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Mechanical testing of prosthetic feet utilized in low-income countries according to ISO-10328 standard.

机译:根据ISO-10328标准在低收入国家/地区使用的假脚机械测试。

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This report summarizes the results from 1132 ISO-10328 standard tests performed on 21 different prosthetic foot models commonly utilized in the developing world. None of the tested feet passed the strictest ISO testing protocol. All but one failed at the initial Static Proof test, which simulates a single momentary overload, due to permanent forefoot deformation. In addition, all tested feet had significant internal failures that were visible when sectioned longitudinally. Static Proof testing revealed average permanent deformation of the forefoot of all feet that exceeded the optional 5 mm ISO requirement. Forefoot deformation for non-Jaipur rubber feet came closest to meeting the standard at 8.3+/-3.4 mm; deformation of the various types of rubber Jaipur feet was the greatest at 22.5+/-5.4 mm. Forefoot deformation for polyurethane (PU) feet was 13.6+/-5.5 mm. Forefoot deformation of the ethyl-vinyl-acetate (EVA) feet was slightly greater than the Jaipur feet at 22.8+/-5.7 mm. After the Static Strength test, which simulates a higher momentary overload, permanent deformation of the feet increased. The average maximum deformation for rubber SACH forefeet varied from 17 - 30 mm, and 11 - 26 mm for the heel; Jaipur forefeet 47 - 60 mm and heels 13 - 19 mm; PU forefeet 20 - 44 mm and heels 20 - 33 mm; and EVA forefeet 33 - 50 mm and heels 16 - 31 mm. After completion of the Cyclic Test the prosthetic feet were sawn in half and closely examined visually. All feet revealed internal derangements: (i) Deformation of rubber or PU foam under the keel of forefoot and/or heel: HCMC, VI, EB1, BAVI, HI Cambodia, Myanmar, Angola, TATCOT, Kingsley and CR; (ii) Delamination from the keel: Mozambique, PHN, and Pro-cirugia; and (iii) Delamination between foam layers: BMVSS, NISHA, MUKTI, and OM. The influence of the two environmental factors tested was minimal for rubber feet with respect to deformation and inconsistent for the polymer feet; in particular for the forefeet. Creep increased with humidity exposure in some feet of natural rubber. However, creep decreased with ultraviolet (UV) exposure for these natural rubber feet, as was also the case for EVA feet, whereas the creep increased for two PU feet. Comparison of the effect of humidity and UV exposure generally showed less creep with UV exposure. In conclusion, ISO-10328 testing prior to release of a new foot construction for amputee use appears to be useful in the developing countries as well as in the developed world, even though it does not simulate the wear on the plantar surface that is seen clinically in barefoot walking. Inspection of the internal structures after the laboratory testing has been shown to reveal occult failure mechanisms in all tested feet.
机译:本报告总结了在发展中国家普遍使用的21种不同的假足模型上进行的1132 ISO-10328标准测试的结果。被测脚均未通过最严格的ISO测试协议。由于永久的前脚变形,除了一个以外,其他所有部件都未通过初始静态抗力测试,该测试模拟单个瞬时过载。此外,所有测试的脚都有明显的内部故障,纵向剖分时可见。静态测试表明,所有脚的前脚平均变形永久性超过了可选的5 mm ISO要求。非斋浦尔橡胶脚的前脚变形最接近标准,为8.3 +/- 3.4 mm;斋浦尔各种橡胶支脚的变形最大,为22.5 +/- 5.4 mm。聚氨酯(PU)脚的前脚变形为13.6 +/- 5.5毫米。醋酸乙烯酯(EVA)脚的前脚变形在22.8 +/- 5.7毫米处比斋浦尔脚稍大。在模拟了更高的瞬时过载的静态强度测试之后,脚的永久变形增加了。橡胶SACH前掌的平均最大变形范围为17-30 mm,后跟为11-26 mm;斋浦尔前足47-60毫米,鞋跟13-19毫米; PU前掌20-44毫米,鞋跟20-33毫米;和EVA前掌33-50毫米,鞋跟16-31毫米。循环测试完成后,将假脚切成两半,并用肉眼仔细检查。所有脚部显示内部变形:(i)前脚和/或后跟龙骨下方的橡胶或PU泡沫变形:HCMC,VI,EB1,BAVI,HI柬埔寨,缅甸,安哥拉,TATCOT,Kingsley和CR; (ii)龙骨分层:莫桑比克,PHN和临克鲁格里亚; (iii)泡沫层之间的分层:BMVSS,NISHA,MUKTI和OM。测试的两个环境因素对于橡胶支脚的变形影响最小,而对于聚合物支脚则不一致。特别是对于前者。天然橡胶的一些脚接触湿气后蠕变增加。但是,这些天然橡胶脚的蠕变随着紫外线(UV)的作用而降低,EVA脚也是如此,而两个PU脚的蠕变则增加。比较湿气和紫外线照射的影响通常显示紫外线照射后蠕变较小。总而言之,ISO-10328的测试在释放用于被截肢者的新脚结构之前,在发展中国家和发达国家中似乎都是有用的,即使它不能模拟临床上观察到的足底表面的磨损赤脚行走。实验室测试后对内部结构的检查显示,可以发现所有被测脚的隐匿性失效机制。

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