首页> 外文期刊>Journal of Rubber Research >Effect of the Blooming of Chemical Curatives on the Dynamic Behaviour of Silanised Silica Filled Natural Rubber-to-metal Bonded Bobbins
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Effect of the Blooming of Chemical Curatives on the Dynamic Behaviour of Silanised Silica Filled Natural Rubber-to-metal Bonded Bobbins

机译:化学助剂的起霜对硅烷化二氧化硅填充的天然橡胶与金属结合的线轴动力学行为的影响

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摘要

Rubber is viscoelastic in nature and used in a variety of industrial applications. Rubber mounts are used to dampen vibration and shock. Damping, fatigue and dynamic properties of rubber mounts depend to a large extent on chemical ingredients mixed with the rubber. Natural rubber is the most widely used polymer for conventional mounts. Apart from natural rubber, different fillers and rubber chemicals are also present in conventional formulation of rubber mounts. Conventionally, five different classes of chemical curatives are used in rubber industries, which include curing agents, primary and secondary accelerators as well as primary and secondary activators. When chemical curatives are present in excessive amounts in rubber, they migrate to the rubber surface and form a bloomed layer. In this work, two rubber formulations were used for preparing rubber-to-metal bonded bobbin mounts. The formulations were primarily based on natural rubber with 60 parts per hundred rubber by weight (p.h.r.) precipitated amorphous white silica nanofiller. The surface of silica was pre-treated with bis(3-triethoxysilylpropyl)-tetrasulphane (TESPT) coupling agent to chemically bond silica to the rubber. The rubber was cured primarily by reacting the tetrasulphane groups of TESPT with the rubber chains using a sulphenamide accelerator and the cure was then optimised by adding zinc oxide as an activator. The ratio of the accelerator to activator in one compound was 6 p.h.r./0.3.p.h.r. and the compound showed extensive blooming of the accelerator on the rubber surface when stored at ambient temperature for up to 60 days. However, the blooming was reduced significantly by changing the ratio of the accelerator to activator to 3 p.h.r./2.5. p.h.r., which was subsequently used to prepare a second compound. Dynamic and static properties of the bobbins were subsequently measured. Both compounds showed very low phase angle (δ) and spring rate ratio K_d/K_s (K_d: dynamic spring rate; K_s: static spring rate). Notably, the compound with the high accelerator to activator ratio had superior aforementioned properties, but the dynamic fatigue life of the bobbin reduced noticeably due to a gradual deterioration of the bond caused by the migration of the accelerator to the bonded interface.
机译:橡胶本质上是粘弹性的,可用于各种工业应用。橡胶安装座用于减轻振动和冲击。橡胶支座的阻尼,疲劳和动态特性在很大程度上取决于与橡胶混合的化学成分。天然橡胶是用于常规安装架的最广泛使用的聚合物。除天然橡胶外,传统的橡胶衬垫配方中还存在不同的填料和橡胶化学品。常规上,在橡胶工业中使用五种不同类别的化学固化剂,包括固化剂,一级和二级促进剂以及一级和二级活化剂。当橡胶中化学固化剂的含量过多时,它们会迁移到橡胶表面并形成起霜层。在这项工作中,使用了两种橡胶配方来制备橡胶与金属结合的骨架支架。该配方主要基于天然橡胶,每百重量份中有60份(p.h.r.)沉淀的无定形白色二氧化硅纳米填料。二氧化硅的表面用双(3-三乙氧基甲硅烷基丙基)-四硫烷(TESPT)偶联剂进行了预处理,以将二氧化硅化学键合到橡胶上。橡胶主要通过使用亚磺酰胺促进剂使TESPT的四硫烷基团与橡胶链反应而固化,然后通过添加氧化锌作为活化剂来优化固化。一种化合物中促进剂与活化剂的比例为6 p.h.r./0.3.p.h.r.。当在环境温度下保存长达60天时,该化合物在橡胶表面显示出大量的促进剂起霜。但是,通过将促进剂与活化剂的比例改为3 p.h.r./2.5,可以大大减少起霜。 p.h.r.,随后用于制备第二种化合物。随后测量线轴的动态和静态特性。两种化合物均显示出非常低的相角(δ)和弹簧刚度比K_d / K_s(K_d:动态弹簧刚度; K_s:静态弹簧刚度)。值得注意的是,具有高促进剂与活化剂比率的化合物具有优异的前述性能,但是由于促进剂向键合界面的迁移导致键的逐渐劣化,线轴的动态疲劳寿命显着降低。

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