Analysis of Heat Pump Condenser's Performance using the Mathematical Model and a Numerical Method
|
|
|
- Godwin Palmer
- 9 years ago
- Views:
Transcription
1 Acta Polytechnica Hungarica Vol. 11, No. 3, 2014 Analysis of Heat Pump Condenser's Performance using the Mathematical Model and a Numerical Method Jozsef Nyers Óbuda University, Budapest, Bécsi út 96, 1034 Budapest, Hungary Subotica Tech, Marko Oreskovic 16, Subotica, Serbia [email protected] Laszlo Garbai Budapest University of Technology and Economics, 1111 Budapest, Műegyetem rkp. 3-9, Hungary; [email protected] Arpad Nyers Subotica Tech, Marko Oreskovic 16, Subotica, Serbia Tera Term co., Vig Istvan 1, Subotica, Serbia [email protected] Abstract: this article aims to investigate the performance of the heat pump s condenser and functionality, suitability of the steady-state mode mathematical model and the used numerical method. The heat transferred through the condenser is the performance of the condenser. The condenser is plate exchanger. The refrigerant is R 134a and the heated medium is water. This wide-range study investigates the condenser's performance depending on four independent external variables. The independent external variables are: inlet temperature of the refrigerant, refrigerant mass flow rate, the water inlet temperature and the water mass flow rate.the investigation is carried out by using a steady state mode mathematical model with lumped parameter. The model consists of two parts. Part one describes mathematically the cooling of the superheated vapor, while the second part describes the condensation itself. The physical model is simple, only the plate condenser and the input, output parameters are included. This article does not take into consideration the compressor and circulating pump model. That remains the subject of future investigation. The results can be represented in three-dimensional graphics. For example, it shows the changes of heat transfer in the condenser depending on the refrigerant mass flow rate and the water mass flow rate. 139
2 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model Keywords: condenser; heat pump; circulator pump; performance; mathematical model; mass flow rate; efficiency Nomenclature mass flow rate [ ] convective heat transfer coefficient [ ] conductive heat transfer coefficient [ ] overall heat transfer coefficient [ ] specific heat, p=const [ ] temperature [ ] temperature difference [ ] surface [ ] cross section area of flow [ ] latent heat [ ] heat flux, performance [ ] Reynolds number [ ] Prandtl number [ ] coefficient [ ] density [ ] thickness [ ] diameter [ ] coefficient of flow resistent [ ] Subscripts and superscripts v water f refigerant (freon) i input o output m middle 1 vapor cooling section 2 condensation section p pressure 1 Introduction The condenser plays a decisive role to the efficiency of the heat pump. The heat transfer between the refrigerant and the heated water is formed in the condenser. The efficiency of the heat transfer process is very important. On the efficiency of the heat transfer process have strong effects the construction of the condenser, the refrigerant and the heated water mass flow rate. The answer to the extensive investigation of the interactions among the operating condenser s parameters can be obtained by measurements or by the solution of the mathematical model. The mathematical model have been developed to correspond 140
3 Acta Polytechnica Hungarica Vol. 11, No. 3, 2014 to the above-defined tasks. In the center of the mathematical model is the condenser as well as the refrigerant and water to transport the heat.this study does not take into consideration the compressor's and circulating pump's physical and mathematical model. It is the topics of the future investigation. The investigated condenser is plate exchanger. Within the condenser during the processing are formed two parts. The first part is the superheated vapor cooling section, the second is the condensation section itself. The aim of research is to investigate the interaction of condenser and its environment in terms of energy efficiency. More precisely, the determination and investigation of condenser's coefficient of performance-cop depending on the compressor and circulating pumps. In this paper the influence of the compressor and circulation pump on the perfomances of the condenser is taken into account through the mass flow rate and inlet temperature of the refrigerant and hot water.the investigation of the COP can only be justified in steady state operation mode. The transitional operation mode occurs only in the case of switching the heat pump on/off and possibly in the case of changing the system parameter in the time. On the base the above specified aim the mathematical model is steady state, with lumped parameter and coupled algebraic equations. In the mathematical model the equations are divided into the governing and auxiliary equations. The governing are the energy balance equations for the heated water and the refrigerant. The auxiliary equation are the equations of the convective heat transfer coefficients and the latent heat of the refrigerant. In the studied system four independent variables are present, the refrigerant mass flow rate, the refrigerant inlet temperature, the water mass flow rate and the water inlet temperature. Changing the independent variables the condenser's performance and the coefficient of performance-cop or rather energy efficiency can be changed, as well. In principle, each of the four independent variables can be changed simultaneously but in this case separatly the effect of the variables to the condenser performance will not be possible to detect. It is preferred to change two independent variables at the same time during the investigation of the condenser performance. Four possible combinations exist when two system parameters is changing. But the most physically relevant investigation is the change of the heat transfer in condenser depending on the refrigerant mass flow rate and the heated water mass flow rate. Furthermore, the simulation of the remaining three possible combinations is also carried out. This was the change of heat transfer in condeser depending on the refrigerant mass flow rate and inlet temperature, the water mass flow rate and inlet temperature as well as the refrigerant and water inlet temperature. To solve the system of equations in the created mathematical model in algebraic form is almost not possible. Some numerical method is applicable only. The Newton-Taylor numerical method was used to solve the system of equation. The obtained numerical results can be displayed in a very suitable three dimensioned 141
4 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model form. The great advantage of graphics is that the behavior of the condenser's performance can be seen over a wide range of the parameters. In the scientific press has many articles researched the heat pump's behavior in stationary operating mode used various mathematical models with lumped parameters. Many of the mathematical models contain all four components including the condenser, however, the goal of research is focused on the behavior of the entire system rather than individual components. A smaller number of articles that dealt with the study of the condenser 's behavior as a component of a heat pump. Hatef Madani and al. [1]. Have dealt with the investigation of control of the heating system using heat pump. In order to investigate the control of the system are developed a mathematical model with lumped parameters and for stationary regime. As part of the complete mathematical model developed the mathematical model of the condenser, too. The description of the condenser are used well known equations based on conservation energy. As a system parameter used enthalpy. Elias Kinab and al. [2]. Their aim was investigating the optimal seasonal performance of reversible heat pump system. Mathematical model of the condenser