College of Optoelectronic Engineering, Chongqing University, Chongqing 400044, P. R. China;The Key Laboratory of Optoelectronic Technology & Systems, Ministry of Education, Chongqing University, Chongqing 400044, P. R. China 在期刊界中查找 在百度中查找 在本站中查找
The Key Laboratory of Optoelectronic Technology & Systems, Ministry of Education, Chongqing University, Chongqing 400044, P. R. China 在期刊界中查找 在百度中查找 在本站中查找
It is of great significance to establish an in-situ settlement monitoring system for the magnetorheological (MR) fluid in devices. By studying the relationship between the concentration gradient of MR fluid and the dielectric constant of the sediment, a monitoring method and system based on an open-plate capacitor is designed. The influence of center pillar height on the electric field distribution is simulated, and the in-situ monitoring of MR fluid show that the system can effectively measure the static settlement of magnetorheological fluid. The dielectric constant of the sediment increases with the heightening of concentration, and the sedimentation ratio lowers with the development of the settling process.
Li K Q, Dai J, Chang H, et al. Review of magnetorheological materials application[J]. Journal of Detection & Control, 2019, 41(1):6-14. (in Chinese)
[2] Choi Y T, Xie L, Wereley N M. Testing and analysis of magnetorheological fluid sedimentation in a column using a vertical axis inductance monitoring system[J]. Smart Materials and Structures, 2016, 25(4):04LT01.
[3] Cheng H B, Zhang X P, Liu G Z, et al. Measuring the sedimentation rate in a magnetorheological fluid column via thermal conductivity monitoring[J]. Smart Materials and Structures, 2016, 25(5):055007.
[4] Vežys J, Dragašius E, Volkovas V, et al. The sedimentation of magneto-rheological fluid monitoring system based on resistivity measuring[J]. Mechanics, 2016, 22(5):449-452.
Chen L S, Chen D Y, Huang Z Y, et al. Research on inductance methods of measuring the sedimentation constant of MRF[J]. Instrument Technique and Sensor, 2002(10):50-52, 54. (in Chinese)
Lin Z H. Study on dielectric constant of magnetorheological fluid[C]//Proceedings of the 5th fujian association for science and technology annual conference on digital manufacturing and other advanced manufacturing technologies. Xiamen, 2005:408-411.
Zhao J Z, Sun F T, Wang F C, et al. Magneto-rheological fluid static sedimentation characteristic measurement method study based on the capacitivity testing[J]. Journal of Functional Materials, 2017, 48(8):8092-8096. (in Chinese)
[8] Aruna M N, Rahman M R, Joladarashi S, et al. Influence of additives on the synthesis of carbonyl iron suspension on rheological and sedimentation properties of magnetorheological (MR) fluids[J]. Materials Research Express, 2019, 6(8):086105.
[9] Wen M F, Chambers J, Sherman S G, et al. Monitoring sedimentation of magnetorheological fluids using a vertical axis monitoring system with a low aspect ratio sensor coil[J]. Smart Materials and Structures, 2019, 28(2):025-039.
[10] Zhang Y J, Li D C, Zhang Z L. The study of magnetorheological fluids sedimentation behaviors based on volume fraction of magnetic particles and the mass fraction of surfactants[J]. Materials Research Express, 2020, 6(12):126-127.
Liao C R, Zhang H H, Yu M, et al. Study on test methodology and instrument for rheological properties of magneto-rheological fluids[J]. Chinese Journal of Scientific Instrument, 2008, 29(12):2475-2479. (in Chinese)
Zhang X F. Study of oil monitoring technology based on dielectric constant measurement[D]. Changsha:National University of Defense Technology, 2008. (in Chinese)
Zhao M M, Zhang J Q, Yao J, et al. Analysis of magnetorheological fluid settling stability influence factors[J]. Metallic Functional Materials, 2017, 24(3):29-32.(in Chinese)
[14] Zhu W N, Dong X F, Huang H, et al. Enhanced magnetorheological effect and sedimentation stability of bimodal magnetorheological fluids doped with iron nanoparticles[J]. Journal of Intelligent Material Systems and Structures, 2021, 32(12):1271-1277.