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The Resource Dynamic Isolation Technologies in Negative Pressure Isolation Wards

Dynamic Isolation Technologies in Negative Pressure Isolation Wards

Label
Dynamic Isolation Technologies in Negative Pressure Isolation Wards
Title
Dynamic Isolation Technologies in Negative Pressure Isolation Wards
Creator
Contributor
Subject
Language
eng
Cataloging source
MiAaPQ
Literary form
non fiction
Nature of contents
dictionaries
Dynamic Isolation Technologies in Negative Pressure Isolation Wards
Label
Dynamic Isolation Technologies in Negative Pressure Isolation Wards
Link
http://libproxy.rpi.edu/login?url=https://ebookcentral.proquest.com/lib/rpi/detail.action?docID=4751421
Publication
Copyright
Related Contributor
Related Location
Related Agents
Related Authorities
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Carrier category
online resource
Carrier category code
cr
Carrier MARC source
rdacarrier
Color
multicolored
Content category
text
Content type code
txt
Content type MARC source
rdacontent
Contents
  • Preface -- Contents -- 1 Importance of Negative Pressure Wards -- 1.1 The Disaster at the Beginning of the Century -- 1.2 Severity of Airborne Infection -- 1.3 Requirement for Negative Pressure Ward -- References -- 2 Three Misunderstandings for Design of Negative Pressure Ward -- 2.1 About High Negative Pressure -- 2.1.1 Effect of Pressure Difference -- 2.1.2 Ability to Control Pollution Dispersion by Pressure Difference -- 2.2 About Airproof Gate -- 2.2.1 Effect of Entrainment by Door -- 2.2.2 Dynamic Characteristic of Door [1] -- 2.2.3 Effect of Entrainment by Occupant -- 2.2.4 Effect of Temperature Difference Between Indoors and Outdoors -- 2.2.5 Balance Equation of Air Change Rate with Convective Flow by Temperature Difference -- 2.2.6 Relationship Between Temperature Difference and Pollutant Exchange Rate -- 2.3 About Full Fresh Air -- 2.3.1 Outline -- 2.3.2 HEPA Filter and Virus Particles -- References -- 3 Principle and Technology of Dynamic Isolation -- 3.1 Proper Pressure Difference for Isolation -- 3.1.1 Physical Significance of Pressure Difference -- 3.1.2 Determination of Pressure Difference -- 3.2 Buffer Room for Isolation -- 3.2.1 Mode of Buffer Room -- 3.2.2 Isolation Coefficient of Buffer Room -- 3.2.3 Influencing Factors for Performance of Buffer Room -- 3.2.4 Experimental Validation -- 3.2.5 Door of Buffer Room -- 3.3 Airflow Isolation in Mainstream Area -- 3.3.1 Concept of Mainstream Area -- 3.3.2 Function of Mainstream Area -- 3.4 Application of Self-circulation Air Through HEPA Filter -- 3.4.1 Application Principle of Circulation Air -- 3.4.2 Function of HEPA Filter -- 3.4.3 Experimental Validation for Application of HEPA Filter with Circulation Air -- References -- 4 Air Distribution Design in Negative Pressure Isolation Ward -- 4.1 Fundamental Principle of Air Distribution in Negative Pressure Isolation Ward
  • 4.2 Velocity Field Near Return Air Opening -- 4.3 Velocity Decay Near Air Supply Outlet -- 4.4 The Following Speed and the Deposition Velocity -- 4.5 Composition of Velocities and Vortex [9] -- 4.6 Position of Air Supply, Exhaust and Return Outlets in Isolation Ward -- 4.6.1 Fundamental Principle -- 4.6.2 Related Assessment Index -- 4.6.3 Results from Numerical Simulation [10, 12] -- 4.6.4 Experimental Validation on Performance of Opening Position -- References -- 5 Calculation of Air Change Rate -- 5.1 Outline -- 5.2 Two System Modes of Isolation Ward -- 5.2.1 Circulation Air System -- 5.2.2 Full Fresh Air System -- 5.3 Determination of Bacterial Generation Rate Indoors -- 5.3.1 Bacterial Generation Rate from Ordinary Patients -- 5.3.2 Analysis of Bacterial Generation Rate from Respiratory System -- 5.4 Determination of Bacterial Concentration Standard Indoors -- 5.4.1 Outline -- 5.4.2 Standard -- 5.5 Calculation of Air Change Rate -- 5.5.1 Calculation Based on the Minimum Airborne Droplet Nuclei with Diameter 0.075 æm -- 5.5.2 Calculation Based on the Maximum Airborne Droplet Nuclei with Diameter from 10 æm to 1.6 æm After Evaporation -- 5.5.3 Calculation Based on the Ordinary Microbial Particles Indoors -- 5.5.4 Calculation Based on Environmental Standard -- References -- 6 Air Exhaust and Air Return Safely Are Necessary Conditions -- 6.1 Importance of Non-leakage Apparatus for Air Exhaust and Air Return -- 6.2 Principle of Negative Pressure and Effective Air Exhaust Device Sealed with Dynamic Air Current -- 6.2.1 Structure of the Device -- 6.2.2 Experiment on the Device -- 6.2.3 Operation Method -- 6.3 Theoretical Analysis for Sealing with Dynamic Air Current [2] -- 6.3.1 Physical Model -- 6.3.2 Calculation -- References -- 7 Design Points for Negative Pressure Isolation Ward -- 7.1 Classification -- 7.1.1 Classification of Infectious Diseases
  • 7.1.2 Classification of Isolation Wards -- 7.2 Layout Plan -- 7.2.1 Environment -- 7.2.2 Partition -- 7.3 Isolation Ward -- 7.3.1 Ward -- 7.3.2 Accessory Rooms -- 7.3.3 People Flow and Goods Flow -- 7.4 Clean Air Conditioner -- 7.4.1 Particularity of Cleaning Air Conditioner for Isolation Ward -- 7.4.2 Specific Requirement -- 7.5 Positioning Arrangement of Air Openings -- 7.5.1 Arrangement for Single Bed -- 7.5.2 Arrangement for Multiple Beds -- 7.5.3 Arrangement of Air Openings in Buffer Room -- 7.6 Determination of Pressure Difference and Differential Pressure Flow Rate -- 7.6.1 Pressure Difference -- 7.6.2 Differential Pressure Flow Rate -- 7.6.3 Expression of Pressure Difference -- 7.7 Design Case -- 7.7.1 Self-circulation System with Fan Coil Unit -- 7.7.2 Air Supply Outlet and Fan System -- 7.7.3 Air Supply Outlet and Indoor Self-circulation Fan System -- 7.7.4 Layout Plan for an Isolation Ward as an Example -- 7.7.5 Design Parameters -- References
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unknown
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{'f': 'http://opac.lib.rpi.edu/record=b4386757'}
Extent
1 online resource (220 pages)
Form of item
online
Isbn
9789811029233
Media category
computer
Media MARC source
rdamedia
Media type code
c
Sound
unknown sound
Specific material designation
remote

Library Locations

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