A general framework for supporting economic feasibility of generator and storage energy systems through capacity and dispatch optimization

Fuente: arXiv
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Autori principali: Azad, Saeed, Gulumjanli, Ziraddin, Herber, Daniel R.
Natura: Preprint
Pubblicazione: 2024
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author Azad, Saeed
Gulumjanli, Ziraddin
Herber, Daniel R.
author_facet Azad, Saeed
Gulumjanli, Ziraddin
Herber, Daniel R.
contents Integration of various electricity-generating technologies (such as natural gas, wind, nuclear, etc.) with storage systems (such as thermal, battery electric, hydrogen, etc.) has the potential to improve the economic competitiveness of modern energy systems. Driven by the need to efficiently assess the economic feasibility of various energy system configurations in early system concept development, this work outlines a versatile computational framework for assessing the net present value of various integrated storage technologies. The subsystems' fundamental dynamics are defined, with a particular emphasis on balancing critical physical and economic domains to enable optimal decision-making in the context of capacity and dispatch optimization. In its presented form, the framework formulates a linear, convex optimization problem that can be efficiently solved using a direct transcription approach in the open-source software DTQP. Three case studies demonstrate and validate the framework's capabilities, highlighting its value and computational efficiency in facilitating the economic assessment of various energy system configurations. In particular, natural gas with thermal storage and carbon capture, wind energy with battery storage, and nuclear with hydrogen are demonstrated.
format Preprint
id arxiv_https___arxiv_org_abs_2404_14583
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A general framework for supporting economic feasibility of generator and storage energy systems through capacity and dispatch optimization
Azad, Saeed
Gulumjanli, Ziraddin
Herber, Daniel R.
Systems and Control
Integration of various electricity-generating technologies (such as natural gas, wind, nuclear, etc.) with storage systems (such as thermal, battery electric, hydrogen, etc.) has the potential to improve the economic competitiveness of modern energy systems. Driven by the need to efficiently assess the economic feasibility of various energy system configurations in early system concept development, this work outlines a versatile computational framework for assessing the net present value of various integrated storage technologies. The subsystems' fundamental dynamics are defined, with a particular emphasis on balancing critical physical and economic domains to enable optimal decision-making in the context of capacity and dispatch optimization. In its presented form, the framework formulates a linear, convex optimization problem that can be efficiently solved using a direct transcription approach in the open-source software DTQP. Three case studies demonstrate and validate the framework's capabilities, highlighting its value and computational efficiency in facilitating the economic assessment of various energy system configurations. In particular, natural gas with thermal storage and carbon capture, wind energy with battery storage, and nuclear with hydrogen are demonstrated.
title A general framework for supporting economic feasibility of generator and storage energy systems through capacity and dispatch optimization
topic Systems and Control
url https://arxiv.org/abs/2404.14583