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Research Article

Multi-objective optimization of equipment capacity and heating network design for a centralized solar district heating system

Yanfeng Liu1,2Ting Mu1,2Xi Luo1,2( )
School of Building Services Science and Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China
State Key Laboratory of Green Building in Western China, Xi'an 710055, China
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Abstract

Northwest China has abundant solar energy resources and a large demand for winter heating. Using solar energy for centralized heating is a clean and effective way to solve local heating problems. While present studies usually decoupled solar heating stations and the heating network in the optimization design of centralized solar heating systems, this study developed a joint multi-objective optimization model for the equipment capacity and the diameters of the heating network pipes of a centralized solar district heating system, using minimum total life cycle cost and CO2 emission of the system as the optimization objectives. Three typical cities in northwest China with different solar resource conditions (Lhasa, Xining, and Xi'an) were selected as cases for analysis. According to the results, the solar heating system designed using the method proposed in this study presents lower economic cost and higher environmental protection in comparison to separately optimizing the design of the solar heating station and the heating network. Furthermore, the solar fraction of the optimal systems are 90%, 70%, and 31% for Lhasa, Xining, and Xi'an, and the minimum water supply temperatures are 55 ℃, 50 ℃, and 65 ℃ for an optimal economy and 55 ℃, 45 ℃, and 45 ℃ for optimal environmental protection, respectively. It was also established that the solar collector price has a greater impact on the equipment capacity of the solar heating station than the gas boiler price.

References

 

Ayele GT, Haurant P, Laumert B, et al. (2018). An extended energy hub approach for load flow analysis of highly coupled district energy networks: Illustration with electricity and heating. Applied Energy, 212: 850–867.

 

BERC (2020). Research Report on the Annual Development of Building Energy Efficiency in China 2020. Building Energy Research Center of Tsinghua University (BERC). Beijing: China Architecture and Building Press. (in Chinese)

 

Carotenuto A, Figaj RD, Vanoli L (2017). A novel solar-geothermal district heating, cooling and domestic hot water system: Dynamic simulation and energy-economic analysis. Energy, 141: 2652–2669.

 

Chen Y, Liu Y, Wang D, et al. (2020). Performance and optimization of a novel solar-driven liquid desiccant air conditioning system suitable for extremely hot and humid climates. Energy Conversion and Management, 215: 112899.

 

Ding Z, Liu S, Luo L, et al. (2020). A building information modeling-based carbon emission measurement system for prefabricated residential buildings during the materialization phase. Journal of Cleaner Production, 264: 121728.

 

Dobersek D, Goricanec D (2009). Optimisation of tree path pipe network with nonlinear optimisation method. Applied Thermal Engineering, 29: 1584–1591.

 

Dorotić H, Pukšec T, Duić N (2019). Economical, environmental and exergetic multi-objective optimization of district heating systems on hourly level for a whole year. Applied Energy, 251: 113394.

 

Evins R (2013). A review of computational optimisation methods applied to sustainable building design. Renewable and Sustainable Energy Reviews, 22: 230–245.

 

He Z, Zhu D (2009). Technical Handbook for Solar Heat Supply & Space Heating. Beijing: Chemical Industry Press. (in Chinese)

 

Huang J, Xu Y (2016). The development status and trend of solar district heating in Europe. Construction Science and Technology, 2016(23): 63–69. (in Chinese)

 

Huang J, Fan J, Furbo S, et al. (2019a). Economic analysis and optimization of combined solar district heating technologies and systems. Energy, 186: 115886.

 

Huang J, Fan J, Furbo S, et al. (2019b). Economic analysis and optimization of household solar heating technologies and systems. Sustainable Energy Technologies and Assessments, 36: 100532.

 

Klein SA, Beckman WA, Duffie JA (1976). A design procedure for solar heating systems. Solar Energy, 18: 113–127.

 

Klein SA, Beckman WA (1979). A general design method for closed-loop solar energy systems. Solar Energy, 22: 269–282.

 

Ko MJ (2015). Analysis and optimization design of a solar water heating system based on life cycle cost using a genetic algorithm. Energies, 8: 11380–11403.

 

Kubiński K, Szabłowski Ł (2020). Dynamic model of solar heating plant with seasonal thermal energy storage. Renewable Energy, 145: 2025–2033.

 

Li Y, Liao S, Rao Z, et al. (2014). A dynamic assessment based feasibility study of concentrating solar power in China. Renewable Energy, 69: 34–42.

 

Liu Y, Zhou W, Luo X, et al. (2021). Design and operation optimization of multi-source complementary heating system based on air source heat pump in Tibetan area of western Sichuan, China. Energy and Buildings, 242: 110979.

 

Long T, Qiao Z, Wang M, et al. (2020). Performance analysis and optimization of a solar-air source heat pump heating system in Tibet, China. Energy and Buildings, 220: 110084.

 

Lund H, Werner S, Wiltshire R, et al. (2014). 4th Generation District Heating (4GDH): Integrating smart thermal grids into future sustainable energy systems. Energy, 68: 1–11.

 

Luo X, Liu Y, Liu J, et al. (2020). Energy scheduling for a three-level integrated energy system based on energy hub models: A hierarchical Stackelberg game approach. Sustainable Cities and Society, 52: 101814.

 

Luo X, Liu Y, Feng P, et al. (2021). Optimization of a solar-based integrated energy system considering interaction between generation, network, and demand side. Applied Energy, 294: 116931.

 
Luo X, Sun Y, Liu X, et al. (2022a). Course timetable optimization for a university teaching building considering the building energy efficiency and time-varying thermal perception of students. Building and Environment, 219: 109175.
 

