Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches
Caragana korshinskii (C.K.) flat stubble residue is an abundant biomass energy source in China. Because branch cutting is closely related to the harvesting of forest biomass, it is practical for forestry production and ecological development to investigate the effects of cutting parameters on the pe...
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Format: | Article |
Language: | English |
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North Carolina State University
2022-11-01
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Series: | BioResources |
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Online Access: | https://ojs.cnr.ncsu.edu/index.php/BRJ/article/view/22085 |
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author | Yaoyao Gao Xiaoya Hu Siyuan Tong Jiangming Kan Yutan Wang Feng Kang |
author_facet | Yaoyao Gao Xiaoya Hu Siyuan Tong Jiangming Kan Yutan Wang Feng Kang |
author_sort | Yaoyao Gao |
collection | DOAJ |
description | Caragana korshinskii (C.K.) flat stubble residue is an abundant biomass energy source in China. Because branch cutting is closely related to the harvesting of forest biomass, it is practical for forestry production and ecological development to investigate the effects of cutting parameters on the peak cutting force and cutting energy consumption of C.K. branches. In this study, the effect of cutting parameters on the peak cutting force and cutting power consumption of branches was investigated by single-factor and multi-factor tests using an independently developed reciprocating cutting test bench, and an optimization model was established. The interaction term of average cutting speed and tool cutting edge inclination angle significantly affected the peak cutting force, while the interaction term of cutting clearance and wedge angle had a significant effect on the cutting energy consumption. The optimal combination of cutting parameters was an average cutting speed of 0.5 m/s, cutting clearance of 1.4 mm, wedge angle of 25°, and tool cutting edge inclination angle of 20°. With this combination of parameters, the corresponding peak cutting force was 644.38 N, and the cutting energy consumption was 5.90 J, which was less than 5% relative error between each performance index and the theoretical optimized value. |
first_indexed | 2024-03-13T03:08:34Z |
format | Article |
id | doaj.art-2a8f1e75a43148518cd022afcbe5a4b8 |
institution | Directory Open Access Journal |
issn | 1930-2126 |
language | English |
last_indexed | 2024-03-13T03:08:34Z |
publishDate | 2022-11-01 |
publisher | North Carolina State University |
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series | BioResources |
spelling | doaj.art-2a8f1e75a43148518cd022afcbe5a4b82023-06-26T18:26:00ZengNorth Carolina State UniversityBioResources1930-21262022-11-011746325634087Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii BranchesYaoyao Gao0Xiaoya Hu1Siyuan Tong2Jiangming Kan3Yutan Wang4Feng Kang5School of Technology, Beijing Forestry UniversityNingxia UniversityBeijing Forestry UniversityBeijing Forestry University Ningxia UniversityBeijing Forestry UniversityCaragana korshinskii (C.K.) flat stubble residue is an abundant biomass energy source in China. Because branch cutting is closely related to the harvesting of forest biomass, it is practical for forestry production and ecological development to investigate the effects of cutting parameters on the peak cutting force and cutting energy consumption of C.K. branches. In this study, the effect of cutting parameters on the peak cutting force and cutting power consumption of branches was investigated by single-factor and multi-factor tests using an independently developed reciprocating cutting test bench, and an optimization model was established. The interaction term of average cutting speed and tool cutting edge inclination angle significantly affected the peak cutting force, while the interaction term of cutting clearance and wedge angle had a significant effect on the cutting energy consumption. The optimal combination of cutting parameters was an average cutting speed of 0.5 m/s, cutting clearance of 1.4 mm, wedge angle of 25°, and tool cutting edge inclination angle of 20°. With this combination of parameters, the corresponding peak cutting force was 644.38 N, and the cutting energy consumption was 5.90 J, which was less than 5% relative error between each performance index and the theoretical optimized value.https://ojs.cnr.ncsu.edu/index.php/BRJ/article/view/22085cutting energy consumptionreciprocating cuttercutting parametersbioenergycaragana korshinskiibranches |
spellingShingle | Yaoyao Gao Xiaoya Hu Siyuan Tong Jiangming Kan Yutan Wang Feng Kang Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches BioResources cutting energy consumption reciprocating cutter cutting parameters bioenergy caragana korshinskii branches |
title | Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches |
title_full | Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches |
title_fullStr | Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches |
title_full_unstemmed | Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches |
title_short | Multi-objective Optimization of Peak Cutting Force and Cutting Energy Consumption in Cutting of Caragana korshinskii Branches |
title_sort | multi objective optimization of peak cutting force and cutting energy consumption in cutting of caragana korshinskii branches |
topic | cutting energy consumption reciprocating cutter cutting parameters bioenergy caragana korshinskii branches |
url | https://ojs.cnr.ncsu.edu/index.php/BRJ/article/view/22085 |
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