is created in analytical form based on the data of the existing physical condenser. Hongtao Qiao and al. [3]. Set a new mathematical model of the convective heat transfer coefficient to the refrigerant and water within the plate condenser. Róbert Santa [4]. Compared the results of condensing heat transfer coefficients of several authors. According to him paper the best characteristics showed Shah model among the investigated models. Yi-Yie Yan and al. [5]. Created a new mathematical model of condensing heat transfer coefficient of the plate condenser and carried out the model verification at the factory realized condenser. The above articles mainly investigated the processes within the condenser in terms of the heat exchange and the results are presented in two-dimensional graphics. In the enclosed article, research has focused on investigate the efficiency of heat exchange in the condenser but as a function of external influences. Results obtained by numerical simulation are presented in the three-dimensional graphics. Three-dimensional graphics are very suitable for the analysis because it provides a wide range of possibilities of displaying heat efficiency of the condenser, depending on the two external influences the same time. 2 Physical Model The physical model includes the condenser, the refrigerant and the water for transport the heat. The created model does not include the compressor and circulating pump. The compressor and circulating pump s effect on the condenser's performance through the refrigerant and the water mass flow rate and 142
5 Acta Polytechnica Hungarica Vol. 11, No. 3, 2014 inlet temperature. The investigated condenser is plate heat exchanger. Inside the condenser the refrigerant and the water may stream in the co-current or countercurrent direction. The direction of the stream has a negligibly small effect on the condenser's performance because the temperature of the condensation can be considered as constant. The near constant temperature is the result of the low pressure drop across the condensor. In the superheated vapor cooling section the counter flow is more preferable. The four independent variables are the refrigerant and the water mass flow rate and the inlet temperature. These four variables can be changed independently of each other. Incorporating the compressor and circulation pump in a mathematical model situation something is changing. Independent variable mass flow rate of water will be dependent on the performance of the circulating pump, and refrigerant's mass flow rate, of the compressor's performance. tvo (mv, mf, tfi, tvi) tvi, mv water side tvm f2 f1 refrigerant side tfm tfo (mv, mf, tfi, tvi) tfi, mf Figure 1 Heat Pump's Condenser with flow of refrigerant and hot water 3 Mathematical Model 3.1 General Description The condenser s mathematical model was developed with lumped parameters and on steady-state operation mode. The governing equations are formed based on the energy balance equations separately on the vapor section, and separately on the condensate section. Within each section three balance equations can be formed. The balance equation of refrigerant, water, and the balance equation of the heat transfer between them. By analyzing the energy efficiency only the steady-state operation mode is interesting. The dynamic-state may take up to 1% of the operation time. 143
6 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model 3.2 Approximations The next approximations have been applied during the modeling. lumped parameters steady-state operation mode pressure drop in plate exchanger is small therefore are neglected. the condenser's wall thermal resistance is too small so it has been neglected. specific heat of water is taken as constant because weakly depends on the temperature. specific heat of refrigerant vapor is taken as constant because weakly depends on the temperature. the condenser's heat loss to the environment is neglected. 3.3 The Governing Equations Vapor Cooling Section Heat delivered by the refrigerant vapor. Heat transferred through the condenser in the vapor cooling section. Heat received by the water Condensing Section Heat delivered by the condensation of the refrigerant. Heat transferred through the condenser in the condensation section. Heat received by the water. (1) (2) (3) (4) (5) (6) 3.4 Auxiliary Equations Logarithmic mean temperature difference ( ) 144
7 Acta Polytechnica Hungarica Vol. 11, No. 3, 2014 Overall heat transfer coefficient ( ) The water's convective heat transfer coefficient. [4] ( ) (9) The refrigerant vapor's convective heat transfer coefficient when x=1. [4] ( ) (10) The condensing heat transfer coefficient is the arithmetic mean value by increment dx = 0.1 for the interval x = 0-1. Using equation (10) [4] ( ) ( ) The latent heat as the function of the condensation temperature. Where the constants of the refrigerant R 134a are: (12) The condenser s total surface. The total amount of heat transferred through the surface of the condenser. (13) (14) 3.5 The Condition of Linking the Two Parts of Model Change of refrigerant phase are the cause of the forming two parts of the model. The condition of linking the two parts of the model is the condensing temperature and the temperature of the cooled refrigerant vapor on the end of first section must to be equal (15) 145
8 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model 4 Mathematical Method A mathematical model of the heat pumps condenser based on lumped parameters and in steady-state. The model is stationary so the parameters do not depend on the time or on space because the parameters are lumped. Thanks to these two assumptions, equations in the model are in algebraic format, without exception. Regardless, analytically to solve the mentioned mathematical model due to the complexity is not possible. The model s complexity and size has almost no restrictions imposed on the numerical method. The mathematical equations in the model can be coupled, nonlinear and implicit. Applied numerical method is iterative therefore it must be assumed the appropriate initial solutions. The non-linear system of equations has multiple solutions so the initial values have to be determined properly. The solution of the non-linear system of equations converges to the initial value but maybe it is not the right solution. In such a case, the initial values have to be changed. In this study, a well-known numerical method, such as the Newton linearization and Gauss elimination method has been applied. The governing equations are connected and must be arranged in implicit form. Before the starts of the first iteration each variable should get the initial value. As it was noted earlier, the system of equations is non-linear therefore it is very important to determine the initial value of the solutions. The simulation is running in a wide range and in three dimensions. Simulations made 9OO calculated points. The calculation of the variables in every pont is done iteratively, while the calculation of the next point can be considered a recursive step, since the initial values of solution was equalized with the final results from the previous step. This solution offeres a convergence and that is good if the initial values of solution are close to the values of the solution. 4.1 Implicit Mathematical Model of the Condenser The condition of using the Newton-Taylor's linearisation method the equations must be written in an implicit form. (16) (17) (18) (19) (20) (21) (22) 146
