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首页> 外文期刊>Journal of Adhesion Science and Technology: The International Journal of Theoredtical and Basic Aspects of Adhesion Science and Its Applications in All Areas of Technology >Experimental study of the CTBN effect on mechanical properties and mode I and II fracture toughness of a new epoxy resin
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Experimental study of the CTBN effect on mechanical properties and mode I and II fracture toughness of a new epoxy resin

机译:新型环氧树脂力学性能和模型I和II裂缝韧性CTBN影响的实验研究

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Due to the high strength and adhesiveness of epoxies, these materials are widely used in various industries such as aerospace. But because of their inherent brittleness and poor fracture toughness, they do not have enough resistance against crack propagation. In adhesive joints, maximum stresses near the ends of the overlaps resulted in premature failure of the joints. In this study, for toughening the epoxy, carboxyl-terminated butadiene acrylonitrile (CTBN) as a liquid rubber was used. Blends of a new epoxy resin (R510) and the CTBN in several weight fractions were produced and characterized. In this article, four tests have been done to find the mechanical properties and mode I and II fracture toughness of the adhesives. The tensile and shear tests were performed to achieve Young's modulus (E), maximum tensile stress (sigma(f)), shear modulus (G), maximum shear stress (tau(f)) and Poisson's ratio (nu) of the adhesives. Also, the double-cantilever beam (DCB) and end-notched flexure (ENF) tests were used to obtain the mode I fracture toughness (G(Ic)) and mode II fracture toughness (G(IIc)), respectively. The results from each of the DCB and the ENF tests were analyzed by three different methods and compared. Results showed that by adding CTBN to epoxy, E, G, nu, sigma(f) and tau(f) are reduced, but toughness, the resistance to crack growth and as a result, the G(Ic) and G(IIc) increased efficiently. These data can be used to predict the adhesive joint strength and simulating the damage initiation and its evolution until failure with cohesive zone modeling (CZM).
机译:由于环氧树脂的高强度和粘性,这些材料被广泛应用于航空航天等各个行业。但由于其固有的脆性和较差的断裂韧性,它们没有足够的抗裂纹扩展能力。在粘接接头中,搭接端附近的最大应力导致接头过早失效。在本研究中,为了增韧环氧树脂,使用端羧基丁二烯-丙烯腈(CTBN)作为液体橡胶。制备并表征了一种新型环氧树脂(R510)和几种重量分数的CTBN的混合物。本文进行了四项试验,以确定粘合剂的机械性能以及I型和II型断裂韧性。进行拉伸和剪切试验,以获得粘合剂的杨氏模量(E)、最大拉伸应力(sigma(f))、剪切模量(G)、最大剪切应力(tau(f))和泊松比(nu)。此外,采用双悬臂梁(DCB)和端部缺口弯曲(ENF)试验分别获得了I型断裂韧性(G(Ic))和II型断裂韧性(G(IIc))。通过三种不同的方法对DCB和ENF试验的结果进行分析和比较。结果表明,在环氧树脂中添加CTBN,E、G、nu、sigma(f)和tau(f)都会降低,但韧性、抗裂纹扩展能力以及G(Ic)和G(IIc)都会有效提高。这些数据可用于预测粘接接头强度,并用内聚区模型(CZM)模拟损伤起始及其演变,直至失效。

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