CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage

A high temporal precision model was developed to assess the performance of thermal load following micro-CHP system design variants in detail for a number of design days. Carbon savings (relative to a base-case energy system) and prime mover lifetime drivers (thermal cycling and operating duration) w...

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Main Author: Kane, David
Other Authors: Newborough, Marcus
Published: Heriot-Watt University 2012
Subjects:
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.575301
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spelling ndltd-bl.uk-oai-ethos.bl.uk-5753012016-12-08T03:19:36ZCO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storageKane, DavidNewborough, Marcus2012A high temporal precision model was developed to assess the performance of thermal load following micro-CHP system design variants in detail for a number of design days. Carbon savings (relative to a base-case energy system) and prime mover lifetime drivers (thermal cycling and operating duration) were quantified. Novel performance metrics were defined, including Potential Thermal Supply Demand Ratio, and Effective Carbon Intensity of μCHP-Generated Electricity. Significant relative carbon savings were found for design variants with a PTSDR between 0.1-1.5, suggesting that it is a design selection parameter for thermal supply/demand matching. Alternative μCHP operating regimes, restricted seasonal operation, changing thermal demand, fuel and electricity grid carbon intensities, and energy storage (using batteries and hydrogen) were studied. It was found that annual relative carbon savings in excess of 23% were achievable for appropriately-sized design variants, with relatively high electrical efficiency, once a complex control strategy is applied. The control strategy also reduces thermal cycling for the μCHP design variant (versus the Thermal Load Following operating regime), hence increasing prime mover lifetime.333.79Heriot-Watt Universityhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.575301http://hdl.handle.net/10399/2607Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 333.79
spellingShingle 333.79
Kane, David
CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
description A high temporal precision model was developed to assess the performance of thermal load following micro-CHP system design variants in detail for a number of design days. Carbon savings (relative to a base-case energy system) and prime mover lifetime drivers (thermal cycling and operating duration) were quantified. Novel performance metrics were defined, including Potential Thermal Supply Demand Ratio, and Effective Carbon Intensity of μCHP-Generated Electricity. Significant relative carbon savings were found for design variants with a PTSDR between 0.1-1.5, suggesting that it is a design selection parameter for thermal supply/demand matching. Alternative μCHP operating regimes, restricted seasonal operation, changing thermal demand, fuel and electricity grid carbon intensities, and energy storage (using batteries and hydrogen) were studied. It was found that annual relative carbon savings in excess of 23% were achievable for appropriately-sized design variants, with relatively high electrical efficiency, once a complex control strategy is applied. The control strategy also reduces thermal cycling for the μCHP design variant (versus the Thermal Load Following operating regime), hence increasing prime mover lifetime.
author2 Newborough, Marcus
author_facet Newborough, Marcus
Kane, David
author Kane, David
author_sort Kane, David
title CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
title_short CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
title_full CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
title_fullStr CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
title_full_unstemmed CO₂ savings from micro-CHP : influence of operating regimes, demand variations and energy storage
title_sort co₂ savings from micro-chp : influence of operating regimes, demand variations and energy storage
publisher Heriot-Watt University
publishDate 2012
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.575301
work_keys_str_mv AT kanedavid co2savingsfrommicrochpinfluenceofoperatingregimesdemandvariationsandenergystorage
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