The quality is controlled by the accumulator, in which vapor R-a, liquid R- a and PAG oil separate and PAG oil is metered back to the compressor. Since the PAG oil and liquid R-a are miscible there will always be liquid R-a metered with the PAG oil. The high speed vapor R-a flow generally also causes some liquid (R-a and PAG oil) carryover. When the refrigerant charge increases, more refrigerant is stored in accumulator, and more liquid refrigerant and PAG oil are returned to the compressor. The mechanism of oil return will be discussed in a separate work. Figure shows that cooling load and compressor power input International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page increase slightly, but COP decreases slightly with the increasing of refrigerant charge. COP is the ratio of cooling load to compressor power input. Mass flow rate [kg/h] 9 total flow vapor flow Quality.8.......8....8 Figure. The effects of refrigerant charge on: total mass flow rate and vapor flow rate; quality.8 Cooling load & power input [kw] cooling load power input COP..9.....8....8 Figure. The effects of refrigerant charge on: cooling load and compressor power input; COP pressure [kpa] 9 compressor outlet compressor inlet....8 Compression ratio 7....8 Figure. The effects of refrigerant charge on: compressor outlet pressure and inlet pressure; compression ratio International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page The decrease of quality, as shown in Figure, means relatively less vapor is compressed in the compressor, which causes the decrease of COP. Figure shows the compressor outlet pressure and inlet pressure increase slightly with the increase of refrigerant charge, but the compression ratio decreases with the increase of refrigerant charge. The compression ratio is the ratio of outlet pressure to inlet pressure. The compression ratio directly affects the volumetric efficiency of the compressor. The volumetric efficiency of the compressor is the ratio of the actual delivered gas volume to the swept volume of the cylinder. When the compression ratio increases, the actual delivered gas volume decreases. Therefore, the volumetric efficiency decreases with the increasing of the compression ratio, because of the high fraction residual of gas. In general, all the parameters, such as quality, cooling load and COP, change slightly or keep constant, when refrigerant charge is between. kg and.8 kg for this specific system. When refrigerant charge is less than. kg or more than.8 kg, COP decreases apparently. Jabardo et al. () obtained the similar results in their experiments. The results of this research showed one of the important functions of the accumulator, which is to store excess refrigerant (Lee et al. ). However, that is not included in this work. When refrigerant charge varies within. kg to.8 kg, the accumulator performs well to hold excess refrigerant with no or slight effect on the system. A refrigerant charge lower than. kg cannot meet the minimum demand of the system; the condenser cannot not get enough refrigerant vapor; the system runs at a reduced capacity. A refrigerant charge more than.8 kg causes excess refrigerant that is more than accumulator can hold; large amount of liquid returning back to the compressor will affect the vapor compression, so the COP decreases.. Effect of Air-side Temperature to Evaporator The effects of evaporator air-side temperature are shown in Figures -8. During these experiments, the charge of R- a is.8 kg, condenser water temperature at C and the compressor speed at rpm. When the evaporator air-side temperature increases the temperature difference between air and refrigerant in the evaporator increases, which improves the heat exchange efficiency of the evaporator. Figure shows that both total mass flow rate (R- a and PAG oil) and refrigerant vapor flow rate at compressor inlet increase with increasing evaporator air-side temperature. However, the quality decreases sharply to a point then increases slightly. When the velocity of vapor is very low, it can only carry a limited amount of liquid R-a and PAG oil, but when the velocity approach a certain value, liquid R-a and PAG oil could flow at high velocity because of the interfacial shear force (Huang and Gu, 989), which dominates the liquid transport and the total quality. From thermodynamics of vapor compression cycles, the temperature differences between hot and cold reservoir are critical to COP of the cycles. Figure 7 shows that cooling load, compressor power input and COP all increase with increasing evaporator air-side temperature. Figure 8 depicts the compressor outlet pressure and inlet pressure increase with the increase of evaporator air-side temperature, but the compression ratio decreases with the increase of evaporator air-side temperature. The compressor outlet pressure is mainly determined by the ambient temperature of condenser, increasing with increasing ambient temperature of condenser. The compressor inlet pressure is mainly determined by the 8 Mass flow rate [kg/h] 9 total flow vapor flow Quality.8... Figure. The effects of evaporator air-side temperature on: total mass flow and vapor flow rate; quality International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page. Cooling load & power input [kw] cooling load power input COP.. Figure 7. The effects of evaporator air-side temperature on: cooling load and compressor power input; COP 8 8 Pressure [kpa] 9 compressor outlet compressor inlet Compression ratio Figure 8. The effects of evaporator air-side temperature on: compressor outlet pressure and inlet pressure; compression ratio ambient temperature of the evaporator, increasing with increasing ambient temperature of the evaporator. In this case, condenser water temperature is constant at C, and the evaporator air-side temperature