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相关概念视频

Physical Methods for Controlling Microbial Growth: Radiation and Filtration01:26

Physical Methods for Controlling Microbial Growth: Radiation and Filtration

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Radiation and filtration are essential tools for microbial control, targeting microorganisms through distinct mechanisms. Radiation eliminates microbes by damaging their DNA, either killing them or inhibiting their growth. Based on wavelength, radiation is classified into two types: nonionizing and ionizing radiation.Non-ionizing radiation, such as UV radiation (200–400 nm), is absorbed by DNA, causing defects that effectively disinfect surfaces, air, and water, including safety cabinets.
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Physical Methods for Controlling Microbial Growth: Temperature01:23

Physical Methods for Controlling Microbial Growth: Temperature

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Heat is a widely used method to control microbial growth by targeting and denaturing cellular proteins, thereby killing or inactivating microbes. This method's effectiveness is quantified using parameters such as the thermal death point (TDP), thermal death time (TDT), and decimal reduction time (D value). TDP represents the lowest temperature at which all microorganisms in a liquid suspension are eliminated within 10 minutes, whereas TDT is the time necessary to achieve sterilization at a...
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Coagulation01:06

Coagulation

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Colloidal solids are solid particles suspended in solution. They are usually negatively charged, attracting a compact primary layer of positively charged ions, which attract more counterions to form an electrical double layer. Electrostatic repulsion between the charged double layers prevents the particles from colliding, stabilizing the colloids. These solids are often undesirable because they can contain toxins that are difficult to remove. Coagulation is a technique that helps aggregate and...
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Inductively Coupled Plasma Atomic Emission Spectroscopy: Principle01:19

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Inductively coupled plasma (ICP) is the most widely used plasma source in atomic emission spectroscopy (AES), also known as Inductively Coupled Plasma Optical Emission Spectroscopy (ICP-OES). The ICP source, or torch, consists of three concentric quartz tubes with argon gas flowing through them. A spark from a Tesla coil initiates the ionization of argon, generating a high-temperature plasma.
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Biological Methods for Microbial Control01:28

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Biological agents offer an effective means of controlling microbial growth by leveraging natural processes like predation, competition, and the secretion of antimicrobial substances.Predatory bacteria such as Bdellovibrio species target and kill pathogens like Salmonella and E. coli. They are widely used in poultry farms to control infections. Myxococcus species help combat plant-pathogenic fungi. These naturally occurring predators serve as eco-friendly alternatives to chemical pesticides and...
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相关实验视频

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冷等离子技术:它是否在食品加工中占有地位?

Holly Batt1, Jed W Fahey2,3,4,5,6

  • 1Department of International Health, Johns Hopkins Bloomberg School of Public Health, Baltimore, MD, USA.

Critical reviews in food science and nutrition
|November 4, 2024
PubMed
概括

冷等离子体 (CP) 是一种新的,非热食品加工技术,提供了更好的安全性和营养质量. 这项技术为传统热方法提供了一个环保的替代方案,增强了粮食生产.

关键词:
食品安全 食品安全抗微生物药物是一种抗菌药物.食品加工 食品加工 食品加工非热的非热的营养质量 营养质量 营养质量

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科学领域:

  • 食品科学与技术 食品科学与技术
  • 等离子体物理学的物理学
  • 生物技术是生物技术.

背景情况:

  • 传统的热加工方法往往会降低营养质量,导致食品中的营养物质损失.
  • 对先进的食品加工技术的需求越来越大,这些技术可以确保安全性,同时保持营养价值.

研究的目的:

  • 引入冷等离子体 (CP) 技术作为一种新的食品加工技术.
  • 提供CP技术的概述及其在食品工业中的潜在应用.

主要方法:

  • 文献综述和对冷等离子体在食品加工中的应用现有研究的综合.
  • 分析冷等离子体生成的科学原理及其与食物矩阵的相互作用.

主要成果:

  • 冷等离子体为食品加工提供了非热的方法,增强了微生物无活化和酶控制.
  • 在没有显著的营养退化的情况下,CP技术显示了提高食品安全的潜力.
  • 与传统方法相比,该技术因其效率和环境效益而受到重视.

结论:

  • 冷等离子体是一种有前途的替代食品加工技术.
  • 在食品安全,营养保存,效率和环境影响方面,CP技术提供了显著的优势.
  • 进一步的研究和开发是有必要的,以优化工业规模食品生产的CP应用.