Determination of biogas fuel compression ratio for agricultural machinery fueling

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BACKGROUND: Agricultural machinery is the main consumer of liquid petroleum-product fuel in the countryside of Republic of Sakha (Yakutia). Even partial machinery transition to biogas fuel would reduce consumption of liquid petroleum-product fuel, in this regard, first of all, it is necessary to determine biogas fuel compression ratio for agricultural machinery fueling. A number of experimental works is demanded to carry out to determine compression ratio of biogas fuel of different compositions.

AIMS: Determination of compression ratio of biogas fuel of different composition for agricultural machinery fueling with a compressor.

METHODS: Experimental determination of biogas fuel compression ratio carried out with the UGK-3 test facility. Based on obtained experimental data, numerical simulation was carried out with CurveExpert and MS Excel software (for data set linear approximation).

RESULTS: Based on Mendeleev-Clapeyron ideal gas law, the formula for theoretical calculation of compression ratio of biogas fuel of different chemical compositions. In order to obtain experimental data, a number of experimental works was carried out with the UGK-3 test facility, updated for considering of biogas fuel compression ratio in various conditions. According to the results of linear approximation, with increasing of methane volume fraction, biogas fuel compression ratio tends to values of pure methane compression ratio taken from GOST 30319.2-2019.

CONCLUSIONS: Practical utility of the study lies in ability of using the proposed method of calculation of compression ratio during vehicle fueling with biogas fuel for the sake of safe and effective fueling.

作者简介

Nikolay Petrov

North-Eastern federal university named after M.K. Ammosov Yakutsk

编辑信件的主要联系方式.
Email: petnikvad1988@mail.ru
ORCID iD: 0000-0002-8927-7828
SPIN 代码: 7971-2057

Cand. Sci. (Tech.), Associate Professor of the Operation of Road Transport and Vehicle Maintenance Department of the Road Faculty

俄罗斯联邦, Republic of Sakha (Yakutia)

参考

  1. Lapshin VI, Kruglov YuYu, Zheltov AP. Experimental determination of the supercompressibility coefficient of gas mixtures with a high content of H2S, CO2. Ekspress-inform. Ser. Razrabotka i ekspluatatsiya gazovykh i gazokondensatnykh mesto-rozhdeniy. 1988;1:32–33. (in Russ).
  2. Lapshin VI, Volkov AN, Shafiev IM. Installations for thermodynamic studies of reservoir oil and gas condensate systems of OAO Gazprom fields. Vesti gazovoy nauki. 2011:92–102. (in Russ).
  3. Manuilov AV, Rodionov VI. Chemistry, 8th and 11th grades. Three levels of study. Novosibirsk: NGU; 1998. (in Russ).
  4. Saushev AV. Methods for linear approximation of the boundary points of the areas of operability of technical systems. Vestnik gosudarstvennogo universiteta morskogo i rechnogo flota im. admirala SO Makarova. 2013;3(19):41–51. (in Russ).
  5. GOST 30319.2-96. Gaz prirodnyy. Metody rascheta fizicheskikh svoystv. Available from: https://docs.cntd.ru/document/1200002059 Accessed: 10.07.2022. (in Russ).
  6. Compressor Coltri MCH-10. Methane filling equipment [internet]. Available from: https://ecofuel.su/index.php?page=shop.product_details&flypage=flypage.tpl&category_id=38&product_id=490&option=com_virtuemart&Itemid=141 Accessed: 10.07.2022.

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2. Fig. 1. Scheme of the UGK-3 test facility for biogas fuel compression ratio study: 1 – a balance bomb; 2 – a separatory piston; 3 – a magnetic coil; 4 – a carbon dioxide inflow valve; 5 – a temperature-controlled separator; 6 – a plunge-type pump; 7 – barrels for liquid; 8 – spring pressure gauges; 9 – an electric contact pressure gauge; 10 – cutoff valves.

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3. Fig. 2. Dependency graph of experimental and theoretical results.

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4. Fig. 3. Theoretical dependence of biogas fuel compression ratio.

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