首页> 外文会议>SMASIS2010;ASME conference on smart materials, adaptive structures and intelligent systems >ANISOTROPIC BISTABLE ELECTROACTIVE POLYMERS: LARGE STRAIN ACTUATION OF SHAPE MEMORY POLYERS
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ANISOTROPIC BISTABLE ELECTROACTIVE POLYMERS: LARGE STRAIN ACTUATION OF SHAPE MEMORY POLYERS

机译:各向异性双稳态电致聚合物:形状记忆聚合物的大应变致动

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In this paper, constitutive equations to model the electromechanical behavior of shape memory polymers (SMPs) are introduced for the first time. SMPs are unique material that can be transformed into complicated shapes and recover their original shapes even under large deformations [I]. Above their transition temperature, elastic modulus decreases and they can be easily deformed by mechanical or electrical input. Advantage of this behavior is returning to the deformed shape utilizing a triggering temperature without any applied forces. This can be used to actuate the electroactive polymer to restore the deformed shape without applying an electric field [2]. Therefore in this paper, the equibiaxial extension of two different SMPs (PTBA (poly(tert-butylacrylate)) [2] and Sylgard (Sylgard 184)/PCL (poly(r,-caprolactone)) composite [3]) is simulated numerically to demonstrate the electromechanical behavior with respect to mechanical and electromechanical inputs. For simplification, the response of the SMP above the transition temperature is considered, so that material properties are constant and not a function of temperature. The SMPs are considered a fiber-reinforced membrane with two families of fibers, which enable to tune the material properties of SMPs [3]. To describe the constitutive relation of the SMPs, Mooney-Rivlin and Ogden model for isotropic SMPs, as well as Gasser et al model [4] for anisotropic SMPs, are applied. In the numericalcomputations, the isotropic and anisotropic electromechanical response of PTBA and Sylgard/PCL composite are presented. PTBA shows larger electromechanical effect in the range of stretch 1.5-2.5. Additionally, the effects of the fiber stiffness, angle, and dispersion on the deformation of the SMPs are observed. According to the result, the fiber stiffness cansignificantly affect on the electromechanical response and fiber angle and dispersion can influence the anisotropic deformation.
机译:在本文中,首次引入了用于对形状记忆聚合物(SMP)的机电行为进行建模的本构方程。 SMP是独特的材料,即使在较大的变形下也可以转变为复杂的形状并恢复其原始形状[I]。高于它们的转变温度,弹性模量降低,并且它们很容易通过机械或电输入而变形。这种行为的优点是利用触发温度在没有任何作用力的情况下恢复到变形的形状。这可用于驱动电活性聚合物以恢复变形形状,而无需施加电场[2]。因此,在本文中,对两种不同的SMP(PTBA(聚丙烯酸叔丁酯)[2]和Sylgard(Sylgard 184)/ PCL(聚(r,己内酯))复合物[3])的等双轴扩展进行了数值模拟。演示有关机械和机电输入的机电行为。为了简化,考虑了转变温度以上的SMP响应,因此材料特性是恒定的,而不是温度的函数。 SMP被认为是具有两类纤维的纤维增强膜,可以调节SMP的材料性能[3]。为了描述SMP的本构关系,应用了Mooney-Rivlin和Ogden的各向同性SMP模型以及Gasser等人的模型[4]。在数值上 通过计算,给出了PTBA和Sylgard / PCL复合材料的各向同性和各向异性机电响应。 PTBA在拉伸1.5-2.5范围内显示出较大的机电效应。此外,观察到纤维刚度,角度和色散对SMP变形的影响。根据结果​​,纤维刚度可以 显着影响机电响应,纤维角度和色散会影响各向异性变形。

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