9 Acta Polytechnica Hungarica Vol. 11, No. 3, Newton-Taylor's Linearisation Method of Implicit Non- Linear Equations The (16) - (22) implicit equations have to develope in the Taylor series. Implicit discretized equation after developed in the Taylor series in 1 + i iteration. From the above relation the increment of variable between i and i +1 iterations can be expressed. (23) ( ) In the i +1 iteration, the new initial values of the variables (25) 5 Simulations Several independent variables were investigated to explain the behaviour of the heat pump s condenser. The investigations carried out by the mathematical model and the numerical method. The independent variables are: the compressor output parameters, the refrigerant mass flow and the superheated vapor temperature. the hot water flow rate circulated circulation pump and inlet temperature. The condensator performance was simulated in three dimensions. The simulation includes the following investigations: a. The condenser performance as a function of the heated water mass flow rate and refrigerant mass flow rate. ( ) b. The condenser performance as a function of the heated water and the refrigerant inlet temperature. ( ) c. The condenser performance as a function of the refrigerant mass flow of superheated vapour temperature. ( ) 147
10 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model d. The condenser performance as a function of the heated water mass flow rate, the inlet temperature ( ) 6 Simulation Results On the basis of the created mathematical model, the Newton-Taylor linearisation and Gauss iteration the obtained results are presented in the Figures 2, 3, 4. Figure 2 Condenser's performance as a function of the hot water and the refrigerant mass flow rate Figure 3 Condenser's performance as a function of the hot water and the refrigerant mass flow rate 148
11 Acta Polytechnica Hungarica Vol. 11, No. 3, 2014 Figure 4 Condenser's performance as a function of the hot water mass flow rate and the inlet temperature Figure 5 Condenser's performance as a function of the refrigerant mass flow rate and the inlet temperature Conclusions a. Comments on the mathematical model the mathematical model is stationary with lumped parameters difference of temperatures is logarithmic the convective heat transfer coefficients depends on the mass flow rate latent heat depends on the condensation temperature the thermal resistance of the thin wall of condenser is very small, therefore it has been neglected. b. Comments on the numerical methods the numerical method is iterative Gaussian elimination method. with Newton-Taylor linearization and 149
12 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model the values of the finally numerical solutions largely depend on the initial solutions. in the case of improper initial solutions, the obtained solutions are not physically appropriate. the investigation of the obtained numerical results is possible in graphical form the applied graphics are three-dimensional c. Simulation results the created mathematical model and the applied numerical method provide a wide range of opportunities to investigate the heat pump's plate condenser in the steady-state operating mode the research extended to investigate the plate condenser performance as a function of independent input variables. the independent input variables are the refrigerant and water mass flow rates and temperatures. Based on the simulation results, the conclusions are as follows: a. The condenser's performance increases nonlinearly as a function of hot water and refrigerant mass flow rate. b. In the case of zero mass flow rates the condenser performance is zero. For the range of low quantity of the mass flow rates, the performance improvement is extremely intense. c. The further linear increase in the mass flow rates resulted an asymptotic increasing of performance. It is not worth increasing the mass flow rates after certain quantity because the increase of performance is negligibly little. The investment in flow energy may not be recoverable. d. The condenser's performance mildly linearly increases as a function of the hot water and the refrigerant temperature difference. e. The condenser's performance nonlinearly increases depending on the increases of the hot water mass flow rate. f. If the water inlet temperature increases, the performance decreases proportionally. g. The condenser's performance weakly non-linear increases if the refrigerant mass flow rate in growth. The increases of the refrigerant's inlet temperature resulted in a clear linear increasing of performance. New scientific results The new formulation of the investigation of heat pump condenser's performance. - The condenser is divided into cooling and condensation sections. - The superheated vapor cooling in the condenser, was taken into account 150
13 Acta Polytechnica Hungarica Vol. 11, No. 3, The convective heat transfer coefficients depend on the mass flow rates and temperatures. - The latent heat depends on the condensing temperature For the purpose a suitable complexity mathematical model created - The model consists of two coupled parts, cooling and condensing section - The two models are coupled with an internal moving boundary - Determined the cooling and condensing surface area The presentation of the obtained numerical results by graphics three-dimensional - The new numerical package enables the 3D graphical presentation of results therefore thus provides the comprehensive investigation of condenser's performance and evaluation of new results. References [1] Hatef Madani, Joachim Claesson, Per Lundqvist: Capacity Control in Ground Source Heat Pump Systems Part I: Modeling and Simulation" I J Refrigeration, Vol 34 (2011), pp [2] Elias Kinab, Dominique Marchio, Philippe Riviere, Assaad Zoughaib: Reversible Heat Pump Model for Seasonal Performance Optimization I J Energy and Buildings, Vol 42 (2010), pp [3] Hongtao Qiao, Vikrant Aute, Hoseong Lee, Khaled Saleh, Reinhard Radermacher: A New Model for Plate Heat Exchangers with Generalized Flow Configurations and Phase Change I J Refrigeration Vol. 36 (2013) pp [4] Róbert Sánta: The Analysis of Two-Phase Condensation Heat Transfer Models Based on the Comparison of the Boundary Condition Acta Polytechnica Hungarica Vol. 9, No. 6, 2012, pp [5] Yi-Yie Yan, Hsiang-Chao Lio, Tsing-Fa Lin: Condensation Heat transfer and Pressure Drop of Refrigerant R-134a in a Plate Heat Exchanger International Journal of Heat and Mass Transfer Vol. 42 (1999) pp [6] Imrich Bartal, Hc László Bánhidi, László Garbai: Analysis of the Static Thermal Comfort Equation Energy and Buildings Vol. 49 (2012) pp [7] Garbai L., Jasper A.: A matematikai rendszerelmélet feldolgozása és alkalmazása épületgépészeti optimalizációs feladatok megoldására; Magyar Épületgépészet LX. évfolyam, 2011/3. szám, pp
14 J. Nyers et al. Analysis of Heat Pump's Condenser Performance by means Mathematical Model [8] Garbai L., Méhes Sz.: Energy Analysis of Geothermal Heat Pump with U- tube Installations. IEEE International Symposium CFP 1188N-PRT EXPRES Proceedings, pp Subotica, Serbia [9] M. M. Awad, H. M. Mostafa, G. I. Sultan, A. Elbooz, A. M. K. Elghonemy: Performance Enhancement of Air-cooled Condensers, Acta Polytechnica Hungarica, Volume 4, No. 2, pp , 2007 [10] Nyers J. Stoyan G.:" A Dynamical Model Adequate for Controlling the Evaporator of Heat Pump", Internationale Journal of Refrigeration, Vol. 17, Issue 2, pp , 1994 [11] Nyers J., Nyers A.: COP of Heating-Cooling System with Heat Pump IEEE International Symposium CFP 1188N-PRT EXPRES 2011 Proceedings, pp , Subotica, Serbia,
The Analysis of Two-Phase Condensation Heat Transfer Models Based on the Comparison of the Boundary Condition
Acta Polytechnica Hungarica Vol. 9, No. 6, 2012 The Analysis o Two-Phase Condensation Heat Transer Models Based on the Comparison o the Boundary Condition Róbert Sánta College o Applied Sciences Subotica
Integration of a fin experiment into the undergraduate heat transfer laboratory
Integration of a fin experiment into the undergraduate heat transfer laboratory H. I. Abu-Mulaweh Mechanical Engineering Department, Purdue University at Fort Wayne, Fort Wayne, IN 46805, USA E-mail: [email protected]
CFD SIMULATION OF SDHW STORAGE TANK WITH AND WITHOUT HEATER
International Journal of Advancements in Research & Technology, Volume 1, Issue2, July-2012 1 CFD SIMULATION OF SDHW STORAGE TANK WITH AND WITHOUT HEATER ABSTRACT (1) Mr. Mainak Bhaumik M.E. (Thermal Engg.)
