Statistical Electromagnetics
eBook - ePub

Statistical Electromagnetics

Richard Holland

Buch teilen
  1. 400 Seiten
  2. English
  3. ePUB (handyfreundlich)
  4. Über iOS und Android verfügbar
eBook - ePub

Statistical Electromagnetics

Richard Holland

Angaben zum Buch
Buchvorschau
Inhaltsverzeichnis
Quellenangaben

Über dieses Buch

This book addresses the problem of treating interior responses of complex electronic enclosures or systems, and presents a probabilistic approach. Relationships for determining the statistics of the driving fields to apply to a circuit analysis code representing part of an enclosed system's writing are worked out. Also addressed are limited spatial and frequency coherence essential to a statistically based field drive model. This text gives examples, different modeling, and describes how to make, interchange, and optimize models.

Häufig gestellte Fragen

Wie kann ich mein Abo kündigen?
Gehe einfach zum Kontobereich in den Einstellungen und klicke auf „Abo kündigen“ – ganz einfach. Nachdem du gekündigt hast, bleibt deine Mitgliedschaft für den verbleibenden Abozeitraum, den du bereits bezahlt hast, aktiv. Mehr Informationen hier.
(Wie) Kann ich Bücher herunterladen?
Derzeit stehen all unsere auf Mobilgeräte reagierenden ePub-Bücher zum Download über die App zur Verfügung. Die meisten unserer PDFs stehen ebenfalls zum Download bereit; wir arbeiten daran, auch die übrigen PDFs zum Download anzubieten, bei denen dies aktuell noch nicht möglich ist. Weitere Informationen hier.
Welcher Unterschied besteht bei den Preisen zwischen den Aboplänen?
Mit beiden Aboplänen erhältst du vollen Zugang zur Bibliothek und allen Funktionen von Perlego. Die einzigen Unterschiede bestehen im Preis und dem Abozeitraum: Mit dem Jahresabo sparst du auf 12 Monate gerechnet im Vergleich zum Monatsabo rund 30 %.
Was ist Perlego?
Wir sind ein Online-Abodienst für Lehrbücher, bei dem du für weniger als den Preis eines einzelnen Buches pro Monat Zugang zu einer ganzen Online-Bibliothek erhältst. Mit über 1 Million Büchern zu über 1.000 verschiedenen Themen haben wir bestimmt alles, was du brauchst! Weitere Informationen hier.
Unterstützt Perlego Text-zu-Sprache?
Achte auf das Symbol zum Vorlesen in deinem nächsten Buch, um zu sehen, ob du es dir auch anhören kannst. Bei diesem Tool wird dir Text laut vorgelesen, wobei der Text beim Vorlesen auch grafisch hervorgehoben wird. Du kannst das Vorlesen jederzeit anhalten, beschleunigen und verlangsamen. Weitere Informationen hier.
Ist Statistical Electromagnetics als Online-PDF/ePub verfügbar?
Ja, du hast Zugang zu Statistical Electromagnetics von Richard Holland im PDF- und/oder ePub-Format sowie zu anderen beliebten Büchern aus Ciencias físicas & Electromagnetismo. Aus unserem Katalog stehen dir über 1 Million Bücher zur Verfügung.

Information

Verlag
CRC Press
Jahr
2020
ISBN
9781000158670
PART I. THE DEVELOPMENT AND USE OF
STATISTICAL ELECTROMAGNETICS
(STEM)

CHAPTER 1. INTRODUCTION

This book is intended to serve as a monograph in the relatively new and underdocumented field that we call STatistical ElectroMagnetics (STEM). Our subject matter is the probabilistic approach to the response of cables and other conductors inside a complex, enclosed system. Although we shall not always explicitly so state, the STEM acronym in this book carries the implication that the enclosure or problem dimensions are large compared to a wavelength, and that continuous wave (cw) conditions apply. Thus, we presume so many modes are excited in the enclosure that they may be treated statistically, in a thermodynamic-like way, as opposed to mode by mode.
The type of question we ultimately desire to show the reader how to answer is this: for a given threatening or otherwise disturbed ElectroMagnetic (EM) environment, what is the probability that a particular interior wire, pin, or Integrated Circuit (IC) metallization will not carry a current i greater than some acceptable value?
1.1 HISTORICAL BACKGROUND AND RELATION TO OTHER FIELDS OF STUDY
Two of the underlying goals in this work are to consider the shape and frequency separation of the resonances of the enclosure, and to evaluate how energy is statistically distributed among these resonances. Acousticians and mechanical engineers have developed this procedure into a sophisticated protocol, which they refer to as Statistical Energy Analysis (SEA) [1]. However, their task is almost the negative image of ours: it usually develops that most mechanical energy is stored in walls, braces, plates, and other fixed or flexible objects, while EM energy primarily resides in rooms, enclosure interiors, or other three-dimensional voids. Thus, while the concepts of SEA are quite similar to those of STEM, the actual numerics are very different. For example, mechanical oscillators may have just a single resonance, and rods or braces may have just a singly sequenced family of resonances (like a violin string). On the other hand, enclosure volumes almost universally imply a triply infinite number of resonances. Also, the resonant motions of mechanical systems can frequently be explicitly described. We, on the other hand, essentially deal with blackbody (Bose-Einstein) statistics [2], where little may be known about the resonances except their separation as a function of frequency. (The preceding synopsis of acusto-mechanical SEA is not intended to imply that no multidimensional finite-difference/finite-element SEA-related literature exists [3].)
This book documents studies, by us and others, to understand and model statistically the EM field and cable response of an enclosed asset and its wiring during High-Power Microwave (HPM)1 attack or in the presence of other threatening Radio Frequency (RF) leakage and penetration. Much of this rather meager existent literature has not been readily accessible to the community. For instance, the more generic and exploratory work on the statistics of such EM response has only been informally described ([4] and [5]).
The problem of predicting cable or pin currents in an enclosed system under HPM illumination or RF Interference (RFI) at a frequency where the asset is many (>6) wavelengths on a side (i.e., well overmoded) is all but impossible to treat deterministically. Moreover, even assuming a supercomputer and state-of-the-art Finite-Difference Time-Domain (FDTD) [6,7] or Finite-Volume Time-Domain (FVTD) [8,9] code were available, one could logically claim a deterministic solution would be of no value. This claim could be made because, in such a scenario, a 1° rotation of the asset or a 1% shift in frequency would commonly alter the excitation on any given pin or circuit device by as much as 20 dB.
Additionally, the interior of a satellite, aircraft, or missile has wiring of almost inconceivable complexity as viewed by an FVTD or FDTD practitioner who is used to zero or one (two if he is really heroic) conductors passing through each FVTD or FDTD cell [6,10].
To solve this sort of problem rigorously and deterministically, one not only needs to track the fields in 106 to 109 FVTD or FDTD cells, but also to model the drive these fields impose on each conductor (or even each IC) passing through or located in each cell. The final twist to the complexity is that each of these conductor ...

Inhaltsverzeichnis