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Although this classic introduction to space-flight engineering was first published not long after Sputnik was launched, the fundamental principles it elucidates are as varied today as then. The problems to which these principles are applied have changed, and the widespread use of computers has accelerated problem-solving techniques, but this book is still a valuable basic text for advanced undergraduate and graduate students of aerospace engineering.
The first two chapters cover vector algebra and kinematics, including angular velocity vector, tangential and normal components, and the general case of space motion. The third chapter deals with the transformation of coordinates, with sections of Euler's angles, and the transformation of angular velocities.
A variety of interesting problems regarding the motion of satellites and other space vehicles is discussed in Chapter 4, which includes the two-body problem, orbital change due to impulsive thrust, long-range ballistic trajectories, and the effect of the Earth's oblateness. The fifth and sixth chapters describe gyrodynamics and the dynamics of gyroscopic instruments, covering such topics as the displacement of a rigid body, precession and nutation of the Earth's polar axis, oscillation of the gyrocompass, and inertial navigation.
Chapter 7 is an examination of space vehicle motion, with analyses of general equations in body conditions and their transformation to inertial coordinates, attitude drift of space vehicles, and variable mass. The eighth chapter discusses optimization of the performance of single-stage and multistage rockets. Chapter 9 deals with generalized theories of mechanics, including holonomic and non-holonomic systems, Lagrange's Equation for impulsive forces, and missile dynamics analysis.
Throughout this clear, comprehensive text, practice problems (with answers to many) aid the student in mastering analytic techniques, and numerous charts and diagrams reinforce each lesson. 1961 edition.
- Sales Rank: #87433 in Books
- Published on: 1986-06-01
- Released on: 1986-06-01
- Original language: English
- Number of items: 1
- Dimensions: 8.51" h x .66" w x 5.43" l, .75 pounds
- Binding: Paperback
- 352 pages
Most helpful customer reviews
32 of 32 people found the following review helpful.
small book with huge impact
By V. N. Dvornychenko
Introduction to Space Dynamics
By William Tyrrell Thomson
When this little book came out, in the early sixties, it created quite an impact. For one thing, it marks the transition from the "old astrodynamics" to the "new". The term "astrodynamics" is attributed to the late Samuel Herrick, and was coined in the forties or early fifties. Prior to sputnik, astrodynamics was heavily centered on determining the orbits of comets and asteroids from optical observations. When artificial satellites became imminent, the emphasis shifted to determining physical constants (e.g., figure of the earth) from satellite tracking data.
"Introduction to Space Dynamics" represents a new departure. First, it places considerable emphasis on launch vehicle (rocket) performance, including some optimization analysis based on the calculus of variations. The older texts tended to completely ignore this topic (possibly because much was classified). Also, except for Lawden's monograph, many of the papers on optimized launch vehicle performance were difficult to obtain - and generally difficult to read. Second, Thomson inserts considerable material on gyroscopic motion, stabilized platforms, and inertial navigation. This represents a transition away from the optical-tracking-orientation of earlier texts. Thomson's book also enjoys the benefit of more modern notation, and uses vector and matrix notation throughout.
A curious included topic -- to which I was first introduced by this very book -- is "jet damping." The jet damping effect tends to dampen-out any angular motion of a rocket during thrusting periods. However, the effect is small to the point of usually being negligible. (Witness the notorious instability of rockets, particularly unguided ones.) Considering how much material Thomson devotes to this very specialized topic, one gets the impression that Thomson himself must have performed considerable research on this, and was determined to pass his knowledge on.
It is almost inevitable to compare this book with Herrick's "Astrodynamics", which came out some ten years after "Introduction to Space Dynamics." While Herrick's book is without question beautifully written and very comprehensive, it is basically backward-looking. Thomson's book, on the other hand, was very progressive for its time. Consequently, Thomson's book was very influential; Harrick's book was something of a curiosity, and almost certainly a disappointment for its author.
Despite the forty-some years since its debut, "Introduction to Space Dynamics" is still valuable, and should be read by everyone seriously interested in astrodynamics.
20 of 21 people found the following review helpful.
Good Deal
By eddym4
As an electrical engineer working in the space industry, I've been using this book as a self-study reference to better understand the issues related to spacecraft dynamics and control. It lays out the basics of rigid body/space vehicle motion and also contains a nice little introduction to orbital mechanics. Despite the date of publication almost all of the material is still relevant today and is a great bargain for ~$10. I noticed a couple of the reviews mention the difficulty of the material - I would say if you've studied calculus, linear algebra, and physics (mechanics) you have a shot at learning it but it would definitely help if you've taken a college-level dynamics course as well. If you don't have this background you're going to get overwhelmed.
17 of 19 people found the following review helpful.
Really good; an excellent introduction to the field
By Proton Blast
This is really well-written. Although the introduction claims that the text is outdated, it still provides a great introduction to space dynamics, astrodynamics, and dynamics generally. There is an implied understanding in vector mathematics before beginning; the book has an overview of vector calculus, but I think the author assumes you already know it. I actually read this book before taking my undergraduate classes in engineering, and I referenced it many times when my own textbook wasn't as clear as this is. Thomson does use a lot of math, to back up everything he says, but he doesn't bog the text down like math books tend to do. I'm still using some of the math notation I picked up from this book, and my teachers hate it.
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