Sizing of triple concentric pipe heat exchanger
Sizing of triple concentric pipe heat exchanger 1 Tejas M. Ghiwala, 2 Dr. V.K. Matawala 1 Post Graduate Student, 2 Head of Department 1 Thermal Engineering, SVMIT, Bharuch-392001, Gujarat, INDIA, 2 Department
Theoretical Study on Separate Sensible and Latent Cooling Air-Conditioning System
Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering 2008 Theoretical Study on Separate Sensible and Latent Cooling Air-Conditioning
MODELLING AND OPTIMIZATION OF DIRECT EXPANSION AIR CONDITIONING SYSTEM FOR COMMERCIAL BUILDING ENERGY SAVING
MODELLING AND OPTIMIZATION OF DIRECT EXPANSION AIR CONDITIONING SYSTEM FOR COMMERCIAL BUILDING ENERGY SAVING V. Vakiloroaya*, J.G. Zhu, and Q.P. Ha School of Electrical, Mechanical and Mechatronic Systems,
Coupling Forced Convection in Air Gaps with Heat and Moisture Transfer inside Constructions
Coupling Forced Convection in Air Gaps with Heat and Moisture Transfer inside Constructions M. Bianchi Janetti 1, F. Ochs 1 and R. Pfluger 1 1 University of Innsbruck, Unit for Energy Efficient Buildings,
Module 1 : Conduction. Lecture 5 : 1D conduction example problems. 2D conduction
Module 1 : Conduction Lecture 5 : 1D conduction example problems. 2D conduction Objectives In this class: An example of optimization for insulation thickness is solved. The 1D conduction is considered
Dynamic Process Modeling. Process Dynamics and Control
Dynamic Process Modeling Process Dynamics and Control 1 Description of process dynamics Classes of models What do we need for control? Modeling for control Mechanical Systems Modeling Electrical circuits
Mathematical Modeling and Engineering Problem Solving
Mathematical Modeling and Engineering Problem Solving Berlin Chen Department of Computer Science & Information Engineering National Taiwan Normal University Reference: 1. Applied Numerical Methods with
Experimental Analysis of a Variable Capacity Heat Pump System Focusing on the Compressor and Inverter Loss Behavior
Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering 21 Experimental Analysis of a Variable Capacity Heat Pump System Focusing on
Heat Transfer Prof. Dr. Ale Kumar Ghosal Department of Chemical Engineering Indian Institute of Technology, Guwahati
Heat Transfer Prof. Dr. Ale Kumar Ghosal Department of Chemical Engineering Indian Institute of Technology, Guwahati Module No. # 04 Convective Heat Transfer Lecture No. # 03 Heat Transfer Correlation
CFD Application on Food Industry; Energy Saving on the Bread Oven
Middle-East Journal of Scientific Research 13 (8): 1095-1100, 2013 ISSN 1990-9233 IDOSI Publications, 2013 DOI: 10.5829/idosi.mejsr.2013.13.8.548 CFD Application on Food Industry; Energy Saving on the
Introduction to Engineering System Dynamics
CHAPTER 0 Introduction to Engineering System Dynamics 0.1 INTRODUCTION The objective of an engineering analysis of a dynamic system is prediction of its behaviour or performance. Real dynamic systems are
Mohan Chandrasekharan #1
International Journal of Students Research in Technology & Management Exergy Analysis of Vapor Compression Refrigeration System Using R12 and R134a as Refrigerants Mohan Chandrasekharan #1 # Department
Testing methods applicable to refrigeration components and systems
Testing methods applicable to refrigeration components and systems Sylvain Quoilin (1)*, Cristian Cuevas (2), Vladut Teodorese (1), Vincent Lemort (1), Jules Hannay (1) and Jean Lebrun (1) (1) University
Yijun Gao, Wei Wu, Zongwei Han, Xianting Li *
Study on the performance of air conditioning system combining heat pipe and vapor compression based on ground source energy-bus for commercial buildings in north China Yijun Gao, Wei Wu, Zongwei Han, Xianting
Natural Convection. Buoyancy force
Natural Convection In natural convection, the fluid motion occurs by natural means such as buoyancy. Since the fluid velocity associated with natural convection is relatively low, the heat transfer coefficient
International Journal of Latest Research in Science and Technology Volume 4, Issue 2: Page No.161-166, March-April 2015
International Journal of Latest Research in Science and Technology Volume 4, Issue 2: Page No.161-166, March-April 2015 http://www.mnkjournals.com/ijlrst.htm ISSN (Online):2278-5299 EXPERIMENTAL STUDY
Increasing the evaporation temperature with the help of an internal heat exchanger
Increasing the evaporation temperature with the help of an internal heat exchanger A. TAMBOVTSEV (a), H. QUACK (b) (a,b) Technische Universität Dresden, D-01062, Dresden, Germany (a) Fax: (+49351) 463-37247,
Modelling and Simulation of the Freezing Systems and Heat Pumps Using Unisim Design
