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's Aerosol Measurement: Principles, Techniques, and PDF

ISBN-10: 0470387416

ISBN-13: 9780470387412

ISBN-10: 1118001680

ISBN-13: 9781118001684

Aerosol dimension: rules, options, and purposes 3rd variation is the main exact remedy on hand of the newest aerosol dimension equipment. Drawing at the knowledge of various professional participants; it offers an exceptional seize of dimension basics and practices a large choice of aerosol purposes.

This new version is up to date to deal with new and constructing purposes of aerosol size, together with functions in environmental well-being, atmospheric technology, weather switch, pollution, public wellbeing and fitness, nanotechnology, particle and powder expertise, pharmaceutical learn and improvement, fresh room know-how (integrated circuit manufacture), and nuclear waste management.

Content:
Chapter 1 advent to Aerosol Characterization (pages 1–13): Pramod Kulkarni, Paul A. Baron and Klaus Willeke
Chapter 2 basics of unmarried Particle delivery (pages 15–30): Pramod Kulkarni, Paul A. Baron and Klaus Willeke
Chapter three actual and Chemical techniques in Aerosol structures (pages 31–40): William C. Hinds
Chapter four measurement Distribution features of Aerosols (pages 41–54): Walter John
Chapter five An method of acting Aerosol Measurements (pages 55–65): Pramod Kulkarni and Paul A. Baron
Chapter 6 Aerosol shipping in Sampling traces and Inlets (pages 68–105): John E. Brockmann
Chapter 7 Sampling and research utilizing Filters (pages 107–128): Peter C. Raynor, David Leith, ok. W. Lee and R. Mukund
Chapter eight Sampling and size utilizing Inertial, Gravitational, Centrifugal, and Thermal recommendations (pages 129–151): Virgil A. Marple and Bernard A. Olson
Chapter nine tools for Chemical research of Atmospheric Aerosols (pages 153–177): Paul A. Solomon, Matthew P. Fraser and Pierre Herckes
Chapter 10 Microscopy and Microanalysis of person accumulated debris (pages 179–232): Robert A. Fletcher, Nicholas W. M. Ritchie, Ian M. Anderson and John A. Small
Chapter eleven Real?Time Particle research by means of Mass Spectrometry (pages 233–254): Anthony S. Wexler and Murray V. Johnston
Chapter 12 Semi?Continuous Mass size (pages 255–268): Ernest Weingartner, Heinz Burtscher, Christoph Huglin and Kensei Ehara
Chapter thirteen Optical size options: basics and functions (pages 269–312): Christopher M. Sorensen, Josef Gebhart, Timothy J. O'Hern and Daniel J. Rader
Chapter 14 Real?Time thoughts for Aerodynamic dimension size (pages 313–338): Paul A. Baron, Malay ok. Mazumder, Yung?Sung Cheng and Thomas M. Peters
Chapter 15 electric Mobility equipment for Submicrometer Particle Characterization (pages 339–364): Richard C. Flagan
Chapter sixteen tools and Samplers in accordance with Diffusional Separation (pages 365–379): Yung?Sung Cheng
Chapter 17 Condensation Particle Counters (pages 381–392): Yung?Sung Cheng
Chapter 18 tools according to electric Detection of Aerosols (pages 393–416): Suresh Dhaniyala, Martin Fierz, Jorma Keskinen and Marko Marjamaki
Chapter 19 Electrodynamic Levitation of debris (pages 417–434): E. James Davis
Chapter 20 basics of Cone?Jet Electrospray (pages 435–448): Alessandro Gomez and Weiwei Deng
Chapter 21 Calibration of Aerosol tools (pages 449–478): Bean T. Chen, Robert A. Fletcher and Yung?Sung Cheng
Chapter 22 dimension Distribution information research and Presentation (pages 479–506): Gurumurthy Ramachandran and Douglas W. Cooper
Chapter 23 Nonspherical Particle size: form issue, Fractals, and Fibers (pages 507–547): Pramod Kulkarni, Paul A. Baron, Christopher M. Sorensen and Martin Harper
Chapter 24 organic Particle Sampling (pages 549–570): Tiina Reponen, Klaus Willeke, Sergey Grinshpun and Aino Nevalainen
Chapter 25 office Aerosol size (pages 571–590): Jon C. Volkwein, Andrew D. Maynard and Martin Harper
Chapter 26 Ambient Aerosol Sampling (pages 591–613): John G. Watson and Judith C. Chow
Chapter 27 Indoor Aerosol publicity evaluate (pages 615–634): Charles E. Rodes
Chapter 28 Radioactive Aerosols (pages 635–654): Mark D. Hoover
Chapter 29 dimension of Cloud and Aerosol debris from plane (pages 655–665): James C. Wilson and Haflidi Jonsson
Chapter 30 Satellite?Based dimension of Atmospheric Aerosols (pages 667–680): Rudolf B. Husar
Chapter 31 Atmospheric New Particle Formation: actual and Chemical Measurements (pages 681–695): Peter H. McMurry, Chongai Kuang, James N. Smith, Jun Zhao and Fred Eisele
Chapter 32 electric category and Condensation Detection of Sub?3?nm Aerosols (pages 697–721): Juan Fernandez de l. a. Mora
Chapter 33 hot temperature Aerosols: size and Deposition of Nanoparticle movies (pages 723–738): Pratim Biswas and Elijah Thimsen
Chapter 34 Characterization and size of Atmospheric huge debris (PM > 10 µm) (pages 739–750): Kenneth E. Noll and Dhesikan Venkatesan
Chapter 35 production of fabrics by way of Aerosol procedures (pages 751–770): George Skillas, Arkadi Maisels, Sotiris E. Pratsinis and Toivo T. Kodas
Chapter 36 Aerosol Measurements in Cleanrooms (pages 771–784): David S. Ensor and Anne Marie Dixon
Chapter 37 Sampling innovations in Inhalation Toxicology (pages 785–792): Owen R. Moss
Chapter 38 components Governing Pulmonary reaction to Inhaled Particulate subject (pages 793–803): Vincent Castranova
Chapter 39 dimension of Pharmaceutical and Diagnostic Inhalation Aerosols (pages 805–820): Anthony J. Hickey and David speedy

