Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam

Flotation is an interfacial separation technique that achieves selective separation of valuable minerals from gangue based on differences in particle surface hydrophobicity. Its core functional unit is bubble- particle mineralization. The interaction force between bubble and particle directly determ...

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Main Authors: Xibing REN, Lijuan SUN, Qinshan LIU, Yulong CHENG, Xiahui GUI, Yaowen XING
Format: Article
Language:zho
Published: Editorial Office of Journal of China Coal Society 2025-06-01
Series:Meitan xuebao
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Online Access:http://www.mtxb.com.cn/article/doi/10.13225/j.cnki.jccs.2025.0166
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author Xibing REN
Lijuan SUN
Qinshan LIU
Yulong CHENG
Xiahui GUI
Yaowen XING
author_facet Xibing REN
Lijuan SUN
Qinshan LIU
Yulong CHENG
Xiahui GUI
Yaowen XING
author_sort Xibing REN
collection DOAJ
description Flotation is an interfacial separation technique that achieves selective separation of valuable minerals from gangue based on differences in particle surface hydrophobicity. Its core functional unit is bubble- particle mineralization. The interaction force between bubble and particle directly determine the efficiency of bubble-particle mineralization and serve as a crucial window into the microscopic mechanism of flotation. However, high-precision and low-cost measurement of the force at the nano- and micro-scale has always been a significant challenge in this field. To address this, a new method for bubble-particle interaction force measurement based on resistance strain cantilever beam was proposed, which employs the principle of resistive strain to detect small deformation when force acting on an aluminum alloy cantilever beam. A Wheatstone bridge circuit was designed to complete the conversion, amplification, and output of resistance change into voltage signal. Subsequently, a self-constructed flotation micro-force testing system was developed, composed of resistance strain cantilever beam force sensor, displacement drive system, image acquisition system, signal amplification and acquisition system, control unit, and vibration isolation platform. The influence of particle surface hydrophobicity, bubble size, and bubble approach velocity on the interaction forces between bubble and particle was explored using the system. The results showed that the linear fitting adjusted R2 value of the calibration test result of the flotation micro-force testing system was 0.99989, exhibiting excellent linear response characteristic. The force sensitivity of the system was 72.57563 μN/mV, and the lower limit of actual force detection was about 2 μN. The adhesion force between bubble and particle showed a monotonic increasing trend with the increase of surfacecontact angle and bubble size. In the velocity range of 20-60 μm/s, the small gradient of bubble approaching velocity had little effect on the adhesion force. The experimental force measurements aligned closely with the theoretical predictions using the Young-Laplace equation. The flotation micro-force testing system offers simple and robust structure, high sensitivity, and cost-effective manufacturing, which promise broad applications in the basic research field of flotation interface interaction.
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issn 0253-9993
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publishDate 2025-06-01
publisher Editorial Office of Journal of China Coal Society
record_format Article
series Meitan xuebao
spelling doaj-art-3f8d60286f7c4d5ca472c17967ec83812025-08-20T03:13:10ZzhoEditorial Office of Journal of China Coal SocietyMeitan xuebao0253-99932025-06-015063174318210.13225/j.cnki.jccs.2025.01662025-0166Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beamXibing REN0Lijuan SUN1Qinshan LIU2Yulong CHENG3Xiahui GUI4Yaowen XING5State Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaState Key Laboratory of Coking Coal Resources Green Exploitation, China University of Mining and Technology, Xuzhou 221116, ChinaFlotation is an interfacial separation technique that achieves selective separation of valuable minerals from gangue based on differences in particle surface hydrophobicity. Its core functional unit is bubble- particle mineralization. The interaction force between bubble and particle directly determine the efficiency of bubble-particle mineralization and serve as a crucial window into the microscopic mechanism of flotation. However, high-precision and low-cost measurement of the force at the nano- and micro-scale has always been a significant challenge in this field. To address this, a new method for bubble-particle interaction force measurement based on resistance strain cantilever beam was proposed, which employs the principle of resistive strain to detect small deformation when force acting on an aluminum alloy cantilever beam. A Wheatstone bridge circuit was designed to complete the conversion, amplification, and output of resistance change into voltage signal. Subsequently, a self-constructed flotation micro-force testing system was developed, composed of resistance strain cantilever beam force sensor, displacement drive system, image acquisition system, signal amplification and acquisition system, control unit, and vibration isolation platform. The influence of particle surface hydrophobicity, bubble size, and bubble approach velocity on the interaction forces between bubble and particle was explored using the system. The results showed that the linear fitting adjusted R2 value of the calibration test result of the flotation micro-force testing system was 0.99989, exhibiting excellent linear response characteristic. The force sensitivity of the system was 72.57563 μN/mV, and the lower limit of actual force detection was about 2 μN. The adhesion force between bubble and particle showed a monotonic increasing trend with the increase of surfacecontact angle and bubble size. In the velocity range of 20-60 μm/s, the small gradient of bubble approaching velocity had little effect on the adhesion force. The experimental force measurements aligned closely with the theoretical predictions using the Young-Laplace equation. The flotation micro-force testing system offers simple and robust structure, high sensitivity, and cost-effective manufacturing, which promise broad applications in the basic research field of flotation interface interaction.http://www.mtxb.com.cn/article/doi/10.13225/j.cnki.jccs.2025.0166flotationbubble-particleinteraction forceresistance straincantilever beam
spellingShingle Xibing REN
Lijuan SUN
Qinshan LIU
Yulong CHENG
Xiahui GUI
Yaowen XING
Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
Meitan xuebao
flotation
bubble-particle
interaction force
resistance strain
cantilever beam
title Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
title_full Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
title_fullStr Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
title_full_unstemmed Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
title_short Investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
title_sort investigation on the interaction force measurement between bubble and particle in flotation based on resistance strain cantilever beam
topic flotation
bubble-particle
interaction force
resistance strain
cantilever beam
url http://www.mtxb.com.cn/article/doi/10.13225/j.cnki.jccs.2025.0166
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AT qinshanliu investigationontheinteractionforcemeasurementbetweenbubbleandparticleinflotationbasedonresistancestraincantileverbeam
AT yulongcheng investigationontheinteractionforcemeasurementbetweenbubbleandparticleinflotationbasedonresistancestraincantileverbeam
AT xiahuigui investigationontheinteractionforcemeasurementbetweenbubbleandparticleinflotationbasedonresistancestraincantileverbeam
AT yaowenxing investigationontheinteractionforcemeasurementbetweenbubbleandparticleinflotationbasedonresistancestraincantileverbeam