Modelling and Simulation of the Freezing Systems and Heat Pumps Using Unisim Design C. Patrascioiu Abstract The paper describes the modeling and simulation of the heat pumps domain processes. The main
Performance Evaluation of a Heat Pump System for Simultaneous Heating and Cooling
for Simultaneous Heating and Cooling F. Sustainable Energy Centre, University of South Australia Mawson Lakes Boulevard, Mawson Lakes 5095 AUSTRALIA E-mail: [email protected] Abstract The high efficiency
Basic Equations, Boundary Conditions and Dimensionless Parameters
Chapter 2 Basic Equations, Boundary Conditions and Dimensionless Parameters In the foregoing chapter, many basic concepts related to the present investigation and the associated literature survey were
9. ENERGY PERFORMANCE ASSESSMENT OF HVAC SYSTEMS
9. ENERGY PERFORMANCE ASSESSMENT OF HVAC SYSTEMS 9.1 Introduction Air conditioning and refrigeration consume significant amount of energy in buildings and in process industries. The energy consumed in
Lecture 3 Fluid Dynamics and Balance Equa6ons for Reac6ng Flows
Lecture 3 Fluid Dynamics and Balance Equa6ons for Reac6ng Flows 3.- 1 Basics: equations of continuum mechanics - balance equations for mass and momentum - balance equations for the energy and the chemical
HEAT TRANSFER ANALYSIS IN A 3D SQUARE CHANNEL LAMINAR FLOW WITH USING BAFFLES 1 Vikram Bishnoi
HEAT TRANSFER ANALYSIS IN A 3D SQUARE CHANNEL LAMINAR FLOW WITH USING BAFFLES 1 Vikram Bishnoi 2 Rajesh Dudi 1 Scholar and 2 Assistant Professor,Department of Mechanical Engineering, OITM, Hisar (Haryana)
Waste Heat Recovery through Air Conditioning System
International Journal of Engineering Research and Development e-issn: 2278-067X, p-issn : 2278-800X, www.ijerd.com Volume 5, Issue 3 (December 2012), PP. 87-92 Waste Heat Recovery through Air Conditioning
Albert Złotkowski*, Patrycja Szczesiul** AN ANALYSIS OF A TEMPERATURE CHANGE IN A CROSS SECTION OF BOREHOLE HEAT EXCHANGER***
AGH DRILLING, OIL, GAS Vol. 30 No. 4 2013 http://dx.doi.org/10.7494/drill.2013.30.4.459 Albert Złotkowski*, Patrycja Szczesiul** AN ANALYSIS OF A TEMPERATURE CHANGE IN A CROSS SECTION OF BOREHOLE HEAT
TWO-DIMENSIONAL FINITE ELEMENT ANALYSIS OF FORCED CONVECTION FLOW AND HEAT TRANSFER IN A LAMINAR CHANNEL FLOW
TWO-DIMENSIONAL FINITE ELEMENT ANALYSIS OF FORCED CONVECTION FLOW AND HEAT TRANSFER IN A LAMINAR CHANNEL FLOW Rajesh Khatri 1, 1 M.Tech Scholar, Department of Mechanical Engineering, S.A.T.I., vidisha
Fundamentals of THERMAL-FLUID SCIENCES
Fundamentals of THERMAL-FLUID SCIENCES THIRD EDITION YUNUS A. CENGEL ROBERT H. TURNER Department of Mechanical JOHN M. CIMBALA Me Graw Hill Higher Education Boston Burr Ridge, IL Dubuque, IA Madison, Wl
Chapter 3.4: HVAC & Refrigeration System
Chapter 3.4: HVAC & Refrigeration System Part I: Objective type questions and answers 1. One ton of refrigeration (TR) is equal to. a) Kcal/h b) 3.51 kw c) 120oo BTU/h d) all 2. The driving force for refrigeration
Defining Quality. Building Comfort. Heating and Cooling Coils
Defining Quality. Building Comfort. Heating and Cooling Coils Heating and Cooling Coils Heating and Cooling Coils For over 20 years, AAON has supplied the coil needs of industrial and commercial HVAC customers.
Glossary of Heating, Ventilation and Air Conditioning Terms
Glossary of Heating, Ventilation and Air Conditioning Terms Air Change: Unlike re-circulated air, this is the total air required to completely replace the air in a room or building. Air Conditioner: Equipment
Energy savings in commercial refrigeration. Low pressure control
Energy savings in commercial refrigeration equipment : Low pressure control August 2011/White paper by Christophe Borlein AFF and l IIF-IIR member Make the most of your energy Summary Executive summary
UNIT 2 REFRIGERATION CYCLE
UNIT 2 REFRIGERATION CYCLE Refrigeration Cycle Structure 2. Introduction Objectives 2.2 Vapour Compression Cycle 2.2. Simple Vapour Compression Refrigeration Cycle 2.2.2 Theoretical Vapour Compression
CFD Simulation of Subcooled Flow Boiling using OpenFOAM
Research Article International Journal of Current Engineering and Technology E-ISSN 2277 4106, P-ISSN 2347-5161 2014 INPRESSCO, All Rights Reserved Available at http://inpressco.com/category/ijcet CFD
PERFORMANCE ANALYSIS OF VAPOUR COMPRESSION REFRIGERATION SYSTEM WITH R404A, R407C AND R410A
Int. J. Mech. Eng. & Rob. Res. 213 Jyoti Soni and R C Gupta, 213 Research Paper ISSN 2278 149 www.ijmerr.com Vol. 2, No. 1, January 213 213 IJMERR. All Rights Reserved PERFORMANCE ANALYSIS OF VAPOUR COMPRESSION
PG Student (Heat Power Engg.), Mechanical Engineering Department Jabalpur Engineering College, India. Jabalpur Engineering College, India.
