• Kapcsolat

  • Hírlevél

  • Rólunk

  • Szállítási lehetőségek

  • Prospero könyvpiaci podcast

  • Hírek

  • Fundamentals of Charged Particle Transport in Gases and Condensed Matter

    Fundamentals of Charged Particle Transport in Gases and Condensed Matter by Robson, Robert; White, Ronald; Hildebrandt, Malte;

    Sorozatcím: Monograph Series in Physical Sciences;

      • 20% KEDVEZMÉNY?

      • A kedvezmény csak az 'Értesítés a kedvenc témákról' hírlevelünk címzettjeinek rendeléseire érvényes.
      • Kiadói listaár GBP 190.00
      • Az ár azért becsült, mert a rendelés pillanatában nem lehet pontosan tudni, hogy a beérkezéskor milyen lesz a forint árfolyama az adott termék eredeti devizájához képest. Ha a forint romlana, kissé többet, ha javulna, kissé kevesebbet kell majd fizetnie.

        90 772 Ft (86 450 Ft + 5% áfa)
      • Kedvezmény(ek) 20% (cc. 18 154 Ft off)
      • Kedvezményes ár 72 618 Ft (69 160 Ft + 5% áfa)

    90 772 Ft

    db

    Beszerezhetőség

    Becsült beszerzési idő: A Prosperónál jelenleg nincsen raktáron, de a kiadónál igen. Beszerzés kb. 3-5 hét..
    A Prosperónál jelenleg nincsen raktáron.

    Why don't you give exact delivery time?

    A beszerzés időigényét az eddigi tapasztalatokra alapozva adjuk meg. Azért becsült, mert a terméket külföldről hozzuk be, így a kiadó kiszolgálásának pillanatnyi gyorsaságától is függ. A megadottnál gyorsabb és lassabb szállítás is elképzelhető, de mindent megteszünk, hogy Ön a lehető leghamarabb jusson hozzá a termékhez.

    Rövid leírás:

    This book offers a cohesive overview on fundamental concepts and experimental approaches for transport of charged particles in gases and condensed matter. It covers electrons, ions, positrons, muons, and explains the connection between microscopic events and macroscopic measurements of currents in a non-equilibrium environment.

    Több

    Hosszú leírás:

    This book offers a comprehensive and cohesive overview of transport processes associated with all kinds of charged particles, including electrons, ions, positrons, and muons, in both gases and condensed matter. The emphasis is on fundamental physics, linking experiment, theory and applications. In particular, the authors discuss:





    • The kinetic theory of gases, from the traditional Boltzmann equation to modern generalizations



    • A complementary approach: Maxwell’s equations of change and fluid modeling



    • Calculation of ion-atom scattering cross sections



    • Extension to soft condensed matter, amorphous materials



    • Applications: drift tube experiments, including the Franck-Hertz experiment, modeling plasma processing devices, muon catalysed fusion, positron emission tomography, gaseous radiation detectors



    Straightforward, physically-based arguments are used wherever possible to complement mathematical rigor.



    Robert Robson has held professorial positions in Japan, the USA and Australia, and was an Alexander von Humboldt Fellow at several universities in Germany. He is a Fellow of the American Physical Society.



    Ronald White is Professor of Physics and Head of Physical Sciences at James Cook University, Australia.



    Malte Hildebrandt is Head of the Detector Group in the Laboratory of Particle Physics at the Paul Scherrer Institut, Switzerland.

    Több

    Tartalomjegyzék:

    Monograph Series in Physical Sciences


    Preface


    About the Authors


    Glossary of Symbols and Acronyms



    1 Introduction



    I Kinetic Theory Foundations



    2 Basic Theoretical Concepts: Phase and Configuration Space


    3 Boltzmann Collision Integral, H-Theorem, and Fokker–Planck Equation


    4 Interaction Potentials and Cross Sections


    5 Kinetic Equations for Dilute Particles in Gases


    6 Charged Particles in Condensed Matter



    II Fluid Modelling in Configuration Space



    7 Fluid Modelling: Foundations and First Applications


    8 Fluid Models with Inelastic Collisions


    9 Fluid Modelling with Loss and Creation Processes


    10 Fluid Modelling in Condensed Matter



    III Solutions of Kinetic Equations



    11 Strategies and Regimes for Solution of Kinetic Equations


    12 Numerical Techniques for Solution of Boltzmann’s Equation


    13 Boundary Conditions, Diffusion Cooling, and a Variational Method


    14 An Analytically Solvable Model



    IV Special Topics



    15 Temporal Non-Locality


    16 The Franck–Hertz Experiment


    17 Positron Transport in Soft-Condensed Matter with Application to PET


    18 Transport in Electric and Magnetic Fields and Particle Detectors


    19 Muons in Gases and Condensed Matter


    20 Concluding Remarks



    V Exercises and Appendices 331



    Exercises


    Appendix A Comparison of Kinetic Theory and Quantum Mechanics


    Appendix B Inelastic and Ionization Collision Operators for Light Particles


    Appendix C The Dual Eigenvalue Problem


    Appendix D Derivation of the Exact Expression for np(k)


    Appendix E Physical Constants and Useful Formulas



    References


    Index

    Több