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Technical Paper

Return on Investment Analysis for Improved Energy Efficiency in Passenger Cars

2023-01-23
2023-01-5005
Energy efficiency investment is commonly thought to be poor for business. The analysis presented here uses current cost data to demonstrate that there is plenty of room to improve the energy efficiency of cars from the current 25.7 miles per gallon (mpg) or 20%. Investing in the optimum yields an excellent return of over 22% on the owner’s investment in the improved efficiency. A model for the initial cost of a car was developed to accurately predict (within 10% for the majority of over 90% of the data for gasoline and hybrid cars) the initial cost as a function of power output and fuel efficiency. Minimizing total life cycle costs produces an optimum fuel efficiency ranging from 62 mpg to 82 mpg (48% to 64%) as gasoline prices vary from $5 to $10 per gallon, respectively. The higher efficiencies result in fuel savings with corresponding reductions in greenhouse gas emissions.
Technical Paper

Cycle-Model Assessment of Working Fluids for a Low-Pressure CO2 Climate Control System

2000-03-06
2000-01-0578
A low-pressure CO2-based climate-control system has the environmental benefits of CO2 refrigerant but avoids the extremely high pressures of the transcritical CO2 cycle. In the new cycle, a liquid “cofluid” is circulated in tandem with the CO2, with absorption and desorption of CO2 from solution replacing condensation/gas cooling and evaporation of pure CO2. This work compares the theoretical performance of the cycle using two candidate cofluids: N-methyl-2-pyrrolidone and acetone. The optimal coefficient of performance (COP) and refrigeration capacity are discussed in terms of characteristics of the CO2-cofluid mixture. Thermodynamic functions are determined either from an activity coefficient model or using the Soave equation of state, with close agreement between the two approaches. Reductions in COP due to nonideal compressor and heat exchangers are also estimated.
Technical Paper

Thermodynamic and Cycle Models for a Low-Pressure CO2 Refrigeration Cycle

1999-03-01
1999-01-0869
Carbon dioxide (CO2)-based refrigeration systems have been proposed as environmentally benign alternatives to current automotive air conditioners. The CO2 vapor-compression system requires very high operating pressures and complicated control strategies. Recent experimental results indicate that operating pressures comparable to those of current automotive air conditioners can be attained by the inclusion of a secondary carrier fluid (a “co-fluid”), with solution and desolution of the CO2 from the co-fluid substituting for condensation and vaporization of pure CO2. In this work, modeling tools have been developed to optimize the CO2/co-fluid cycle, including the selection of a co-fluid, the CO2/co-fluid ratio (the “loading”), and the operating conditions.
Technical Paper

Reduced Pressure Carbon Dioxide Cycle for Vehicle Climate Control

1999-03-01
1999-01-0868
Environmental concerns have spawned renewed interest in naturally occurring refrigerants such as carbon dioxide. CO2 has attractive features such as high enthalpy of evaporation and low cost compared to halocarbons. However, the vapor pressure of CO2 is high at temperatures normally encountered in refrigeration and air conditioning systems when compared to traditional and alternative refrigerants such as CFC-12 and HFC-134a. Major research efforts are underway to investigate the transcritical CO2 cycle, in which a gas cooler instead of a condenser accomplishes heat rejection to ambient, since carbon dioxide under these conditions is above the critical point. The vapor pressure in the gas cooler may exceed 120 bar (1,740 lb/in2). In this paper a reduced pressure carbon dioxide system is reported (Ref 1). Two companion papers will address properties of working fluids (Ref 2) and thermodynamic and cycle models (Ref 3) for the low pressure carbon dioxide cycle.
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