Luo X, Shi W, Jiang Y, et al. (2022b). Distributed peer-to-peer energy trading based on game theory in a community microgrid considering ownership complexity of distributed energy resources. Journal of Cleaner Production, 351: 131573.

 

Mertz T, Serra S, Henon A, et al. (2016). A MINLP optimization of the configuration and the design of a district heating network: Academic study cases. Energy, 117: 450–464.

 
Miedaner O, Pauschinger T (2012). Solar District Heating Guidelines: Categories of solar district heating systems. Available at https://www.solar-district-heating.eu/wp-content/uploads/2018/06/SDH-WP3_FS-6-1_Categories_version2.pdf
 

MOHURD (2004). JGJ 142-2004: Technical Specification for Floor Radiant Heating. Ministry of Housing and Urban-Rural Development of China (MOHURD). Beijing: China Architecture and Building Press. (in Chinese)

 

MOHURD (2010). CJJ 34-2010: Design Code for City Heating Network. Ministry of Housing and Urban-Rural Development of China (MOHURD). Beijing: China Architecture and Building Press. (in Chinese)

 

MOHURD (2015). GB 50189-2015: Design standard for energy efficiency of public buildings. Ministry of Housing and Urban-Rural Development of China (MOHURD). Beijing: China Architecture and Building Press. (in Chinese)

 

MOHURD (2018). JGJ 26-2018: Design Standard for Energy Efficiency of Residential Buildings in Severe Cold and Cold Zones. Ministry of Housing and Urban-Rural Development of China (MOHURD). Beijing: China Architecture and Building Press. (in Chinese)

 

MOHURD (2019). GB 50495-2019: Technical Standard for Solar Heating System. Ministry of Housing and Urban-Rural Development of China (MOHURD). Beijing: China Architecture and Building Press. (in Chinese)

 
National Energy Administration of China (2017). Clean Heating Plan in North China in Winter (2017–2021). (in Chinese)
 

Pirouti M, Bagdanavicius A, Ekanayake J, et al. (2013). Energy consumption and economic analyses of a district heating network. Energy, 57: 149–159.

 

Qiu G, Yu S, Cai W (2021). A novel heating strategy and its optimization of a solar heating system for a commercial building in term of economy. Energy, 221: 119773.

 

Ren F, Wang J, Zhu S, et al. (2019). Multi-objective optimization of combined cooling, heating and power system integrated with solar and geothermal energies. Energy Conversion and Management, 197: 111866.

 
Shah SK, Lu A, Rismanchi B (2020). Multi-objective optimisation of a seasonal solar thermal energy storage system for space heating in cold climate. Applied Energy, 268: 115047.
 
State Grid of China (2022). State Grid Online Business Hall. State Grid Corporation of China. Available at http://www.sgcc.com.cn/ywlm/index.shtml
 

van der Heijde B, Vandermeulen A, Salenbien R, et al. (2019). Integrated optimal design and control of fourth generation district heating networks with thermal energy storage. Energies, 12: 2766.

 

von Rhein J, Henze GP, Long N, et al. (2019). Development of a topology analysis tool for fifth-generation district heating and cooling networks. Energy Conversion and Management, 196: 705–716.

 

Wang D, Liu Y (2010). Temperature stratification studying of heat storage tank. Building Energy and Environment, 29(1): 16–19. (in Chinese)

 

Wang H, Duanmu L, Li X, et al. (2017). Optimizing the district heating primary network from the perspective of economic-specific pressure loss. Energies, 10: 1095.

 

Wang H, Wang H, Zhou H, et al. (2018). Modeling and optimization for hydraulic performance design in multi-source district heating with fluctuating renewables. Energy Conversion and Management, 156: 113–129.

 

Wang W (2017). Evaluation on investment risk of incremental power distribution network based on full life cycle cost and benefit model. Guangdong Electric Power, 9(30): 45–51. (in Chinese)

 

Wang Y, Wang X, Yu H, et al. (2019). Optimal design of integrated energy system considering economics, autonomy and carbon emissions. Journal of Cleaner Production, 225: 563–578.

 
Weiss W, Spörk-Dür M (2018). Solar heat worldwide. Global market development and trends in 2017. Detailed market figures 2016. Gleisdorf, Austria: AEE—Institute for Sustainable Technologies.
 

Winterscheid C, Dalenbäck JO, Holler S (2017). Integration of solar thermal systems in existing district heating systems. Energy, 137: 579–585.

 

Zhang R, Wang D, Liu Y, et al. (2021). Economic optimization of auxiliary heat source for centralized solar district heating system in Tibetan Plateau, China. Energy Conversion and Management, 243: 114385.

 

Zhou D, Ding H, Wang Q, et al. (2021). Literature review on renewable energy development and China's roadmap. Frontiers of Engineering Management, 8: 212–222.

 

Zhou Z, Liu J, Zeng H, et al. (2022). Carbon performance evaluation model from the perspective of circular economy—The case of Chinese thermal power enterprise. Frontiers of Engineering Management, 9: 297–311.

Building Simulation
Pages 51-67
Cite this article:
Liu Y, Mu T, Luo X. Multi-objective optimization of equipment capacity and heating network design for a centralized solar district heating system. Building Simulation, 2023, 16(1): 51-67. https://doi.org/10.1007/s12273-022-0921-0

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Received: 22 April 2022
Revised: 29 June 2022
Accepted: 11 July 2022
Published: 11 August 2022
© Tsinghua University Press 2022
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