Thermodynamic Analysis of the Performance of a Single-Effect Absorption Refrigeration System Using the Ammonia/Sodium Thiocyanate Couple

This paper aims at presenting analysis of the thermodynamic of the performance of an absorption refrigeration system of the single-effect ammonia/sodium thiocyanate couple. Since the generator is the starting point for the operation of system, one of the most important point to be addressed in this work is to determine the generator’s temperatures at which the system can accept the best quantities and qualities of energy. A mathematical model has been developed to study the performance of the system. Equations obtained from the thermodynamic properties of the ammonia/sodium thiocyanate couple were implemented in Matlab. The analysis consists of determining the effects of the generator’s temperature on the energy performance of the system. The computerized performance parameters are the coefficient of performance and the energy efficiency. Results indicate that the coefficient of performance increases with the temperature of the generator. Moreover, these remarks are not observed on the exergetic efficiency, because the latter increases until its maximum value 0.43, in order to decrease until its final value 0.35. In addition, the maximum value of the coefficient of performance tends towards 0.7 with increasing generator temperature. The system admits better operation when the generator temperatures are between 80 ̊C and 90 ̊C. The determination of this temperature interval by simulation can be use as a variable setting point in controlling the real system.


Introduction
As time moves, absorption refrigeration systems are becoming more and more attractive because of their compliance with environmental standards. In addition, the waste heat from these systems can be used to provide part of the domestic hot water needs, to heat buildings and to dry food products [1].
Research on the analysis of single-effect absorption refrigeration systems includes the work of Sun [2], which has shown that choosing either NH 3 -LiNO 3 or NH 3 -NaSCN over NH 3 -H 2 O improves the COP of a single-effect absorption refrigeration system, with a recuperative heat exchanger.
Talbi et al. [3] performed an exergy analysis of a single-effect absorption refrigeration machine, using the NH 3 -LiBr torque, to determine the exertion lost in each component, and thus the overall exertion lost by the system. The results reveal that the absorber has the highest energy loss of 15.498 kj/kg. This loss is caused by the temperature difference between the absorber and the environment. The second component of energy loss is the generator, with a loss of 7.0900 kj/kg. This loss is due to the temperature difference between the source and the refrigerant. The third component is the evaporator; a loss caused by the temperature difference between the evaporation temperature and the environment temperature. These three losses can respectively be reduced by increasing the surface area of the absorber, which is a consequence of the high cost of the absorber, by taking all measures to eliminate losses between the heat and the fluids involved. On the other hand, the irreversibilities produced at the level of the evaporator are those that cannot be demonstrated.
Zhu and Gu [4] conducted a performance analysis of the absorption system using NH 3 as refrigerant and NaSCN as absorbent. This study determined the COP and efficiency in refrigeration mode and then in heating mode. In addition, the lost exertion in each room and the total lost exertion for each operation (cooling and heating) were calculated. In the case of the refrigerating machine, the result is that the refrigeration COP evolves in the generator and in the evaporation and then decreases in the condenser and the absorber. On the other hand, these remarks are not similar to the cooling exergy efficiency.
Ceroso et al. [5] studied the recuperative heat exchanger of a single-effect absorption machine. This study had shown that the binary pairs NH 3 -LiNO 3 and NH 3 -NaSCN have the best temperature and viscosity profiles compared to the NH 3 -H 2 O pair.
Acuna et al. [6] carried out an energy analysis of a diffusion absorption machine. The aim of this study was to determine the best COP obtained from three solvents LiNO 3 ; NaCSN; H 2 O and using NH 3 as refrigerant, and H 2 as inert gas. This study shows that, the combinations formed from the solvents LiNO 3 and NaCSN have a better COP.
In 2014, Sunyoung and Boulama [7] developed a simulation platform, based on advanced exergy analysis, for a single-effect absorption system. The results obtained confirm that the generator and the absorber have more energy loss compared to the evaporator and the condenser. Open Journal of Energy Efficiency R. G. Ngock et al.
In 2016, Xu et al. [8] showed the influence of temperature on COP and mass flow rate in single-effect absorption refrigeration cycles.
An interesting experimental analysis to determine the COP of a single-effect absorption machine was performed by Cai et al. [9]. They concluded that, as the temperature of the generator increases with time, the pressure in the evaporator increases as time progresses.

