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Resistance to moist conditions of whey protein isolate and pea starch biodegradable films and low density polyethylene non-degradable films: a comparative study

机译:乳清蛋白分离物和豌豆淀粉生物降解薄膜和低密度聚乙烯不可降解薄膜耐受耐湿性条件:对比研究

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Biodegradable packaging materials are degraded under the natural environmental conditions. Therefore using them could alleviate the problem of plastics accumulation in nature. For effective replacement of plastics, with biodegradable materials, biodegradable packages should keep their properties under the high relative humidity (RH) conditions. Therefore the objectives of the study were to develop biodegradable packaging material based on whey protein isolate (WPI) and pea starch (PS). To study their mechanical, oxygen barrier and solubility properties under different RHs compared with those of low density polyethylene (LDPE), the most used plastic in packaging. Films of WPI and PS were prepared separately and conditioned at different RH (30-90%) then their properties were studied. At low RHs (≤50%), WPI films had 2-3 times lower elongation at break (E or stretchability) than PS and LDPE. Increasing RH to 90% significantly (P<0.01) increased the elongation of PS but not WPI and LDPE films. LDPE and WPI films kept significantly (P<0.01) higher tensile strength (TS) than PS films at high RH (90 %). Oxygen permeability (OP) of all films was very low (<0.5 cm~3 μm m~(-2) d~(-1) kPa~(-1)) below 40 % RH but increased for PS films and became significantly (P<0.01) different than that of LDPE and WPI at ≥ 40 % RH. Oxygen permeability of WPI and LDPE did not adversely affected by increasing RH to 65 %. Furthermore, WPI and LDPE films had lower degree of hydration at 50 % and 90 % RH and total soluble matter than PS films. These results suggest that WPI could be successfully replacing LDPE in packaging of moist products.
机译:可生物降解的包装材料在天然环境条件下降解。因此,使用它们可以减轻自然界中塑料积累的问题。为了有效更换塑料,具有可生物降解的材料,可生物降解的包装应在高相对湿度(RH)条件下保持其性质。因此,该研究的目标是基于乳清蛋白分离(WPI)和豌豆淀粉(PS)的可生物降解的包装材料。与低密度聚乙烯(LDPE)相比,研究其在不同RH下的机械,氧气屏障和溶解度性质,封装中最常用的塑料。 WPI和PS的薄膜单独制备并在不同RH(30-90%)下调节它们的性质。在低温下(≤50%),WPI薄膜比PS和LDPE在断裂(E或拉伸性)下伸长2-3倍。将RH增加至90%显着(P <0.01)增加了PS但不是WPI和LDPE薄膜的伸长率。 LDPE和WPI薄膜显着(P <0.01)高RH(90%)的胶片比PS膜更高(TS)。所有膜的氧气渗透率(OP)非常低(<0.5cm〜3μmm〜(-2)d〜(-1)kPa〜(-1))低于40%RH,但为PS膜增加并显着变得显着( P <0.01)与LDPE和WPI不同的≥40%RH不同。 WPI和LDPE的氧气渗透性不会受到RH增加至65%的不利影响。此外,WPI和LDPE薄膜在50%和90%RH下的水合度较低,总可溶物质比PS膜。这些结果表明,WPI可以成功地替换湿润产品包装中的LDPE。

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