Simulation Research on the Heating Performance of the Combined System of Solar Energy and Heat-Source Tower Heat Pump in a Hot Summer and Cold Winter Area
Abstract
:1. Introduction
2. Mathematical Model
2.1. System Composition
2.2. Heat and Mass Exchange Models of Heat-Source Tower Heat Exchanger
2.2.1. Heat and Mass Transfer Process Analysis under Dry Conditions in Winter
2.2.2. Heat and Mass Transfer Process Analysis under Wet Conditions in Winter
2.3. Heat Transfer Model of Solar Collector
2.4. Heat Transfer Model of Water Source Heat Pump
3. TRNSYS Calculation Module for Closed-Type Heat-Source Tower
3.1. Establishment of TRNSYS Calculation Module
3.2. Verification of TRNSYS Calculation Module
3.2.1. Experimental Setup
3.2.2. Test Methods
3.2.3. Data Validity Judgment
3.2.4. Comparative Analysis of Experimental and Simulated Results
4. Simulation Model
4.1. Heating Model for SC//HP System
4.2. Heating Model for SC+HP System
4.3. Heating Model for HST+SC System
4.4. Parameter Settings
5. Simulation Results Analysis
5.1. The Effect of Solar Radiation Intensity
5.2. The Effect of Outdoor Air Temperature
5.3. The Optimal Energy Efficiency Range
6. Conclusions
- (1)
- The maximum relative error between the experimental value and the simulated value of the outlet temperature of the circulating fluid of the heat-source tower and the amount of heat exchange is 7.32% and 9.94%, respectively, showing that the TRNSYS calculation module of the heat-source tower built in this work had good accuracy and could be used for the simulation and calculation of three combined heating systems with collectors and a heat-source tower heat pump.
- (2)
- In the HST+SC system, when solar radiation intensity increased, the heat exchange amount of the heat-source tower decreased with the increase in solar radiation intensity, which indicated that the solar collectors suppressed the heat transfer efficiency of the heat-source tower.
- (3)
- According to the best operating condition interval diagrams of the three systems, the HST+SC system has the best heating performance under the conditions of low solar radiation intensity and ambient temperature, while the best operating condition range of the SC//HP system is mainly under conditions of high solar radiation intensity and high ambient temperature. The optimal operating conditions range of the SC+HP system is between the HST+SC and SC//HP systems.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
AL | The total area inside the heat-source tower heat exchanger, m2 |
AO | The total area outside the heat-source tower heat exchanger, m2 |
AS | Solar collector, m2 |
Cpa | Constant pressure specific heat capacity of humid air, J/(kg·K) |
Cpw | Constant pressure specific heat capacity of heat carrier fluid, J/(kg·K) |
Cd | Heat capacity ratio of cold and hot fluid in heat-source tower heat exchanger under dry conditions |
Cw | Heat capacity ratio of cold and hot fluid in heat-source tower heat exchanger under wet conditions |
fd | Percentage of dry surface in heat-source tower heat exchanger |
ma | Humid air’s mass flow, kg/s |
mw | Circulating fluid’s mass flow, kg/s |
ho | Heat transfer coefficient at outer surface, W/(m2·K) |
hi | Heat transfer coefficient at inner surface, W/(m2·K) |
I | Solar irradiance, W/m2 |
iai | Inlet air specific enthalpy, kJ/kg |
iao | Outlet air specific enthalpy, kJ/kg |
iswi | Specific enthalpy of saturated wet air at circulating fluid’s inlet, kJ/kg |
iswo | Specific enthalpy of saturated wet air at circulating fluid’s outlet, kJ/kg |
iax | Mixing point specific enthalpy, kJ/kg |
KT | Copper pipe’s thermal conductivity, W/(m·K) |
NTUd | Number of heat-source tower heat exchanger’s transfer units |
NTUl | Number of exchange units inside heat-source tower heat exchanger |
NTUo | Number of exchange units outside heat-source tower heat exchanger |
W | System input power, W |
WWP | Water pump input power, W |
PHp | Heat pump input power, W |
Qd | Heat absorption of circulating fluid, W |
Qw | Total heat absorption of circulating fluid, W |
QHp | Heat pump heating, W |
Qg | System heating, W |
RI | Pipe inner radius, mm |
Ro | Pipe outer radius, mm |
rw | Thermal resistance of tube wall per unit surface area, W/(m·K) |
Tc | Circulating fluid inlet temperature of the evaporator, ℃ |
Te | Condenser’s inlet water temperature, ℃ |
Tai | Inlet air temperature, ℃ |
Tao | Outlet air temperature, ℃ |
Twi | Circulating fluid’s inlet temperature, ℃ |
Two | Circulating fluid’s outlet temperature, ℃ |
Tso | The outer surface temperature of heat-source tower heat exchanger at air outlet, ℃ |
Tax | Temperature of mixing point, ℃ |
Tdp | Dew point temperature of inlet humid air, ℃ |