Methodology and Data
In this part, we will write the equations for the operation of the system and then develop a simulation model, which will enable us to obtain the results from the described input data. In this view, we will start by describing the functioning of our system.

Configuration Modelling
Modelling is the mathematical representation of a part of the truth of a system.
In this part, we will apply, the laws of thermodynamics, for the analysis of the system. The main equations are the following:

Fluid Properties
Refrigerant NH 3 The relationship between pressure and temperature of ammonia in the two phases is [10]: The relationship between the enthalpy and temperature of the ammonia-saturated liquid is: The relationship between the enthalpy and temperature of ammonia-saturated steam is: The coefficients a, b and c are shown in Table 1 below. 15.7266 0.298628 The relationship between enthalpy, temperature, and mass concentration is given by [10]. The analysis of the performances by the first law is characterized by, the coefficient of performance: The performance, using the second law is characterized by, the exergy efficiency:

Hypotheses
The analysis is based on the following assumptions: • Heat losses of the system components are negligible.
• The solutions leaving the absorber and the generator are assumed to be saturated under the respective conditions of temperature and concentration. • The refrigerant in the condenser and evaporator is saturated.
• Ammonia vapour from the generator is assumed to be superheated.

Results and Discussion
A program has been developed using the Matlab software to solve the equations of this single-effect system, in order to analyse its performance. The thermodynamic properties of the NH 3 /NaSCN torque were also calculated from their polynomial equations. Figure 2 below, shows the evolution of the specific enthalpy. It can be seen that the specific enthalpy increases with the generator temperature. This is a partial result of the global model to be validated.

Validation of the Model
The results obtained with numerical simulation under matlab, were compared with those already obtained by Sun [2].
These results are validated by making a comparison in Table 2 below. A graphic comparison is made from the code, representing the COP of the current model, with reference COP (Figure 3).

Validation of the Model of the Single-Effect System
Given that the model is valid, input data are used to analyze the performance system.

System's Coefficient of Performance
We can notice that the COP initially increases with increase in generator's temperature, and tends to stabilize rather than continue to increase; and with a further increase in generator's temperature, it reaches a final value of 0.7 ( Figure 4). This

Single-Effect System Circulation Ratio
As indicated in Figure 5, the circulation factor is also a vital element in the study of the performance of a system. An increase in generator's temperature leads to a decrease in the circulation rate. Thus for a constant cooling load, the reduction in the heat rate of the generator leads to an initial increase in the COP. At higher generator temperatures, the reduction rate of the solution circulation rate decreases, but the temperature difference between the generator and the solution increases, resulting in a decrease in the irreversibility of the generator. Figure 6 shows that, as the generator temperature rises, the energy efficiency of the system first increases considerably to its maximum value 0.43 corresponding to the temperature of 79˚C, and then decreases continuously in order to reach its

Coefficient of Performance and Energy Efficiency
As indicated in Figure 7, for generator temperatures between 78˚C and 90˚C, the coefficient of performance and energy efficiency have the best values for suitable functioning of the system. Above temperatures beyong 105˚C, the coefficient of performance increases towards its final value, while the energy efficiency continues to decrease. This results in the system having more energy losses for temperatures above 90˚C. Such losses are caused by the temperature difference between the absorber and the environment, the temperature difference between the source and the refrigerant, and the temperature difference between the evaporation temperature and the environment. So, we can choose generator temperatures in the range of 79˚C and 90˚C, to maintain a more acceptable operation.

Conclusion
A computer program has been developed to predict the performance of a single-effect absorption refrigeration system. Obtained results show the influence of the generator's temperature on the system performance. It is obvious that the generator's temperature is not the only parameter influencing the coefficient of performance and the efficiency of the system. In fact, there are other parameters that can strongly influence the performance of the machine, such as the temperature of the evaporator, the condenser and the absorber. This work, was limited to the effect of the generator's temperature because we have assumed that this is the starting point for system operation.