The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary

This paper presents the steps and methods of producing the IO-E3 Economy-Electricity-Emissions input-output table for Hungary, which contains 28 industries, 8 sub-industries of electric power plants, and 5 final demand categories. Simulations performed with the model show that the ongoing 120 % expa...

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Main Author: Krisztián Koppány
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2024-12-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/15028
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author Krisztián Koppány
author_facet Krisztián Koppány
author_sort Krisztián Koppány
collection DOAJ
description This paper presents the steps and methods of producing the IO-E3 Economy-Electricity-Emissions input-output table for Hungary, which contains 28 industries, 8 sub-industries of electric power plants, and 5 final demand categories. Simulations performed with the model show that the ongoing 120 % expansion of nuclear capacity can result in a 55.2 %, 35.1 %, and 30.1 % increase in electricity production, value-added, and greenhouse gas emissions if the structure of final demand and technology are not changed. Smart use of the predicted 17.48 TWh of electricity surplus, however, must precisely aim these changes to best serve Hungary's sustainability transition through harnessing technological developments and by changing economic structures.
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publisher AIDIC Servizi S.r.l.
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series Chemical Engineering Transactions
spelling doaj-art-68dcbdee5bb345a7a7849c8b305fdfec2025-08-20T02:39:32ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162024-12-01114The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for HungaryKrisztián KoppányThis paper presents the steps and methods of producing the IO-E3 Economy-Electricity-Emissions input-output table for Hungary, which contains 28 industries, 8 sub-industries of electric power plants, and 5 final demand categories. Simulations performed with the model show that the ongoing 120 % expansion of nuclear capacity can result in a 55.2 %, 35.1 %, and 30.1 % increase in electricity production, value-added, and greenhouse gas emissions if the structure of final demand and technology are not changed. Smart use of the predicted 17.48 TWh of electricity surplus, however, must precisely aim these changes to best serve Hungary's sustainability transition through harnessing technological developments and by changing economic structures.https://www.cetjournal.it/index.php/cet/article/view/15028
spellingShingle Krisztián Koppány
The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
Chemical Engineering Transactions
title The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
title_full The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
title_fullStr The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
title_full_unstemmed The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
title_short The Construction and Application of the Economy-Electricity-Emissions Input-Output (IO-E3) Table for Hungary
title_sort construction and application of the economy electricity emissions input output io e3 table for hungary
url https://www.cetjournal.it/index.php/cet/article/view/15028
work_keys_str_mv AT krisztiankoppany theconstructionandapplicationoftheeconomyelectricityemissionsinputoutputioe3tableforhungary
AT krisztiankoppany constructionandapplicationoftheeconomyelectricityemissionsinputoutputioe3tableforhungary