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用于回收乳制品加工厂中生物气溶胶的空气采样器评估。

Evaluation of Air Samplers for Recovery of Biological Aerosols in Dairy Processing Plants.

作者信息

Kang Young-Jae, Frank Joseph F

机构信息

Department of Food Science and Technology, University of Georgia, Athens, GA 30602.

出版信息

J Food Prot. 1989 Sep;52(9):655-659. doi: 10.4315/0362-028X-52.9.655.

Abstract

An All Glass Impinger-30 (AGI-30), Andersen 6-stage Sieve Air Sampler (Andersen impactor), Reuter centrifugal air sampler (RCS sampler), and the Millipore open type membrane filter sampler (Filter sampler) were evaluated for viable particle recovery in three dairy processing plant environments. There were two size distribution peaks for viable particles, at stage 1 (>7.0 μm) and stage 3 (3.3-4.7 μm). About 10-12% of the particles were smaller than 2.1 μm in size and were mostly non-molds. During milk processing, the highest number of particles were >7.0 μm in size. But, during ice cream processing and in the idle ice cream room, the highest number of particles were 3.3-4.7 μm in size and were mostly molds. Mean viable particle recovery decreased in the order of AGI-30, Andersen impactor, RCS sampler, and Filter sampler for each of the three sampling environments. These results contrast to those obtained using laboratory-generated aerosols where both the AGI-30 and RCS sampler exhibited low recovery. The increased aerosol recovery by AGI-30 in processing plant compared to laboratory-generated aerosols indicates the presence of carrier and passenger type aerosol particles which disintegrate upon impingement. A comparison of the percent of non-mold cfu recovered by the RCS sampler vs. Andersen impactor indicates that the RCS sampler has a bias toward the detection of non-mold containing particles at all three of the locations tested. The Andersen impactor proved to be the most reliable sampler for recovering biological aerosols from dairy processing plant air.

摘要

在三个乳制品加工厂环境中,对全玻璃冲击式采样器 -30(AGI - 30)、安德森六级筛孔空气采样器(安德森撞击器)、路透离心空气采样器(RCS采样器)和密理博开放式膜滤采样器(滤膜采样器)进行了活菌颗粒回收率评估。活菌颗粒有两个尺寸分布峰值,分别在第1阶段(>7.0μm)和第3阶段(3.3 - 4.7μm)。约10 - 12%的颗粒尺寸小于2.1μm,且大多为非霉菌。在牛奶加工过程中,数量最多的颗粒尺寸>7.0μm。但是,在冰淇淋加工过程中和闲置的冰淇淋房内,数量最多的颗粒尺寸为3.3 - 4.7μm,且大多为霉菌。在三种采样环境中,每种环境下活菌颗粒的平均回收率按AGI - 30、安德森撞击器、RCS采样器和滤膜采样器的顺序依次降低。这些结果与使用实验室产生的气溶胶所获得的结果形成对比,在实验室中AGI - 30和RCS采样器的回收率都很低。与实验室产生的气溶胶相比,AGI - 30在加工厂中的气溶胶回收率增加,这表明存在载体型和气载型气溶胶颗粒,它们在撞击时会分解。RCS采样器与安德森撞击器回收的非霉菌菌落形成单位百分比的比较表明,在所有三个测试地点,RCS采样器在检测含非霉菌颗粒方面存在偏差。事实证明,安德森撞击器是从乳制品加工厂空气中回收生物气溶胶最可靠的采样器。

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