increases, so the compression ratio decreases.. Effect of Condenser Water Temperature The effects of condenser water temperature are shown in Figures -8. During this experiment, the charged R-a is.8 kg, evaporator air-side temperature is at o C, and the compressor speed is rpm. When the condenser water temperature increases the temperature difference of water and refrigerant decreases, which weakens the heat exchange efficiency of the condenser. Figure 9 shows that the total mass flow rate (R-a and PAG oil) and vapor flow rate at the compressor inlet increase with increasing condenser water temperature. However, the quality decreases. Figure shows that cooling load decreases, compressor power input increases, and COP decreases with increasing condenser water temperature. Figure shows the compressor outlet pressure increases sharply and inlet pressure increases slightly with increasing condenser water temperature, because the compressor outlet pressure is mainly determined by condenser ambient temperature that increases from o C to o C, and the compressor inlet pressure is determined by evaporator ambient temperature that is constant at o C in this experiment. The above factors result in an increasing of the compression ratio with the increasing of condenser water temperature, which causes a decrease of the volumetric efficiency of compressor. International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page 7 Mass flow rate [kg/h] 8 total flow vapor flow Quality.8... Figure 9. The effects of condenser temperature on: total mass flow rate and vapor flow rate; quality Cooling load & power input [kw] cooling load power input COP... Figure. The effects of condenser temperature on: cooling load and compressor power input; COP 8 Pressure [kpa] compressor outlet compressor inlet Compression ratio Comdenser temperature [ o C] Figure. The effects of condenser temperature on: compressor outlet and inlet pressure; compression ratio. Experimental Uncertainty The uncertainty in the temperature data collected by the data acquisition system was estimated to be ±. o C; Pressure sensors, ± kpa; Coriolis mass flow meters, ±. kg/h; Refrigerant charge, ±. kg. The thermostats used could control the desired constant temperatures within ± o C. International Refrigeration and Air Conditioning Conference at Purdue, July -,

R, Page 8. CONCLUSIONS With the experimental set-up, some results have been obtained with two-phase flow measurements, which revealed some unknown aspects of the automotive air conditioning systems. The following remarks summarize some key performance characteristics of an automotive air-conditioning system with an accumulator. These results could be used to guide accumulator sizing and optimizing in future work.. The total mass flow rate of circulation in an automotive air conditioning system increases with the increase of refrigerant charge, evaporator air-side temperature and condenser water temperature. The total quality at the accumulator outlet increases with the increase of evaporator air-side temperature, and decreases with the increase of refrigerant charge and condenser water temperature.. The cooling capacity does not change with the variation of refrigerant charge, but increases with the increase of evaporator air-side temperature, and decreases with the increase of condenser water temperature. Coefficient of performance of the system decreases with the increase of refrigerant charge and condenser water temperature, increases with the increase of evaporator air-side temperature.. The compression ratio decreases with the increase of refrigerant charge and evaporator air-side temperature, increases with the increase of condenser water temperature. The change of compressor volumetric efficient is opposite to that of compression ratio. REFERENCES Bhatti, M. S., 999, Riding in Comfort, Part II: Evolution of Automotive Air Conditioning, ASHRAE Journal, V., N.9: -. Kargilis, A.,, Design and Development of Automotive Air Conditioning Systems, ALKAR Engineering Company: p. - Joudi, K. A., Mohammed, A. S. K., Aljanabi, M. K.,, Experimental and Computer Performance Study of an Automotive Air conditioning System with Alternative Refrigerants, Energy Conversion and Management : p. 99-97. Ratts, E. B., Brown, J. S.,, An Experimental Analysis of Cycling in an Automotive Air Conditioning System, Applied Thermal Engineering : p.9-8. Kiatsiriroat, T., Euakit, T., 997, Performance Analyses of an Automotive Air Conditioning System with R/R/RA Refrigerant, Applied Thermal Engineering, vol. 7, no. : p. 8-97. Saiz Jabardo, J. M., Gonzales Mamani, Ianella, W., M.R.,, Modeling and Experimental Evaluation of an Automotive Air Conditioning System with a Variable Capacity compressor, Int. J. Refrig., vol., no. 8: p. 7-7. Schwarz, T., Galluzzi, M., Richardson, D., Radermacher, R., Dickson, T., McGregor, I.,, Model to investigate the performance of accumulators in vapor compression systems, Proc.9th Int. Refrigeration and Air Conditioning Conference at Purdue. Gu, J., Kawaji, M., Smith-Pollard, T., Cotton, J.,, Multi-Channel Ra Two-Phase Flow Measurement Technique for Automobile Air-Conditioning System, Proc. th ASME/FED & JSME Fluids Engineering Division Summer Meeting, Lee, S., Kim, H., Huh, J.,, Quantitative analysis of flow inside the accumulator of a rotary compressor, Int. J. Refrig., vol., no. : p. -7. Huang, H., Gu, J., 989, Flooding in vertical tubes, Proc. Journal of Chemical Industry and Engineering (China), : p. 8-97. ACKNOWLEDGEMENTS We would like to thank Jennifer Dexter, Ian McGregor, and Dr. Tim Dickson of Halla Climate Control Canada for their advice and encouragement, and also Halla Climate Control Canada and Materials and Manufacturing Ontario for their support of this work. International Refrigeration and Air Conditioning Conference at Purdue, July -,