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Integrating biogas in regional energy systems to achieve near-zero carbon emissions

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  • Wang, Pengya
  • Wang, Jianxiao
  • Jin, Ruiyang
  • Li, Gengyin
  • Zhou, Ming
  • Xia, Qing

Abstract

Recent years have witnessed an increasing proliferation of biomass technologies since biomass is recognized as a natural carbon-neutral fuel. Existing studies have paid extensive attention to the concept and modeling of zero-carbon energy systems or buildings. However, few studies have explored the multi-energy coupling method and techno-economic evaluation of biomass to achieve near-zero carbon systems. Therefore, we propose an optimal sizing framework for integrating waste-to-biogas in regional energy systems to achieve near-zero carbon emissions. To establish energy balance between supply and demand and regional self-sufficiency, biomass is added to the existing natural gas energy framework. Biomass produces biogas through anaerobic digestion reactions, and the biogas output can be constructed as an analytical function related to the anaerobic reaction environment temperature and reactant volume. Furthermore, this paper constructs a planning model with the goal of minimizing the investment and operating costs of biomass, solar and storage, respecting carbon emission constraints induced by local electricity and gas energy flows. The impact of carbon emission regulations on the investment of each component of the energy system is determined using a sensitivity analysis of carbon emissions. To solve the nonlinearity issues of the biogas production function, we propose a convexification method based on least squares fitting. Case studies based on realistic datasets demonstrate that, under the constraints of carbon emissions, the integration of biogas can significantly improve the supply adequacy of the energy system, reduce investment costs by up to 77.07%, and carbon emission reduction intensity is 5.11 kg CO2 kg-1 Biogas, all while lowering the Levelized Cost of Energy (LCOE). In comparison to prior research, the model provided in this paper more accurately portrays the biogas production process, lowers the system investment cost and LCOE, and emphasizes the benefits of biomass.

Suggested Citation

  • Wang, Pengya & Wang, Jianxiao & Jin, Ruiyang & Li, Gengyin & Zhou, Ming & Xia, Qing, 2022. "Integrating biogas in regional energy systems to achieve near-zero carbon emissions," Applied Energy, Elsevier, vol. 322(C).
  • Handle: RePEc:eee:appene:v:322:y:2022:i:c:s0306261922008364
    DOI: 10.1016/j.apenergy.2022.119515
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    1. Rajbongshi, Rumi & Borgohain, Devashree & Mahapatra, Sadhan, 2017. "Optimization of PV-biomass-diesel and grid base hybrid energy systems for rural electrification by using HOMER," Energy, Elsevier, vol. 126(C), pages 461-474.
    2. Hajizadeh, Abdollah & Mohamadi-Baghmolaei, Mohamad & Cata Saady, Noori M. & Zendehboudi, Sohrab, 2022. "Hydrogen production from biomass through integration of anaerobic digestion and biogas dry reforming," Applied Energy, Elsevier, vol. 309(C).
    3. Pham, Cuong H. & Triolo, Jin M. & Sommer, Sven G., 2014. "Predicting methane production in simple and unheated biogas digesters at low temperatures," Applied Energy, Elsevier, vol. 136(C), pages 1-6.
    4. Henriquez-Auba, Rodrigo & Hidalgo-Gonzalez, Patricia & Pauli, Patricia & Kalathil, Dileep & Callaway, Duncan S. & Poolla, Kameshwar, 2021. "Sharing economy and optimal investment decisions for distributed solar generation," Applied Energy, Elsevier, vol. 294(C).
    5. Zhang, Kuan & Zhou, Bin & Li, Canbing & Voropai, Nikolai & Li, Jiayong & Huang, Wentao & Wang, Tao, 2021. "Dynamic modeling and coordinated multi-energy management for a sustainable biogas-dominated energy hub," Energy, Elsevier, vol. 220(C).
    6. Chen, Lin & Wang, Jianxiao & Wu, Zhaoyuan & Li, Gengyin & Zhou, Ming & Li, Peng & Zhang, Yihan, 2021. "Communication reliability-restricted energy sharing strategy in active distribution networks," Applied Energy, Elsevier, vol. 282(PB).
    7. Korberg, Andrei David & Skov, Iva Ridjan & Mathiesen, Brian Vad, 2020. "The role of biogas and biogas-derived fuels in a 100% renewable energy system in Denmark," Energy, Elsevier, vol. 199(C).
    8. Feng, Jing-Chun & Yan, Jinyue & Yu, Zhi & Zeng, Xuelan & Xu, Weijia, 2018. "Case study of an industrial park toward zero carbon emission," Applied Energy, Elsevier, vol. 209(C), pages 65-78.
    9. Su, Bosheng & Lin, Feng & Ma, Jingyuan & Huang, Shenghua & Wang, Yilin & Zhang, Xiaodong & Han, Wei & Wang, Hongsheng, 2022. "System integration of multi-grade exploitation of biogas chemical energy driven by solar energy," Energy, Elsevier, vol. 241(C).
    10. Yang, Hanyu & Dou, Xun & Pan, Feng & Wu, Qiuwei & Li, Canbing & Zhou, Bin & Hao, Lili, 2022. "Optimal planning of local biomass-based integrated energy system considering anaerobic co-digestion," Applied Energy, Elsevier, vol. 316(C).
    11. Du, Ershun & Zhang, Ning & Hodge, Bri-Mathias & Kang, Chongqing & Kroposki, Benjamin & Xia, Qing, 2018. "Economic justification of concentrating solar power in high renewable energy penetrated power systems," Applied Energy, Elsevier, vol. 222(C), pages 649-661.
    12. Zhang, Jinrui & Meerman, Hans & Benders, René & Faaij, André, 2022. "Potential role of natural gas infrastructure in China to supply low-carbon gases during 2020–2050," Applied Energy, Elsevier, vol. 306(PA).
    13. Karasu, Seçkin & Altan, Aytaç, 2022. "Crude oil time series prediction model based on LSTM network with chaotic Henry gas solubility optimization," Energy, Elsevier, vol. 242(C).
    14. Mao, Chunlan & Feng, Yongzhong & Wang, Xiaojiao & Ren, Guangxin, 2015. "Review on research achievements of biogas from anaerobic digestion," Renewable and Sustainable Energy Reviews, Elsevier, vol. 45(C), pages 540-555.
    15. Nikolakakis, Thomas & Fthenakis, Vasilis, 2011. "The optimum mix of electricity from wind- and solar-sources in conventional power systems: Evaluating the case for New York State," Energy Policy, Elsevier, vol. 39(11), pages 6972-6980.
    16. Santos-Alamillos, F.J. & Pozo-Vázquez, D. & Ruiz-Arias, J.A. & Von Bremen, L. & Tovar-Pescador, J., 2015. "Combining wind farms with concentrating solar plants to provide stable renewable power," Renewable Energy, Elsevier, vol. 76(C), pages 539-550.
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