[1]ALGHAMDI A A, LOSTADO R, OLABI A G. Magneto-rheological fluid technology[M]. 2en ed. Berlin: Springer, 2014: 43-62.
[2]RANKIN P J, HORVATH A T, KLINGENBERG D J. Magnetorheology in viscoplastic media[J]. Rheologica Acta, 1999, 38(5): 471-477.
[3]SAHIN H, WANG X, GORDANINEJAD F. Temperature dependence of magneto-rheological materials[J]. Journal of Intelligent Material Systems and Structures, 2009, 20(18): 2215-2222.
[4]PARK J H, KWON M H, PARK O O. Rheological properties and stability of magnetorheological fluids using viscoelastic medium and nanoadditives[J]. Korean Journal of Chemical Engineering, 2001, 18(5): 580-585.
[5]PARK B O, PARK B J, HATO M J, et al. Soft magnetic carbonyl iron microsphere dispersed in grease and its rheological characteristics under magnetic field[J]. Colloid and Polymer Science, 2011, 289(4): 381-386.
[6]何国田, 廖昌荣, 邓绍更, 等. 磁流变酯机理模拟研究[J]. 功能材料, 2011, 42(3): 550-552.
HE Guotian, LIAO Changrong, DENG Shaogeng, et al. Mechanism simulation of magnetorheological grease[J]. Journal of Functional Materials, 2011, 42(3): 550-552.
[7]胡志德, 晏华, 王雪梅, 等. 稠化剂含量对磁流变脂流变行为的影响[J]. 功能材料, 2015, 46(2): 2105-2108.
HU Zhide, YAN Hua, WANG Xuemei, et al. The effect of soap content on the rheology of mineral oil-based magnetorheological grease[J]. Journal of Functional Materials, 2015, 46(2): 2105-2108.
[8]SHILAN S T, AMRI M S, IDO Y, et al. A compa-rison of field-dependent rheological properties between spherical and plate-like carbonyl iron particles-based magneto-rheological fluids[J]. Smart Material & Structures, 2016, 25(9): 095025.
[9]ROMAN C, VALENCIA C, FRANCO J M. AFM and SEM assessment of lubricating grease microstructures: Influence of sample preparation protocol, frictional working conditions and composition[J]. Tribo-logy Letters, 2016, 63(2): 1-12.
[10]ZHENG J, OUYANG Q, LI Z, et al. Experimental analysis of separately controlled multi coils on the performance of MR absorber under impact loading[J]. Journal of Intelligent Material Systems & Structures, 2016, 27(7): 887-897.
[11]BOMBARD A J F, VICENTE J D. Thin-film rheology and tribology of magnetorheological fluids in isoviscous-EHL contacts[J]. Tribology Letters, 2012, 47(1): 149-162.
[12]YIN Y, LIU C, WANG B, et al. The synthesis and properties of bifunctional and intelligent Fe3O4@titanium oxide core/shell nanoparticles.[J]. Dalton Transactions, 2013, 42(19): 7233-7240.
[13]SUSAN R D, VKS L. Yield stress and flow behavior of concentrated ferrofluid-based magnetorheological fluids: The influence of composition[J]. Rheologica Acta, 2014, 53(8): 645-653.
[14]GONG X, XU Y, XUAN S, et al. The investigation on the nonlinearity of plasticine-like magnetorheological material under oscillatory shear rheometry[J]. Journal of Rheology, 2012, 56(6): 1375-1391.
[15]GUO F, LIN X G, YU G J. The Preparation and testing of rheological properties for single- and double-grading magnetorheological composite gels[J]. Key Engineering Materials, 2017, 730(28): 65-71.
[16]SEGOVIAGUTIRREZ J P, BERLI C L A, VICENTE J D. Nonlinear viscoelasticity and two-step yielding in magnetorheology: A colloidal gel approach to understand the effect of particle concentration[J]. Journal of Rheology, 2012, 56(6): 1429-1448.
[17]MOHAMAD N, MAZLAN S A, CHOI S B, et al. The field-dependent rheological properties of magnetorheological grease based on carbonyl-iron-particles[J]. Smart Material Structures, 2016, 25(9): 095043.
[18]MAZLAN S A, SUTRISNO J, ZAMZURI H. Potential applications of magnetorheological elastomers[J]. Applied Mechanics & Materials, 2014, 663(43): 12-14. |