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A new class of electrorheological material: synthesis and electrorheological performance of rare earth complexes of phosphate cellulose

机译:一类新的电流变材料:磷酸纤维素稀土配合物的合成和电流变性能

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A new class of electrorheological (ER) material, rare earth (RE = Ce, Gd, Er and Y) complexes of phosphate cellulose, has been synthesized using microcrystalline cellulose, phosphoric acid, urea and RE(NO3)3 solutions as starting materials. The ER properties of suspensions of microcrystalline cellulose, phosphate cellulose [cellulose-P-ONH4] and the [cellulose(-P-O)(3)RE] complex particle materials in silicon oil have been investigated under DC electric field. The formation of rare earth complexes helps to decrease the shear stress and viscosity at zero electric field, and to enhance the ER effect of the materials. The shear stress (tau(E)) of the ER fluid (20% weight fraction) of a typical yttrium complex [cellulose(-P-O)(3)Y], the yttrium content of which is 0.04 mol/100 g, is 2.3 kPa at 4.2 kV/mm and 300 s(-1) with a tau(r) value (tau(r) = tau(E)/tau(0), where tau(0) is the shear stress at no electric field and 300 s(-1)) of 34.3, which is 18 times higher than that of pure microcrystalline cellulose suspensions. The improvement of dielectric loss tangent of the material, due solely to the formation of rare earth complexes, resulted in an enhancement in the ER effect of the material. In addition, the cellulose(-P-O)(3)RE materials possess better thermal stability, and their suspensions are more stable in the anti-sedimentation than that of the cellulose-P-ONH4 material. (c) 2006 Springer Science + Business Media, Inc.
机译:以微晶纤维素,磷酸,尿素和RE(NO3)3溶液为起始原料,合成了一种新型的电流变(ER)材料,即磷酸纤维素的稀土(RE = Ce,Gd,Er和Y)配合物。在直流电场下研究了微晶纤维素,磷酸纤维素[纤维素-P-ONH4]和[纤维素(-P-O)(3)RE]复合颗粒材料在硅油中的悬浮液的ER性能。稀土配合物的形成有助于降低零电场下的剪切应力和粘度,并增强材料的ER效应。钇含量为0.04 mol / 100 g的典型钇配合物[纤维素(-PO)(3)Y]的ER流体(重量百分比为20%)的剪切应力(tau(E))为2.3 kPa在4.2 kV / mm和300 s(-1)时具有tau(r)值(tau(r)= tau(E)/ tau(0),其中tau(0)是无电场时的剪应力, 300 s(-1))为34.3,比纯微晶纤维素悬浮液高18倍。仅由于稀土配合物的形成,材料介电损耗角正切的改善导致材料的ER效应增强。另外,纤维素(-P-O)(3)RE材料具有更好的热稳定性,并且它们的悬浮液在抗沉淀方面比纤维素-P-ONH4材料更稳定。 (c)2006年Springer Science + Business Media,Inc.

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