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The capability of organic compounds to swell acrylonitrile butadiene O-rings and their effects on O-ring mechanical properties

机译:有机化合物溶胀丙烯腈丁二烯O形圈的能力及其对O形圈机械性能的影响

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As interest in replacing petroleum-derived aviation fuels with resilient, alternative fuels increases, the ability to derive correlations between the chemical compositions of aviation fuels and their properties and performance becomes more important. In this work, correlations between the exact chemical structures of organic compounds and their ability to increase the volume and decrease the tensile strength of Buna-N o-ring seals were explored. Buna-N o-ring seals are a representative group of essential seals in the hydraulic and pneumatic components of aircraft fuel delivery systems. They are utilized to prevent fuel leakage within the pumps, metering devices, and connectors. To measure the volume swell percent of o-ring seals caused by various organic compounds, a test rig was assembled that suspended o-ring seals in neat Sasol IPK (isoparaffinic kerosene) or in Sasol IPK doped individually with an organic compound at 8% by volume. Of the aromatic compounds tested, ethylbenzene and indane swelled o-ring seals most effectively, with volume swell percent values of 3.1 +/- 0.2% and 2.8 +/- 0.1%, respectively. In comparison, the approved aviation fuel Jet A/HEFA has volume swell percent value of 2.2 +/- 0.2%. Alkylbenzenes with a smaller number of alkyl groups, less branching in the alkyl groups, and shorter alkyl chains caused greater swelling and greater decrease in the tensile strength for o-ring seals. Naphthene-containing aromatic compounds (Le., indane and tetralin) swelled o-ring seals more effectively than alkylbenzenes with the same number of carbons (Le., n-propylbenzene and n-butylbenzene). Therefore, steric hindrance seems to have an important impact on the ability of these compounds to swell o-rings. Nonaromatic unsaturated hydrocarbons, such as cyclohexene, were also found to swell o-ring seals to some extent. On the other hand, saturated hydrocarbons, such as cyclohexane, contributed to minimum or no swelling. Tensile strengths of intact o-rings were measured using an MTS Insight Electromechanical Testing Instrument. Aromatic compounds that facilitated greater swelling of o-ring seals also caused greater decrease in the tensile strength. For example, ethylbenzene and sec-butylbenzene, with volume swell percent values of 3.1 +/- 0.2% and 0.9 +/- 0.1%, respectively, reduced the o-ring tensile strength from 15.4 MPa to 13.6 MPa and 14.9 MPa, respectively. Additional experiments demonstrated that volume swell and tensile strength of o-ring seals are reversible properties. Hence, a decrease in tensile strength for o-ring seals does not imply irreversible damage. Overall, the extent of volume swelling and the lowering of tensile strength for o-ring seals was found to depend on the exact chemical structure of the organic compound.
机译:随着人们对用弹性的替代燃料代替石油衍生的航空燃料的兴趣增加,推导航空燃料的化学成分与其性质和性能之间的相关性的能力变得越来越重要。在这项工作中,探索了有机化合物的确切化学结构与其增加Buna-N O形圈密封件的体积和降低其拉伸强度的能力之间的相关性。 Buna-N O形圈密封件是航空器燃油输送系统的液压和气动组件中必要密封件的代表。它们用于防止燃油在泵,计量装置和连接器内泄漏。为了测量由各种有机化合物引起的O形圈密封件的体积膨胀百分比,组装了一个测试装置,将O形圈密封件悬挂在纯净的Sasol IPK(异链烷烃煤油)中或单独掺有8%有机化合物的Sasol IPK中。体积。在所测试的芳族化合物中,乙苯和茚满膨胀的O形圈密封效果最佳,体积溶胀百分比值分别为3.1 +/- 0.2%和2.8 +/- 0.1%。相比之下,批准的航空燃料Jet A / HEFA的体积膨胀百分比值为2.2 +/- 0.2%。烷基数量少,烷基支链少和烷基链短的烷基苯引起更大的溶胀,O形圈密封件的拉伸强度下降更大。与具有相同碳数的烷基苯(例如正丙基苯和正丁基苯)相比,含环烷烃的芳族化合物(例如,茚满和四氢萘)对O形圈的密封更有效。因此,空间位阻似乎对这些化合物使O形圈膨胀的能力具有重要影响。还发现非芳族不饱和烃(例如环己烯)在某种程度上会使O形圈密封膨胀。另一方面,饱和烃(例如环己烷)对溶胀的影响很小或没有。使用MTS Insight机电测试仪测量完整O形圈的拉伸强度。促进O形圈密封件更大溶胀的芳族化合物还导致抗张强度的更大降低。例如,体积膨胀百分数分别为3.1 +/- 0.2%和0.9 +/- 0.1%的乙苯和仲丁基苯,将O形圈的抗张强度分别从15.4 MPa降低到13.6 MPa和14.9 MPa。其他实验表明,O形圈密封件的体积膨胀和拉伸强度是可逆的。因此,O形圈密封件抗拉强度的降低并不意味着不可逆转的损坏。总体而言,发现O形圈密封件的体积膨胀程度和抗拉强度降低取决于有机化合物的确切化学结构。

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