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Additional info for Aerosol Measurement: Principles, Techniques, and Applications, Third Edition

Example text

2 Photophoresis Photophoresis is similar to thermophoresis in that particle motion is caused by thermal gradients at the particle surface, except that in this case the heating is caused by light absorption by the particle rather than by an external source. Light incident on a particle may be preferentially absorbed by the side near the light source or, under certain circumstances of weak absorption and focusing, by the far side of the particle. Thus, in the former case the particle will be repelled from the light source while in the latter, called reverse photophoresis, it will be attracted.

The diffusion coefficient for a gas with molecular 22 FUNDAMENTALS OF SINGLE PARTICLE TRANSPORT weight, M, is (Hinds 1999, p.   pffiffiffi 3 2p RT 1=2 D¼ 2 M 64Cg dmolec (Eq. 2-24) 2 is the where Cg is the number of gas molecules/m3 and dmole 210 m for air). 8 Â 1025 m2/s. The above equation predicts a diffusion coefficient that is approximately 10% below the correct value (Hinds 1999, p. 27). 0665 mm. ) The slip correction factor can be determined from Equation 2-14 using constants for solid particles Cc ¼ 1 þ Kn[1:142 þ 0:558 exp (À0:999=Kn)] Cc ¼ 1 þ 2 Á 0:0665 mm 0:01 mm  Â 1:142 þ 0:558 exp À0:999 !

2 Migration in Electric Field Application of electrostatic forces is particularly effective for submicrometer particles for which gravity forces are weak because of the dp3 dependence (Eq. 2-30). On a large scale, removal of aerosols by electrostatic forces is practiced in electrostatic precipitators. In aerosol sampling and measurement instruments, electrostatic forces are applied to precipitate or redirect either all aerosol particles or those in a specific size range. For a particle with a total charge equal to n times the elementary unit of charge, e, the electrostatic force, Felec, in an electric field of intensity, E, is Felec ¼ neE (Eq.

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Aerosol Measurement: Principles, Techniques, and Applications, Third Edition


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