International Journal of Emerging Trends in Engineering and Development Issue 3, Vol. (January 23) EFFECT OF SUB COOLING AND SUPERHEATING ON VAPOUR COMPRESSION REFRIGERATION SYSTEMS USING 22 ALTERNATIVE
Theoretical and Numerical Analysis of Heat Transfer in Pipeline System
APCOM & ISCM -4 th December, 20, Singapore Theoretical and Numerical Analysis of Heat Transfer in Pipeline System Xiaowei Zhu, Hui Tang, *Hua Li, Jiahua Hong, Songyuan Yang School of Mechanical & Aerospace
OPTIMIZATION OF DATA CENTER CHILLED WATER COOLING SYSTEM ACCORDING TO ANNUAL POWER CONSUMPTION CRITERION
OPTIMIZATION OF DATA CENTER CHILLED WATER COOLING SYSTEM ACCORDING TO ANNUAL POWER CONSUMPTION CRITERION Piotr Kowalski 1, Mieczysław Porowski 2 1 Poznan University of Technology Piotrowo 5 60-695 Poznan,
Federation of European Heating, Ventilation and Air-conditioning Associations
Federation of European Heating, Ventilation and Air-conditioning Associations Address: Rue Washington 40 1050 Brussels Belgium www.rehva.eu [email protected] Tel: +32 2 514 11 71 Fax: +32 2 512 90 62 REHVA
Comparing Air Cooler Ratings Part 1: Not All Rating Methods are Created Equal
Technical Bulletin By Bruce I. Nelson, P.E., President, Colmac Coil Manufacturing, Inc. Comparing Air Cooler Ratings Part 1: Not All Rating Methods are Created Equal SUMMARY Refrigeration air coolers (evaporators)
THEORETICAL AND EXPERIMENTAL EVALUATION OF AUTOMOBILE AIR-CONDITIONING SYSTEM USING R134A
THEORETICAL AND EXPERIMENTAL EVALUATION OF AUTOMOBILE AIR-CONDITIONING SYSTEM USING R134A Jignesh K. Vaghela Assistant Professor, Mechanical Engineering Department, SVMIT, Bharuch-392001, (India) ABSTRACT
International Telecommunication Union SERIES L: CONSTRUCTION, INSTALLATION AND PROTECTION OF TELECOMMUNICATION CABLES IN PUBLIC NETWORKS
International Telecommunication Union ITU-T TELECOMMUNICATION STANDARDIZATION SECTOR OF ITU Technical Paper (13 December 2013) SERIES L: CONSTRUCTION, INSTALLATION AND PROTECTION OF TELECOMMUNICATION CABLES
A heat pipe heat recovery heat exchanger for a mini-drier
A heat pipe heat recovery heat exchanger for a mini-drier A Meyer Department of Mechanical Engineering, University of Stellenbosch, Stellenbosch R T Dobson Department of Mechanical Engineering, University
Ravi Kumar Singh*, K. B. Sahu**, Thakur Debasis Mishra***
Ravi Kumar Singh, K. B. Sahu, Thakur Debasis Mishra / International Journal of Engineering Research and Applications (IJERA) ISSN: 48-96 www.ijera.com Vol. 3, Issue 3, May-Jun 3, pp.766-77 Analysis of
Problem Statement In order to satisfy production and storage requirements, small and medium-scale industrial
Problem Statement In order to satisfy production and storage requirements, small and medium-scale industrial facilities commonly occupy spaces with ceilings ranging between twenty and thirty feet in height.
HVAC Efficiency Definitions
HVAC Efficiency Definitions Term page EER - 2 SEER - 3 COP - 4 HSPF - 5 IPLV - 6 John Mix May 2006 Carrier Corporation 1 Energy Efficiency Ratio (EER) The energy efficiency ratio is used to evaluate the
Identification of Energy Distribution for Crash Deformational Processes of Road Vehicles
Acta Polytechnica Hungarica Vol. 4, No., 007 Identification of Energy Distribution for Crash Deformational Processes of Road Vehicles István Harmati, Péter Várlaki Department of Chassis and Lightweight
WORKING DOCUMENT ON. Possible requirements for air heating products, cooling products and high temperature process chillers TRANSITIONAL METHODS
WORKING DOCUMENT ON Possible requirements for air heating products, cooling products and high temperature process chillers TRANSITIONAL METHODS WORKING DOCUMENT in the framework of the implementation of
HEAT TRANSFER IM0245 3 LECTURE HOURS PER WEEK THERMODYNAMICS - IM0237 2014_1
COURSE CODE INTENSITY PRE-REQUISITE CO-REQUISITE CREDITS ACTUALIZATION DATE HEAT TRANSFER IM05 LECTURE HOURS PER WEEK 8 HOURS CLASSROOM ON 6 WEEKS, HOURS LABORATORY, HOURS OF INDEPENDENT WORK THERMODYNAMICS
COMPUTATION OF THREE-DIMENSIONAL ELECTRIC FIELD PROBLEMS BY A BOUNDARY INTEGRAL METHOD AND ITS APPLICATION TO INSULATION DESIGN
PERIODICA POLYTECHNICA SER. EL. ENG. VOL. 38, NO. ~, PP. 381-393 (199~) COMPUTATION OF THREE-DIMENSIONAL ELECTRIC FIELD PROBLEMS BY A BOUNDARY INTEGRAL METHOD AND ITS APPLICATION TO INSULATION DESIGN H.
