When net-zero falls short of carbon neutrality: Assessing dynamic life-cycle carbon integrity in grid-connected building microgrids
| dc.contributor.author | Gur, Muhammed | |
| dc.contributor.author | Oztop, Hakan F. | |
| dc.contributor.author | Hepbasli, Arif | |
| dc.date.accessioned | 2026-09-08T07:13:28Z | |
| dc.date.issued | 2026 | |
| dc.department | Fırat Üniveristesi | |
| dc.description.abstract | This study develops an integrated framework coupling the Transient System Simulation Tool (TRNSYS), the Hybrid Optimization Model for Multiple Energy Resources (HOMER) Pro, SimaPro, and hourly carbon accounting to evaluate a U.S. Department of Energy (DOE) Medium Office reference building in Istanbul, Phoenix, Miami, and Stockholm. Hourly building loads generated in TRNSYS are used in HOMER Pro to optimize gridconnected photovoltaic (PV)-lithium-ion battery-converter microgrids under cost-optimal and annual net-zero definitions. SimaPro quantifies the replacement-inclusive embodied impacts of the optimized PV and converter systems. To ensure cross-location comparability, the hourly grid carbon-intensity datasets are harmonized to a direct operational electricity-generation boundary while an identical embodied-LCA system boundary is applied across all locations. Results show that none of the configurations satisfying annual net-zero or annual netexport conditions reached the dynamic life-cycle carbon-neutrality threshold of DNZII >= 1. Istanbul S2 achieved annual net-zero energy balance but reached a DNZII of only 0.765. Miami S2 achieved DNZII values of 0.627 in 2025 and 0.628 in 2030, before declining to 0.219 in 2050. Stockholm S2 also satisfied annual net-zero energy balance but reached a DNZII of only 1.46 & times; 10- 4, because the direct operational carbon values of both imports and exports were negligible relative to the embodied infrastructure burden. A supplementary time-value-ofcarbon sensitivity further reduced all DNZII values; for example, Istanbul S2 decreased from 0.7646 to 0.68 and 0.5763 under carbon discount rates of 3% and 7%, respectively, without changing any neutrality classification. The cost-optimal Phoenix configuration provides the clearest counterexample: despite being an annual net exporter, its DNZII decreased from 0.55 in 2025 to 0.237 in 2030 and 0.0028 in 2050. These results demonstrate that annual net-zero is an energy-accounting condition whereas carbon neutrality requires consistent system boundaries, temporally resolved grid-carbon accounting, and replacement-inclusive embodied life-cycle assessment. | |
| dc.identifier.doi | 10.1016/j.scs.2026.107843 | |
| dc.identifier.issn | 2210-6707 | |
| dc.identifier.issn | 2210-6715 | |
| dc.identifier.uri | https://doi.org/10.1016/j.scs.2026.107843 | |
| dc.identifier.uri | https://hdl.handle.net/11508/65462 | |
| dc.identifier.volume | 149 | |
| dc.identifier.wos | WOS:001860459800001 | |
| dc.identifier.wosquality | Q1 | |
| dc.indekslendigikaynak | Web of Science | |
| dc.language.iso | en | |
| dc.publisher | Elsevier | |
| dc.relation.ispartof | Sustainable Cities and Society | |
| dc.relation.publicationcategory | Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı | |
| dc.rights | info:eu-repo/semantics/closedAccess | |
| dc.snmz | KA_WOS_20250903 | |
| dc.subject | Annual Net-Zero Energy | |
| dc.subject | Dynamic Life-Cycle Carbon Neutrality | |
| dc.subject | Building Microgrids | |
| dc.subject | Hourly Grid Carbon Intensity | |
| dc.subject | Life-Cycle Assessment | |
| dc.subject | Dynamic Net-Zero Integrity Index (Dnzii) | |
| dc.title | When net-zero falls short of carbon neutrality: Assessing dynamic life-cycle carbon integrity in grid-connected building microgrids | |
| dc.type | Article |







