ON THIS PAGE

Hydrogen Demand and Carbon Retention in Methanol Production From Plastic-Derived Syngas

Georgi E. Karadzhov1, Maria Ivanova1
1Institute of Mathematics and Informatics, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria

Abstract

A high H\(_2\)/CO ratio can overstate the suitability of plastic-derived synthesis gas for methanol production when CO\(_2\) is also present. This study quantifies the hydrogen requirement and carbon-retention limit of ten-batch polyethylene-reforming gas containing 229.3 mmol H\(_2\), 95.1 mmol CO, 37.7 mmol CO\(_2\), and 36.9 mmol CH\(_4\). An analytical stoichiometric bound is verified by reaction-network linear programming and used to compare hydrogen addition, selective CO\(_2\) removal, water–gas shift, and conditional methane reforming. Despite an H\(_2\)/CO ratio of 2.411, the gas has a methanol stoichiometric number of 1.443 and a 74.0 mmol hydrogen deficit. Without additional hydrogen, the methanol ceiling is 108.13 mmol, corresponding to 81.43% of the initial carbon-oxide carbon. Removing 24.67 mmol CO\(_2\) balances the retained gas without increasing this ceiling; adding 74.0 mmol H\(_2\) instead permits retention of all 132.8 mmol carbon oxides. Water–gas shift leaves the deficit unchanged. Complete steam reforming of the measured methane would raise the ceiling to 157.33 mmol but leave a 37.1 mmol hydrogen deficit for the enlarged carbon pool. Independent \(\pm5\%\) composition perturbations give deficits of 47.37–100.63 mmol. Numerical and analytical results agree across 10,201 conditioning points. The results quantify the carbon cost of reducing external hydrogen demand; they are stoichiometric limits, not measured methanol yields or predictions of plant performance.

Related Articles
Liudmyla Shlieina1, Anatolii Furman2, Mariia Zaitseva3, Uliana Maraieva3, Ruslan Lavlinskyy4
1Department of Ukrainian Studies/Department of Social Sciences and Humanities, Educational and Scientific Institute of General University Training, Dmytro Motornyi Tavria State Agrotechnological University, Zaporizhzhia, Ukraine
2Department of Psychology and Social Work, West Ukrainian National University, Ternopil, Ukraine
3Department of Philosophy, Faculty of Social Sciences, Uzhhorod National University, Uzhhorod, Ukraine
4Department of Psychology, Interregional Academy of Personnel Management, Kyiv, Ukraine
Jian Zhang1,2, Yuxuan Zheng2,3, Feng Ye1,2, Xin Liu3, An Zeng3
1School of Information Science and Technology, University of Science and Technology of China, Hefei 230000, Anhui, China
2Product R&D Center, Communication Brain Technology (Zhejiang) Co., Ltd., Hangzhou 310000, Zhejiang, China
3School of Computer Science and Technology, East China Normal University, Shanghai 200333, China
Silvia Jakabová1, Veronika Michvocíková2, Leoš Stanek1
1DTI University, Sládkovičova 533/20, 018 41 Dubnica nad Váhom, Slovakia
2University of Ss. Cyril and Methodius in Trnava, Nám. J. Herdu 2, 917 01 Trnava, Slovakia
Xiaokai Duan1
1Faculty of Humanities, Zhejiang Guangsha Vocational and Technical University of Construction, Dongyang City, Zhejiang Province 322100, China
Yevhen Kryvokhyzha1, Liudmyla Melko2, Olesia Dolynska3, Volodymyr Velykochyy4, Maryna Kryvoberets5
1Department of Food Technologies, Hotel and Restaurant Services, Chernivtsi Institute of Trade and Economics of the State University of Trade and Economics, Chernivtsi, Ukraine
2Department of Tourism, KROK University, Kyiv, Ukraine
3Department of Tourism, Theory and Methods of Physical Education, and Valeology, Khmelnytskyi Humanitarian-Pedagogical Academy, Khmelnytskyi, Ukraine
4Faculty of Tourism, Vasyl Stefanyk Carpathian National University, Ivano-Frankivsk, Ukraine
5Interregional Academy of Personnel Management, Kyiv, Ukraine

Citation

Georgi E. Karadzhov, Maria Ivanova. Hydrogen Demand and Carbon Retention in Methanol Production From Plastic-Derived Syngas[J], Archives Des Sciences, Volume 75 , Issue 6, 2025. 31-39. DOI: https://doi.org/10.68304/as/75604.