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Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems

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Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems. / Torbira, Mtamabari ; Darwish, Ahmed; Campean, Felician et al.
In: Sustainability (Switzerland), Vol. 17, No. 13, 5759, 23.06.2025.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Torbira, M, Darwish, A, Campean, F & Dao, C 2025, 'Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems', Sustainability (Switzerland), vol. 17, no. 13, 5759. https://doi.org/10.3390/su17135759

APA

Torbira, M., Darwish, A., Campean, F., & Dao, C. (2025). Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems. Sustainability (Switzerland), 17(13), Article 5759. https://doi.org/10.3390/su17135759

Vancouver

Torbira M, Darwish A, Campean F, Dao C. Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems. Sustainability (Switzerland). 2025 Jun 23;17(13):5759. doi: 10.3390/su17135759

Author

Torbira, Mtamabari ; Darwish, Ahmed ; Campean, Felician et al. / Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems. In: Sustainability (Switzerland). 2025 ; Vol. 17, No. 13.

Bibtex

@article{d7e5b14c635f4fffa5d497d5530e8507,
title = "Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems",
abstract = "Multi-energy systems (MESs) are designed to convert, store, and distribute energy to diverse end-users, including those in the industrial, commercial, residential, and agricultural sectors. This study proposes an integrated optimal planning optimization model for the techno-economic assessment of an MES integrated with power-to-gas (P2G) to meet electricity, heating, and cooling requirements while enabling sustainable energy solutions. The goal of the system optimal planning is to appropriately size the MES components to minimize the total planning costs. This includes not only the investment and operation costs but also the emissions cost and the cost of energy not supplied (ENS). The study implements P2G, electricity demand response (E-DRP), and thermal demand response (T-DRP), with four distinct operational scenarios considered for optimal planning, to evaluate the benefits of adopting MESs. A comprehensive validation study is presented based on a case study farm in Nigeria, with an MES investment model developed to assess feasibility. The results show that the integration of P2G with E-DRP and T-DRP gives the best operational scenario and planning cost for this farming application integration, leading to potential savings of up to USD 2.77 million annually from the proposed MES adoption.",
author = "Mtamabari Torbira and Ahmed Darwish and Felician Campean and Cuong Dao",
year = "2025",
month = jun,
day = "23",
doi = "10.3390/su17135759",
language = "English",
volume = "17",
journal = "Sustainability (Switzerland)",
issn = "2071-1050",
publisher = "MDPI AG",
number = "13",

}

RIS

TY - JOUR

T1 - Optimal Planning and Techno-Economic Analysis of P2G-Multi-Energy Systems

AU - Torbira, Mtamabari

AU - Darwish, Ahmed

AU - Campean, Felician

AU - Dao, Cuong

PY - 2025/6/23

Y1 - 2025/6/23

N2 - Multi-energy systems (MESs) are designed to convert, store, and distribute energy to diverse end-users, including those in the industrial, commercial, residential, and agricultural sectors. This study proposes an integrated optimal planning optimization model for the techno-economic assessment of an MES integrated with power-to-gas (P2G) to meet electricity, heating, and cooling requirements while enabling sustainable energy solutions. The goal of the system optimal planning is to appropriately size the MES components to minimize the total planning costs. This includes not only the investment and operation costs but also the emissions cost and the cost of energy not supplied (ENS). The study implements P2G, electricity demand response (E-DRP), and thermal demand response (T-DRP), with four distinct operational scenarios considered for optimal planning, to evaluate the benefits of adopting MESs. A comprehensive validation study is presented based on a case study farm in Nigeria, with an MES investment model developed to assess feasibility. The results show that the integration of P2G with E-DRP and T-DRP gives the best operational scenario and planning cost for this farming application integration, leading to potential savings of up to USD 2.77 million annually from the proposed MES adoption.

AB - Multi-energy systems (MESs) are designed to convert, store, and distribute energy to diverse end-users, including those in the industrial, commercial, residential, and agricultural sectors. This study proposes an integrated optimal planning optimization model for the techno-economic assessment of an MES integrated with power-to-gas (P2G) to meet electricity, heating, and cooling requirements while enabling sustainable energy solutions. The goal of the system optimal planning is to appropriately size the MES components to minimize the total planning costs. This includes not only the investment and operation costs but also the emissions cost and the cost of energy not supplied (ENS). The study implements P2G, electricity demand response (E-DRP), and thermal demand response (T-DRP), with four distinct operational scenarios considered for optimal planning, to evaluate the benefits of adopting MESs. A comprehensive validation study is presented based on a case study farm in Nigeria, with an MES investment model developed to assess feasibility. The results show that the integration of P2G with E-DRP and T-DRP gives the best operational scenario and planning cost for this farming application integration, leading to potential savings of up to USD 2.77 million annually from the proposed MES adoption.

U2 - 10.3390/su17135759

DO - 10.3390/su17135759

M3 - Journal article

VL - 17

JO - Sustainability (Switzerland)

JF - Sustainability (Switzerland)

SN - 2071-1050

IS - 13

M1 - 5759

ER -