The maximum coefficient of performance of internally irreversible refrigerators and heat pumps
J. Phys. D: Appl. Phys. 9 (1996 975 980. Printed in the UK The maximum coefficient of performance of internally irreversible refrigerators and heat pumps Mohand A Ait-Ali Département Génie Mécanique, Ecole
Comparison of Heat Transfer between a Helical and Straight Tube Heat Exchanger
International Journal of Engineering Research and Technology. ISSN 0974-3154 Volume 6, Number 1 (2013), pp. 33-40 International Research Publication House http://www.irphouse.com Comparison of Heat Transfer
Variable Capacity Compressors, a new dimension for refrigeration engineers to explore
Variable Capacity Compressors, a new dimension for refrigeration engineers to explore By: Marcos G. Schwarz, VCC Group Leader Corporate Research & Development, EMBRACO SA Abstract: This paper presents
KINGDOM OF SAUDI ARABIA SAUDI ARABIAN STANDARDS ORGANIZATION SASO. SAUDI STANDARD DRAFT No. 3457/2005
KINGDOM OF SAUDI ARABIA SAUDI ARABIAN STANDARDS ORGANIZATION SASO SAUDI STANDARD DRAFT No. 3457/2005 NON-DUCTED AIR CONDITIONERS AND HEAT PUMPS TESTING AND RATING PERFORMANCE This standard is developed
DERON Air/Water Swimming pool Heat Pump. CY/DY series for Heating/Cooling. Description
Description Compact air/water heat pump for outside installation. With suction gas cooled rotary compressor. With extensive aluminium/cu lamellar tube evaporator and PVC Titanium condenser. Axial fan Refrigerant
ME6130 An introduction to CFD 1-1
ME6130 An introduction to CFD 1-1 What is CFD? Computational fluid dynamics (CFD) is the science of predicting fluid flow, heat and mass transfer, chemical reactions, and related phenomena by solving numerically
HOW TO CONDUCT ENERGY SAVINGS ANALYSIS IN A FACILITY VALUE ENGINEERING STUDY
HOW TO CONDUCT ENERGY SAVINGS ANALYSIS IN A FACILITY VALUE ENGINEERING STUDY Benson Kwong, CVS, PE, CEM, LEED AP, CCE envergie consulting, LLC Biography Benson Kwong is an independent consultant providing
Development of a model for the simulation of Organic Rankine Cycles based on group contribution techniques
ASME Turbo Expo Vancouver, June 6 10 2011 Development of a model for the simulation of Organic Rankine ycles based on group contribution techniques Enrico Saverio Barbieri Engineering Department University
Technical Support Bulletin Nr. 20 Special AC Functions
Technical Support Bulletin Nr. 20 Special AC Functions Summary! Introduction! Hot Start Control! Adaptive Control! Defrost Start Temperature Compensation Control! Anti-Sticking Control! Water Free Cooling
Lesson 36 Selection Of Air Conditioning Systems
Lesson 36 Selection Of Air Conditioning Systems Version 1 ME, IIT Kharagpur 1 The specific objectives of this chapter are to: 1. Introduction to thermal distribution systems and their functions (Section
Energy Analysis and Comparison of Advanced Vapour Compression Heat Pump Arrangements
Energy Analysis and Comparison of Advanced Vapour Compression Heat Pump Arrangements Stuart Self 1, Marc Rosen 1, and Bale Reddy 1 1 University of Ontario Institute of Technology, Oshawa, Ontario Abstract
Percent per Degree Rule of Thumb for Refrigeration Cycle Improvement
7 Percent per Degree Rule of Thumb for Refrigeration Cycle Improvement Steve Doty, PE, CEM [email protected] ABSTRACT A value of 1-1.5% power reduction per degree Fahrenheit (F) has been used successfully
Free Convection Film Flows and Heat Transfer
Deyi Shang Free Convection Film Flows and Heat Transfer With 109 Figures and 69 Tables < J Springer Contents 1 Introduction 1 1.1 Scope 1 1.2 Application Backgrounds 1 1.3 Previous Developments 2 1.3.1
Optimization of electronic devices placement on printed circuit board
Optimization of electronic devices placement on printed circuit board Abstract by M. Felczak, T.Wajman and B. Więcek Technical University of Łódź, Wólczańska 211/215, 90-924 Łódź, Poland Power densities
WEEKLY SCHEDULE. GROUPS (mark X) SPECIAL ROOM FOR SESSION (Computer class room, audio-visual class room)
SESSION WEEK COURSE: THERMAL ENGINEERING DEGREE: Aerospace Engineering YEAR: 2nd TERM: 2nd The course has 29 sessions distributed in 14 weeks. The laboratory sessions are included in these sessions. The
2B.1 Chilled-Water Return (and Supply) Temperature...119. 2B.3 Cooling-Water Supply Temperature / Flow... 124
Appendix 2B: Chiller Test Results...119 2B.1 Chilled-Water Return (and Supply) Temperature...119 2B.2 Chilled-Water Flow... 122 2B.3 Cooling-Water Supply Temperature / Flow... 124 2B.4 Pressure/Temperature...
Measurement And Application of Performance Characteristics Of A Free Piston Stirling Cooler
Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering 00 Measurement And Application of Performance Characteristics Of A Free Piston
Field test of a novel combined solar thermal and heat pump system with an ice store
Field test of a novel combined solar thermal and system with an ice store Anja Loose Institute for Thermodynamics and Thermal Engineering (ITW), Research and Testing Centre for Thermal Solar Systems (TZS),
Heat and Mass Transfer Calculation of the Intercooler With Spraying Water for Air Compressor
Purdue University Purdue e-pubs International Compressor Engineering Conference School of Mechanical Engineering 1996 Heat and Mass Transfer Calculation of the Intercooler With Spraying Water for Air Compressor
INTERNATIONAL JOURNAL OF MECHANICAL ENGINEERING AND TECHNOLOGY (IJMET)
INTERNATIONAL JOURNAL OF MECHANICAL ENGINEERING AND TECHNOLOGY (IJMET) Proceedings of the 2 nd International Conference on Current Trends in Engineering and Management ICCTEM -2014 ISSN 0976 6340 (Print)
ENERGY SAVING STUDY IN A HOTEL HVAC SYSTEM
ENERGY SAVING STUDY IN A HOTEL HVAC SYSTEM J.S. Hu, Philip C.W. Kwong, and Christopher Y.H. Chao Department of Mechanical Engineering, The Hong Kong University of Science and Technology Clear Water Bay,
Laminar Flow and Heat Transfer of Herschel-Bulkley Fluids in a Rectangular Duct; Finite-Element Analysis
