帮助 关于我们

返回检索结果

磁流变脂在剪切模式下的流变特性
Rheological Properties of Magnetorheological Grease Under Shear Mode

查看参考文献18篇

文摘 磁流变脂材料无沉降、密封结构简单、制备容易,因而具有巨大工程应用前景,在剪切模式下的流变特性是磁流变脂缓冲器件设计和应用的基础.采用商业润滑脂为基体,制备了羟基铁粉质量分数分别为30%、50%和70%的磁流变脂.利用稳态剪切测试分析了不同铁粉质量分数的磁流变脂的黏度、剪切应力、屈服应力随剪切速率和磁场变化情况,结果表明:磁流变脂的本构关系可用Bingham模型进行描述,且在一定范围内,羟基铁粉质量分数越高,磁流变脂的黏度和剪切应力可调范围越广.以铁粉质量分数为70%的磁流变脂为例,运用大振幅振荡剪切的方法,确定线性黏弹性区间和非线性黏弹性区间的临界应变幅值为0.02%;计算该型磁流变脂在磁感应强度为0.96T时的屈服应力为24.7kPa,磁致储能模量为1.17MPa,相对磁流变效应高达3 814%.
其他语种文摘 Magnetorheological grease(MRG)has wide application prospect in the field of engineering due to the distinguished advantages such as,no settlement,simple sealing and simple preparation.The rheological properties of MRG are the basis for the design of magnetorheological absorber.In this study, lubricating grease based MRG with 30%,50% and 70% weight fraction of carbonyl iron (CI)were prepared.Rheological properties including shear viscosity and shear stress of MRG with different CI weight fraction were examined from steady shear with and without magnetic fields applied.It is found that the constitutive relation of MRG can be described by Bingham model,and the higher the weight fraction of CI particles is,the wider adjustable range of shear viscosity and shear stress of MRG can reach.The critical strain between linear viscoelastic range and nonlinear viscoelastic range of MRG with 70% CI weight fraction obtained by using the large amplitude oscillatory shear method is 0.02%.In addition,the yield stress is 24.7kPa under the magnetic field of 0.96T;the maximum magneto-induced storage modulus is 1.17MPa;the relative magnetorheological effect reaches as high as 3 814%.
来源 上海交通大学学报 ,2019,53(3):380-386 【核心库】
DOI 10.16183/j.cnki.jsjtu.2019.03.017
关键词 磁流变脂 ; 本构关系 ; 大振幅振荡剪切 ; 屈服应力 ; 磁流变效应
地址

南京理工大学机械工程学院, 南京, 210094

语种 中文
文献类型 研究性论文
ISSN 1006-2467
学科 力学
基金 国家自然科学基金
文献收藏号 CSCD:6470222

参考文献 共 18 共1页

1.  Alghamdi A A. Magneto-rheological fluid technology. 2en ed,2014:43-62 CSCD被引 1    
2.  Rankin P J. Magnetorheology in viscoplastic media. Rheologica Acta,1999,38(5):471-477 CSCD被引 17    
3.  Sahin H. Temperature dependence of magneto-rheological materials. Journal of Intelligent Material Systems and Structures,2009,20(18):2215-2222 CSCD被引 6    
4.  Park J H. Rheological properties and stability of magnetorheological fluids using viscoelastic medium and nanoadditives. Korean Journal of Chemical Engineering,2001,18(5):580-585 CSCD被引 6    
5.  Park B O. Soft magnetic carbonyl iron microsphere dispersed in grease and its rheological characteristics under magnetic field. Colloid and Polymer Science,2011,289(4):381-386 CSCD被引 12    
6.  何国田. 磁流变酯机理模拟研究. 功能材料,2011,42(3):550-552 CSCD被引 7    
7.  胡志德. 稠化剂含量对磁流变脂流变行为的影响. 功能材料,2015,46(2):2105-2108 CSCD被引 7    
8.  Shilan S T. A comparison of field-dependent rheological properties between spherical and plate-like carbonyl iron particles-based magneto-rheological fluids. Smart Material &Structures,2016,25(9):095025 CSCD被引 4    
9.  Roman C. AFM and SEM assessment of lubricating grease microstructures: Influence of sample preparation protocol,frictional working conditions and composition. Tribology Letters,2016,63(2):1-12 CSCD被引 2    
10.  Zheng J. Experimental analysis of separately controlled multi coils on the performance of MR absorber under impact loading. Journal of Intelligent Material Systems &Structures,2016,27(7):887-897 CSCD被引 5    
11.  Bombard A J F. Thin-film rheology and tribology of magnetorheological fluids in isoviscous-EHL contacts. Tribology Letters,2012,47(1):149-162 CSCD被引 3    
12.  Yin Y. The synthesis and properties of bifunctional and intelligent Fe_3O_4@titanium oxide core/shell nanoparticles. Dalton Transactions,2013,42(19):7233-7240 CSCD被引 3    
13.  Susan R D. Yield stress and flow behavior of concentrated ferrofluid-based magnetorheological fluids:The influence of composition. Rheologica Acta,2014,53(8):645-653 CSCD被引 3    
14.  Gong X. The investigation on the nonlinearity of plasticine-like magnetorheological material under oscillatory shear rheometry. Journal of Rheology,2012,56(6):1375-1391 CSCD被引 4    
15.  Guo F. The Preparation and testing of rheological properties for single-and double-grading magnetorheological composite gels. Key Engineering Materials,2017,730(28):65-71 CSCD被引 3    
16.  Segoviagutierrez J P. Nonlinear viscoelasticity and two-step yielding in magnetorheology:A colloidal gel approach to understand the effect of particle concentration. Journal of Rheology,2012,56(6):1429-1448 CSCD被引 3    
17.  Mohamad N. The field-dependent rheological properties of magnetorheological grease based on carbonyl-iron-particles. Smart Material Structures,2016,25(9):095043 CSCD被引 8    
18.  Mazlan S A. Potential applications of magnetorheological elastomers. Applied Mechanics & Materials,2014,663(43):12-14 CSCD被引 2    
引证文献 12

1 叶绪丹 振荡剪切模式下磁流变脂法向力特性分析 湖南大学学报. 自然科学版,2020,47(4):49-56
CSCD被引 2

2 杨广鑫 热磁耦合作用下磁流变脂剪切稳定性及其机理 化工进展,2021,40(8):4428-4437
CSCD被引 6

显示所有12篇文献

论文科学数据集
PlumX Metrics
相关文献

 作者相关
 关键词相关
 参考文献相关

版权所有 ©2008 中国科学院文献情报中心 制作维护:中国科学院文献情报中心
地址:北京中关村北四环西路33号 邮政编码:100190 联系电话:(010)82627496 E-mail:cscd@mail.las.ac.cn 京ICP备05002861号-4 | 京公网安备11010802043238号