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Control of stored grain fungi and off odors with ozone in a grain treatment system.

机译:在谷物处理系统中用臭氧控制储存的谷物真菌和异味。

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摘要

Stored grain products, such as corn, can harbor multiple microorganisms, including fungi such as Aspergillus species that produce toxins harmful to both humans and animals. In previous studies, we have demonstrated that ozone-treatment can significantly reduce the level of viable microorganisms on the surface of corn kernels. Ozone is a strong oxidizing agent, which is used in a growing number of industrial applications to control harmful microbes and volatiles. The ultimate goal of this project is to develop a semi-continuous flow grain treatment system and predictive model that will reduce microorganisms on grain kernel surfaces with ozone. To achieve this goal, a better understanding of the properties of ozone are needed, especially with respect to the half-life of ozone and time/concentration criteria to reduce microbes on corn.;The focus of this project was to determine the concentration-time product (CTP) of ozone required to eliminate various levels of microbial growth on grain kernels and to determine the half-life time of ozone in air as a function of air speed (0 to 220 cfm), temperature (4 to 40°C) and relative humidity (0 to 80%).;Half-life time (HLT) of ozone was determined in a plexiglass cylinder equipped with a combination temperature/humidity sensor and fans of varying speeds. HLT averaged 1524 minutes (25.4 h) in still air at room temperature (24°C) and zero humidity, which was substantially longer than previously published data (i.e., 30-40 minutes). As air speed, temperature and humidity increased, HLT decreased to 39, 796 and 451 minutes, respectively. The results suggest that ozonation will be more effective in still air at low temperature and humidity (e.g., headspace ozonation of rail cars in the early spring) than at high flow rates of ozonated air at high temperature and humidity (e.g., grain storage silo in the middle of summer).;To examine the effect of ozone on surface microbes, samples of freshly-harvested and stored corn were treated with ozone for 1 and 3 hours at average ozone concentrations of 1752 ppm, 915 ppm and 37 ppm. Microorganisms were significantly decreased by 28 to 57% after corn samples were ozonated for 1 h at 37 to 1752 ppm and 45 to 80% for 3 h at 37 to 1752 ppm.;Linear regression analysis of the CTP data indicated that percent mold reduction increased at a rate of 0.0088 times the CTP. The modified Gompertz equation applied to the microbial inactivation data indicated that a 0.5 to ∼1 log mold reduction on corn kernels was attained for ozone concentrations between 37 and 1752 ppm. When compared to preliminary field data from a semi-continuous flow grain treatment system, the laboratory data and the model-predicted values were reasonably close with respect to the microbial load reduction observed on corn samples taken from the system.
机译:存储的谷物产品(例如玉米)可以包含多种微生物,包括真菌(例如曲霉菌),这些真菌会产生对人类和动物有害的毒素。在以前的研究中,我们证明了臭氧处理可以显着降低玉米粒表面上活的微生物的水平。臭氧是一种强氧化剂,在越来越多的工业应用中用于控制有害微生物和挥发物。该项目的最终目标是开发一种半连续流谷物处理系统和预测模型,该模型将用臭氧减少谷物内核表面上的微生物。为了实现这一目标,需要对臭氧的性质有一个更好的了解,特别是在臭氧的半衰期和减少玉米上微生物的时间/浓度标准方面。该项目的重点是确定浓度-时间所需的臭氧产品(CTP),用于消除谷物粒上各种微生物的生长,并确定空气中臭氧的半衰期与空气速度(0至220 cfm),温度(4至40°C)的关系臭氧的半衰期(HLT)在装有温度/湿度传感器和变速风扇的有机玻璃圆筒中确定。在室温(24°C)和零湿度下,静止空气中的HLT平均为1524分钟(25.4小时),这比以前公布的数据(即30-40分钟)要长得多。随着风速,温度和湿度的增加,HLT分别降至39、796和451分钟。结果表明,在低温和湿度较高的静止空气中(例如,早春的有轨车顶空臭氧氧化),臭氧处理比在高温和高湿度的臭氧空气的高流量下(例如,谷物储存仓)更有效。为了检查臭氧对表面微生物的影响,将新鲜收获和储存的玉米样品分别以1752 ppm,915​​ ppm和37 ppm的平均臭氧浓度分别处理了1个小时和3个小时。玉米样品在37至1752 ppm的臭氧下臭氧处理1 h和在37至1752 ppm的臭氧处理3 h​​的臭氧后,显着降低了28%至57%。CTP数据的线性回归分析表明,霉菌减少的百分比增加了CTP的0.0088倍。应用于微生物灭活数据的改进的Gompertz方程表明,当臭氧浓度在37至1752 ppm之间时,玉米粒的霉菌模数降低了0.5至-1个对数。当与来自半连续流谷物处理系统的初步田间数据进行比较时,实验室数据和模型预测值相对于从系统中获取的玉米样品上观察到的微生物负荷降低而言相当接近。

著录项

  • 作者

    McClurkin, Janie Denise.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Agricultural.
  • 学位 M.S.A.B.E.
  • 年度 2009
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:44

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