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首页> 外文期刊>Progress in Organic Coatings: An International Review Journal >Development of amine-acid cured Annona squamosa oil epoxy anticorrosive polymeric coatings
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Development of amine-acid cured Annona squamosa oil epoxy anticorrosive polymeric coatings

机译:胺酸固化Annona squamosa油环氧防腐聚合物涂料的研制

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Forecasts for exhaustion of depleting petroleum resources in the years to come and escalating prices of petro-based chemicals, advocate the utilization of monomers/polymers derived from sustainable resources as an alternative. Oils of certain seeds may hold considerable promise as a source of unsaturated hydrocarbon, an excellent starting material for epoxidation and subsequent polymer production. Seeds of Annona squamosa (oil content 42-45%), go as a natural waste. Oil obtained from these seeds contains good amount of unsaturation; however, it has not been reported to be epoxidised, yet. Thus, epoxidation of A. squamosa oil (AOE) has been carried out in our effort to utilize a sustainable resource through the development of an anticorrosive coating material. AOE was further cured with different curing agent systems (ethylenediamine/phthalic acid (EDA-PA), 1,3-propanediamine/phthalic acid (PDA-PA), ethylenediamine/adipic acid (EDA-AA), 1,3-propanediamine/adipic acid (PDA-AA), p-phenylenediamine/adipic acid (PhDA-AA). AOE and AOE curing agent systems were subjected to structural elucidation by spectroscopic techniques (IR and H-1 NMR) and physico-chemical characterization (refractive index, specific gravity, iodine value, saponification value, hydroxyl value) involving standard methods. Thermal stability of these resins was investigated by thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC). Coatings of oil epoxy curing agent combinations prepared on Fe- and Al-alloys (mild steel and aluminium-24345) were subjected to physico-mechanical and anticorrosive tests in various corrosive media (water, saline water, acid and alkali) along with abrasion and steam resistance, light fastness, water vapour transmission, gloss, salt fog and humidity tests. These systems apprise satisfactory performance under different corrosive environments. The approach offers an alternate way for resource utilization and overcomes the drawbacks (poor load-bearing capacity and hardness) of oil epoxy-based coatings. (c) 2005 Elsevier B.V. All rights reserved.
机译:未来几年对耗尽的石油资源的枯竭和石油基化学品价格上涨的预测,提倡利用源自可持续资源的单体/聚合物作为替代方案。某些种子的油可以作为不饱和烃的来源,这是一种极好的前景,是不饱和烃的理想原料,可用于环氧化和随后的聚合物生产。 Annona squamosa的种子(油含量为42-45%),是天然废物。从这些种子中获得的油中含有大量的不饱和度。然而,尚未报道其被环氧化。因此,在我们的努力中,通过开发防腐蚀涂料来利用鳞球曲霉油(AOE)进行环氧化,以利用可持续资源。使用不同的固化剂体系(乙二胺/邻苯二甲酸(EDA-PA),1,3-丙二胺/邻苯二甲酸(PDA-PA),乙二胺/己二酸(EDA-AA),1,3-丙二胺/己二酸(PDA-AA),对苯二胺/己二酸(PhDA-AA)通过光谱技术(IR和H-1 NMR)对AOE和AOE固化剂体系进行结构鉴定,并进行理化表征(折射率) ,比重,碘值,皂化值,羟值)涉及的标准方法,并通过热重分析(TGA)和差示扫描量热法(DSC)研究了这些树脂的热稳定性。铝合金(低碳钢和铝24345)在各种腐蚀性介质(水,盐水,酸和碱)中进行了物理机械和耐腐蚀测试,并具有耐磨性和耐蒸汽性,耐光性,透湿性,光泽, s alt雾气和湿度测试。这些系统在不同的腐蚀环境下具有令人满意的性能。该方法提供了一种资源利用的替代方法,并克服了环氧油基涂料的缺点(承载能力和硬度差)。 (c)2005 Elsevier B.V.保留所有权利。

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