Tamkang Journal of Science and Engineering, Vol. 12, No. 1, pp. 99 107 (2009) 99 Laminar Flow and Heat Transfer of Herschel-Bulkley Fluids in a Rectangular Duct; Finite-Element Analysis M. E. Sayed-Ahmed
Experimental Evaluation Of The Frost Formation
Purdue University Purdue e-pubs International Refrigeration and Air Conditioning Conference School of Mechanical Engineering 2014 Experimental Evaluation Of The Frost Formation Yusuke Tashiro Mitsubishi
High Speed Aerodynamics Prof. K. P. Sinhamahapatra Department of Aerospace Engineering Indian Institute of Technology, Kharagpur
High Speed Aerodynamics Prof. K. P. Sinhamahapatra Department of Aerospace Engineering Indian Institute of Technology, Kharagpur Module No. # 01 Lecture No. # 06 One-dimensional Gas Dynamics (Contd.) We
Laboratory scale electrical resistivity measurements to monitor the heat propagation within porous media for low enthalpy geothermal applications
32 CONVEGNO NAZIONALE 19-21 Novembre 2013 TRIESTE Laboratory scale electrical resistivity measurements to monitor the heat propagation within porous media for low enthalpy geothermal applications N. Giordano
Keywords: Heat transfer enhancement; staggered arrangement; Triangular Prism, Reynolds Number. 1. Introduction
Heat transfer augmentation in rectangular channel using four triangular prisms arrange in staggered manner Manoj Kumar 1, Sunil Dhingra 2, Gurjeet Singh 3 1 Student, 2,3 Assistant Professor 1.2 Department
جامعة البلقاء التطبيقية
AlBalqa Applied University تا سست عام 997 The curriculum of associate degree in Air Conditioning, Refrigeration and Heating Systems consists of (7 credit hours) as follows: Serial No. Requirements First
A Comparison of an R22 and an R410A Air Conditioner Operating at High Ambient Temperatures
R2-1 A Comparison of an R22 and an R410A Air Conditioner Operating at High Ambient Temperatures W. Vance Payne and Piotr A. Domanski National Institute of Standards and Technology Building Environment
Hybrid Modeling and Control of a Power Plant using State Flow Technique with Application
Hybrid Modeling and Control of a Power Plant using State Flow Technique with Application Marwa M. Abdulmoneim 1, Magdy A. S. Aboelela 2, Hassen T. Dorrah 3 1 Master Degree Student, Cairo University, Faculty
FREESTUDY HEAT TRANSFER TUTORIAL 3 ADVANCED STUDIES
FREESTUDY HEAT TRANSFER TUTORIAL ADVANCED STUDIES This is the third tutorial in the series on heat transfer and covers some of the advanced theory of convection. The tutorials are designed to bring the
2.2. Basic Equations for Heat Exchanger Design
.. Basic Equations for Heat Exchanger Design... The Basic Design Equation and Overall Heat Transfer Coefficient The basic heat exchanger equations applicable to shell and tube exchangers were developed
AIR REVERSING R744 AIR CONDITIONING SYSTEM
AIR REVERSING R744 AIR CONDITIONING SYSTEM A.HAFNER 1 ; D.J. GARSKI 2 ; J. MANZIONE 3 1 SINTEF Energy Research, 7465 Trondheim, Norway, [email protected] 2 MODINE, Racine, USA, [email protected]
Heat Transfer Prof. Dr. Aloke Kumar Ghosal Department of Chemical Engineering Indian Institute of Technology, Guwahati
Heat Transfer Prof. Dr. Aloke Kumar Ghosal Department of Chemical Engineering Indian Institute of Technology, Guwahati Module No. # 02 One Dimensional Steady State Heat Transfer Lecture No. # 05 Extended
Motor-CAD Software for Thermal Analysis of Electrical Motors - Links to Electromagnetic and Drive Simulation Models
Motor-CAD Software for Thermal Analysis of Electrical Motors - Links to Electromagnetic and Drive Simulation Models Dave Staton, Douglas Hawkins and Mircea Popescu Motor Design Ltd., Ellesmere, Shropshire,
APPLICATIONS AND DEFINITIONS
HEAT PUMP APPLICATIONS AND DEFINITIONS Per Fahlén SP Energy Technology APPLICATIONS OF HEAT PUMPS 900s: Refrigeration, need to chill food; Survival: very large application; chilled food comprises Turnover:
Air-sourced 90 Hot Water Supplying Heat Pump "HEM-90A"
Air-sourced 90 Hot Water Supplying Heat Pump "HEM-90A" Takahiro OUE *1, Kazuto OKADA *1 *1 Refrigeration System & Energy Dept., Compressor Div., Machinery Business Kobe Steel has developed an air-sourced
ME 315 - Heat Transfer Laboratory. Experiment No. 7 ANALYSIS OF ENHANCED CONCENTRIC TUBE AND SHELL AND TUBE HEAT EXCHANGERS
ME 315 - Heat Transfer Laboratory Nomenclature Experiment No. 7 ANALYSIS OF ENHANCED CONCENTRIC TUBE AND SHELL AND TUBE HEAT EXCHANGERS A heat exchange area, m 2 C max maximum specific heat rate, J/(s
Optimal operation of simple refrigeration cycles Part I: Degrees of freedom and optimality of sub-cooling
Computers and Chemical Engineering 31 (2007) 712 721 Optimal operation of simple refrigeration cycles Part I: Degrees of freedom and optimality of sub-cooling Jørgen Bauck Jensen, Sigurd Skogestad Department
UNDERSTANDING REFRIGERANT TABLES
Refrigeration Service Engineers Society 1666 Rand Road Des Plaines, Illinois 60016 UNDERSTANDING REFRIGERANT TABLES INTRODUCTION A Mollier diagram is a graphical representation of the properties of a refrigerant,
METHODOLOGICAL CONSIDERATIONS OF DRIVE SYSTEM SIMULATION, WHEN COUPLING FINITE ELEMENT MACHINE MODELS WITH THE CIRCUIT SIMULATOR MODELS OF CONVERTERS.
SEDM 24 June 16th - 18th, CPRI (Italy) METHODOLOGICL CONSIDERTIONS OF DRIVE SYSTEM SIMULTION, WHEN COUPLING FINITE ELEMENT MCHINE MODELS WITH THE CIRCUIT SIMULTOR MODELS OF CONVERTERS. Áron Szûcs BB Electrical
Abaqus/CFD Sample Problems. Abaqus 6.10
Abaqus/CFD Sample Problems Abaqus 6.10 Contents 1. Oscillatory Laminar Plane Poiseuille Flow 2. Flow in Shear Driven Cavities 3. Buoyancy Driven Flow in Cavities 4. Turbulent Flow in a Rectangular Channel
REFRIGERATION (& HEAT PUMPS)
REFRIGERATION (& HEAT PUMPS) Refrigeration is the 'artificial' extraction of heat from a substance in order to lower its temperature to below that of its surroundings Primarily, heat is extracted from
Engineering Recommendation on: Accumulators Revised 6-17-99 Issued January 10, 1979 Page 1 of 7
Issued January 10, 1979 Page 1 of 7 Accumulators have long been recognized by the industry as an effective means of maintaining good system balance by storing excess refrigerant as the condenser or evaporator
