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Delayed harvesting of bananas with 'sealed' covers on bunches. 1. Modified atmosphere and microclimate inside sealed covers

机译:香蕉束被“密封”的延迟收获。 1.密封罩内部的气氛和微气候发生了变化

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A field study was conducted to examine the effects of various bunch covering and harvest delay combinations on the environment inside bunch covers, and on fruit yield and quality parameters. Treatments included unsealed and initially sealed (but often ultimately leaky) clear covers under the industry standard blue/silver cover, and the inclusion of an ethylene absorbent inside the 'sealed' covers. This paper reports on the microclimate inside the bunch covers, and the modified atmosphere that developed inside the 'sealed' covers. During clear weather in January, average air temperatures inside bunch covers were 3, 5, and 6¦C above ambient for unsealed single covers, for unsealed double covers, and for 'sealed' double covers respectively. Differences were smallest at dawn, and greatest in the late afternoon. During clear weather in July bunch cover temperatures were 1, 1.5, and 2¦C above ambient respectively. Relative humidities were also influenced by covering, with 'sealed' cover humidity remaining above 95%. Carbon dioxide concentrations inside 'sealed' covers when bunches were harvested averaged 8%, but varied widely from <1 to 42%. Highest CO2 concentrations were obtained when weekly mean air temperatures were greater than 22¦C. Oxygen concentrations averaged 10% (range 2-19%), were lowest during the warmer part of the year, and were inversely related to CO2 levels. Ethylene concentrations varied between 0.03 and 9 ¦L/L, were highest during the hotter part of the year, and were reduced by about 60% with the inclusion of KMnO4 inside 'sealed' covers. An iterative model with a .l h time step was used to simulate the expected O2 and CO2 levels inside the 'sealed' covers. Simulation results indicated that polyethylene permeability alone could not balance the computed respiratory gas exchange, and account for the changes in O2 and CO2 concentrations. It was necessary to incorporate a substantial leakage component into the model in order to simulate successfully the field observations.
机译:进行了实地研究,以检查各种束覆盖和收获延迟组合对束覆盖内部环境以及水果产量和品质参数的影响。处理方法包括在行业标准的蓝色/银色盖下开封并最初密封(但通常最终会渗漏)的透明盖,并在“密封”盖内加入乙烯吸收剂。本文报道了束状覆盖物内部的微气候,以及在“密封”覆盖物内部产生的改良气氛。在1月晴朗的天气中,未密封的单层罩,未密封的双层罩和“密封”双层罩的束罩内平均气温分别比环境高3、5和6μC。差异在黎明时最小,在下午晚些时候最大。在七月的晴朗天气期间,束覆盖温度分别比环境温度高1、1.5和2μC。相对湿度也受覆盖物的影响,“密封的”覆盖物湿度保持在95%以上。收成束时,“密封”盖内的二氧化碳浓度平均为8%,但变化范围<1至42%。当每周平均气温高于22℃时,CO2浓度最高。氧气浓度平均为10%(范围2-19%),是一年中最暖的时期最低,并且与CO2水平成反比。乙烯的浓度在0.03至9μL/ L之间变化,在一年中的最热部分最高,而由于在“密封”盖中加入了KMnO4,乙烯浓度降低了约60%。使用.l h时间步长的迭代模型来模拟“密封”封盖内的预期O2和CO2水平。模拟结果表明,单独的聚乙烯渗透性无法平衡计算出的呼吸气体交换,无法解释O2和CO2浓度的变化。为了成功地模拟现场观测结果,有必要将大量泄漏分量纳入模型。

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    《Animal Production Science》 |1989年第5期|p.719-726|共8页
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