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Firmansyah, Husni
Publications (2 of 2) Show all publications
Firmansyah, H., Tan, Y. & Yan, J. (2018). Power and methanol production from biomass combined with solar and wind energy: analysis and comparison. In: Yan, J Wang, C Yu, J Jia, H Wu, J Xu, T Zhang, Y (Ed.), RENEWABLE ENERGY INTEGRATION WITH MINI/MICROGRID: . Paper presented at Applied Energy Symposium and Forum on Renewable Energy Integration with Mini/Microgrid Systems (REM), OCT 18-20, 2017, Tianjin, PEOPLES R CHINA (pp. 576-581). ELSEVIER SCIENCE BV
Open this publication in new window or tab >>Power and methanol production from biomass combined with solar and wind energy: analysis and comparison
2018 (English)In: RENEWABLE ENERGY INTEGRATION WITH MINI/MICROGRID / [ed] Yan, J Wang, C Yu, J Jia, H Wu, J Xu, T Zhang, Y, ELSEVIER SCIENCE BV , 2018, p. 576-581Conference paper, Published paper (Refereed)
Abstract [en]

This study addresses the techno-economic analysis and comparison of systems for power and methanol production from biomass combined with solar and wind energy, from both technical and economic perspectives. Three different systems, based on Integrated Gasification Combined-Cycle (IGCC), Oxy-fuel combustion, and syngas gasification, were evaluated. The hydrogen required for methanol production comes from water electrolysis driven by solar and wind energy. In addition, the effect of location was discussed.

Place, publisher, year, edition, pages
ELSEVIER SCIENCE BV, 2018
Series
Energy Procedia, ISSN 1876-6102 ; 145
Keywords
Biomass, CCS, Methanol, Hydrogen, Solar, Wind
National Category
Energy Systems
Identifiers
urn:nbn:se:kth:diva-239845 (URN)10.1016/j.egypro.2018.04.084 (DOI)000450514200092 ()2-s2.0-85056531183 (Scopus ID)
Conference
Applied Energy Symposium and Forum on Renewable Energy Integration with Mini/Microgrid Systems (REM), OCT 18-20, 2017, Tianjin, PEOPLES R CHINA
Note

QC 20181219

Available from: 2018-12-19 Created: 2018-12-19 Last updated: 2022-06-26Bibliographically approved
Mazzotti, W., Firmansyah, H., Acuña, J., Stokuca, M. & Palm, B. (2018). The Newton-Raphson MethodApplied to the Time-Superposed ILS for Parameter Estimation in Thermal Response Tests. In: Jeffrey Spitler, José Acuña, Michel Bernier, Zhaohong Fang, Signhild Gehlin, Saqib Javed, Björn Palm, Simon J. Rees (Ed.), Research Conference Proceedings: International Ground-Source Heat Pump Association Research Conference 2018. Paper presented at International Ground-Source Heat Pump Association Research Conference 2018 (pp. 208-218).
Open this publication in new window or tab >>The Newton-Raphson MethodApplied to the Time-Superposed ILS for Parameter Estimation in Thermal Response Tests
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2018 (English)In: Research Conference Proceedings: International Ground-Source Heat Pump Association Research Conference 2018 / [ed] Jeffrey Spitler, José Acuña, Michel Bernier, Zhaohong Fang, Signhild Gehlin, Saqib Javed, Björn Palm, Simon J. Rees, 2018, p. 208-218Conference paper, Published paper (Refereed)
Abstract [en]

Thermal Response Testing is now a well-known and widely-used method allowing the determination of the local thermal or geometrical properties of aBorehole Heat Exchanger (BHE), those properties being critical in the design of GSHP systems. The analysis of TRTs is an inverse problem that hascommonly been solved using an approximation of the ILS solution. To do this, however, the heat rate during a TRT must be kept constant, or least be nontime-correlated, during the test, which is a challenging constraint. Applying temporal superposition to the ILS model is a way to account for varying power,although it requires the use of an optimization algorithm to minimize the error between a parametrized model and experimental values.In this paper, the Newton-Raphson method is applied to the time-superposed ILS for parameter estimation in TRTs. The parameter estimation is limitedto the effective thermal conductivity and the effective borehole resistance. Analytical expressions of the first and second derivatives of the objective function,chosen as the sum of quadratic differences, are proposed, allowing to readily inverse of the Hessian matrix and speed the convergence process.The method is tried for 9 different TRTs, 2 of which are reference datasets used for validation of the method (Beier et al., 2010). Differences betweenestimated and reference thermal conductivities are of 3.4% and 0.4% for the first and second reference TRTs, respectively. The method is shown to be stableand consistent: for each of the 9 TRTs, 11 realizations are performed with different initial values. Convergence is reached in all cases and all realizationslead to the same final values for a given TRT.The proposed convergence method is about 70% to 90% faster than the Nelder-Mead simplex and require about 8 times less iterations in average. Theconvergence speed varies between 0.3 to 13.6 s with an average of 3.7 s for all TRTs.

Keywords
Thermal Response Test, Borehole Heat Exchanger, Inverse problem, Optimization, Newton-Raphson method
National Category
Energy Engineering
Research subject
Energy Technology
Identifiers
urn:nbn:se:kth:diva-238586 (URN)10.22488/okstate.18.000039 (DOI)
Conference
International Ground-Source Heat Pump Association Research Conference 2018
Projects
Deep Boreholes for Ground-Source Heat Pumps
Funder
Swedish Energy Agency
Note

QC 20181106

Available from: 2018-11-05 Created: 2018-11-05 Last updated: 2022-06-26Bibliographically approved
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