Twx | Solution temperature at transition point when heat-source tower heat exchanger is converted from dry to wet, ℃ |
Tse | Dry bulb temperature in saturated air, ℃ |
Greek letters | |
Fin efficiency under dry conditions | |
The efficiency of flat solar collectors | |
Heat transfer efficiency of dry surface of plate-fin heat exchanger | |
Heat transfer efficiency of wet surface of plate-fin heat-source tower heat exchanger | |
Abbreviations | |
ASHP | Air source heat pump |
WSHP | Water source heat pump |
COP | Coefficient of Performance |
COPsys | System Coefficient of Performance |
HST | Heat-source tower |
HP | Heat pump |
SC | Solar collector |
OHTHP | Open-type heat-source tower heat pump |
CHTHP | Closed-type heat-source tower heat pump |
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Parameters. | Item |
---|---|
Attributes | Inner/Outer diameter of copper pipe; Thermal conductivity of copper pipe; Fin thickness; Fin pitch; Number of fins; Thermal conductivity of fins; Circulating fluid’s specific heat capacity; Air specific heat capacity; Maximum fan power; Number of rows of pipes along the airflow direction; Number of rows of pipes in vertical airflow direction; The length of the pipe parallel to the windward side of heat-source tower heat exchanger; The length of the pipe perpendicular to the windward side of heat-source tower heat exchanger; Distance between pipe centers along the direction of airflow; Distance between pipe centers in vertical airflow direction |
Inputs | Inlet air’s dry bulb temperature; Air mass flow; Inlet air humidity; Inlet circulating fluid temperature; Mass flow of circulating fluid; Fan frequency |
Outputs | Outlet air’s dry bulb temperature; Air mass flow; Outlet circulating fluid temperature; Mass flow of circulating fluid; Heat transfer of heat-source tower; Fan power |
Table | Value | The Structural Parameters | Value |
---|---|---|---|
Number of rows of pipes along the airflow direction | 8 | Fin thickness | 0.3 mm |
Number of rows of pipes in vertical airflow direction | 21 | Fin pitch | 6 mm |
Distance between pipe centers along the direction of airflow | 33 mm | Number of fins | 130 |
Distance between pipe centers in vertical airflow direction | 38 mm | Outer diameter of copper pipe | 16 mm |
Length of the pipe perpendicular to the windward side of heat-source tower heat exchanger | 820 mm | Inner diameter of copper pipe | 14 mm |
Length of the pipe parallel to the windward side of heat-source tower heat exchanger | 820 mm | Copper tube thickness | 1 mm |
Instruments | Type | Measurement Range | Accuracy |
---|---|---|---|
Assembled platinum resistance temperature sensor | PT100 | −50–100 °C | ±0.1 °C |
Platinum resistance temperature sensor | PT100 | −50–100 °C | ±0.1 °C |
Hand-held anemometer | TSI8347 | 0–30 m/s | ±0.01 m/s |
Ultrasonic flow meter | P204 | Flow rate: 0.12–12.39 m/s Pipe diameter 12–115 mm | ±0.1% |
Density meter | 1.100–1.200 g/cm3 | ±0.001 g/cm3 | |
Paperless recorder | EN880-X-48 | Storage accuracy 16 bits | |
Solar radiation recorder | SC-1 | 0–2000 W/m2 | ±2% |
Comparison of Experimental and Simulated Results | Circulating Fluid Outlet Temperature | Heat Transfer Amount |
---|---|---|
MRE (%) | 3.74 | 5.66 |
REmax (%) | 7.32 | 9.94 |
Equipment. | Parameter | Value |
---|---|---|
Solar collectors Type1b | Area | 20 m2 |
Efficiency intercept | 0.7 | |
Efficiency slope | 17.0 | |
Inclination | 28° | |
Water source heat pump Type227 | Rated heating capacity | 11,000 W |
Rated power | 3000 W | |
Water pump Type3b | Water flow | 2400 L/h |
Power | 400 W | |
Water pump Type3b | Water flow | 2230 L/h |
Power | 400 W |
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Shen, X.; Li, N.; A, Y. Simulation Research on the Heating Performance of the Combined System of Solar Energy and Heat-Source Tower Heat Pump in a Hot Summer and Cold Winter Area. Energies 2021, 14, 1816. https://doi.org/10.3390/en14071816
Shen X, Li N, A Y. Simulation Research on the Heating Performance of the Combined System of Solar Energy and Heat-Source Tower Heat Pump in a Hot Summer and Cold Winter Area. Energies. 2021; 14(7):1816. https://doi.org/10.3390/en14071816
Chicago/Turabian StyleShen, Xiaohang, Nianping Li, and Yongga A. 2021. "Simulation Research on the Heating Performance of the Combined System of Solar Energy and Heat-Source Tower Heat Pump in a Hot Summer and Cold Winter Area" Energies 14, no. 7: 1816. https://doi.org/10.3390/en14071816
APA StyleShen, X., Li, N., & A, Y. (2021). Simulation Research on the Heating Performance of the Combined System of Solar Energy and Heat-Source Tower Heat Pump in a Hot Summer and Cold Winter Area. Energies, 14(7), 1816. https://doi.org/10.3390/en14071816