毛毡通过丁腈手套渗透。

H Zainal, Shane S Que Hee
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引用次数: 12

摘要

本研究的目的是研究两种不同品牌的无支撑和无衬里丁腈手套是否可以防止Folpet可湿性粉末(50% Folpet)的水乳液,使用ASTM i - ptc 600渗透池,温度为30.0 +/- 0.1℃,在摇晃水浴中保持。首先建立了一种基于气相色谱-质谱(GC-MS)和气相色谱-电子捕获检测(GC-ECD)的内标法测定Folpet的分析方法。一种新的热解GC-ECD技术可以定量测定热降解产物邻苯二甲酸亚胺,其灵敏度为pg,适用于检测渗透的微量Folpet。在170℃下,在3 ~ 148 pg的注射质量范围内,柱上转化率为(68.0 +/- 9.5%)%。渗透池中的激发液为1.4 mg/mL的folpet可湿性粉末乳液,2-丙醇为收集溶剂。收集溶剂蒸发后,8小时后,Folpet通过SafeSkin腈(一种测试类型的手套)的时间加权平均渗透速率为(42.1 +/- 2.9)ng/cm(2)/min,而Sol-Vex腈(工业耐化学品)的渗透速率为(2.04 +/- 0.69)ng/cm(2)/min,后者的保护作用约为21倍,也接近检测极限。暴露4小时后的值分别为(28.4 +/- 1.2)和(0.65 +/- 0.36)ng/cm(2)/min。暴露8小时后,手套的攻击侧和采集侧的诊断反射红外极小值显示波数和强度值变化不大,在攻击侧的干燥点检测到Folpet。基于gc - ecd的渗透和红外反射率数据表明,Sol-Vex手套对Folpet水乳液具有很高的耐化学性。
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Folpet permeation through nitrile gloves.

The aim of this study was to investigate whether two different brands of unsupported and unlined nitrile gloves protected against aqueous emulsions of a Folpet wettable powder (50% Folpet) using an ASTM type-I-PTC 600 permeation cell at 30.0 +/- 0.1 degrees C held in a shaking water bath. An analytical method to determine Folpet using the internal standard method was first developed based on gas chromatography-mass spectrometry (GC-MS), and gas chromatography-electron capture detection (GC-ECD). A novel pyrolysis GC-ECD technique that quantified the thermal degradation product phthalimide had pg sensitivity suitable to detect the trace amounts of Folpet that permeated. The on-column conversion was (68.0 +/- 9.5) percent at 170 degrees C over the folpet injected mass range of 3 to 148 pg. The challenge solution in the permeation cell was 1.4 mg/mL aqueous emulsion of Folpet wettable powder, and 2-propanol was the collection solvent. After evaporation of the collection solvent, the time weighted average rate of permeation of Folpet through SafeSkin nitrile (an exams type of glove) after 8 hours was (42.1 +/- 2.9) ng/cm(2)/min compared with (2.04 +/- 0.69) ng/cm(2)/min for the Sol-Vex nitrile (industrial chemical resistant), the latter being about 21 times more protective and also near the limits of detection. The respective values after 4 hours of exposure were (28.4 +/- 1.2) and (0.65 +/- 0.36) ng/cm(2)/min. Diagnostic reflectance infrared minima of both challenge and collection sides of the gloves showed small changes in wave number and intensity values after 8 hours of exposure, with Folpet being detected in dried spots on the challenge side. GC-ECD-based permeation and IR reflectance data indicated high chemical resistance of the Sol-Vex gloves to an aqueous emulsion of Folpet.

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