We live immersed in a world of measurement. Every modern automobile carries more than a hundred sensors; a smartphone packs an accelerometer, gyroscope, magnetometer, barometer, proximity sensor, ambient-light sensor, fingerprint reader, and several microphones into a device thinner than a pencil. Industrial plants, hospitals, aircraft, weather stations, and household appliances all depend on the silent, continuous work of devices that convert the physical world into electrical signals. These devices — sensors and transducers — are the sense organs of every engineered system. Without them, the most powerful microprocessor is blind, deaf, and numb.
This book grew out of many years of teaching instrumentation and measurement to engineering students who arrive with a solid grounding in circuits and physics but without a unified picture of how physical quantities become numbers. The subject is inherently interdisciplinary: it borrows from solid-state physics, electromagnetism, materials science, mechanical engineering, chemistry, and signal processing. My aim has been to weave these strands into a single, readable narrative that begins with fundamental definitions and characteristics, proceeds systematically through every major family of sensing devices, and ends with the signal-conditioning and system-level knowledge needed to build real instruments.
The organisation of the book reflects the way I believe the subject is best learned. Part I establishes the vocabulary and the performance metrics — accuracy, precision, sensitivity, linearity, hysteresis, resolution, and dynamic response — that allow us to compare devices objectively and to specify them for a task. Part II is the heart of the book: a device-by-device tour of resistive, inductive, capacitive, thermal, optical, piezoelectric, magnetic, mechanical, chemical, and biological sensors, each treated with its governing physics, construction, characteristic equations, and practical limitations. Part III turns to signal conditioning and data acquisition — bridges, amplifiers, filters, and analog-to-digital conversion — and to the modern world of smart sensors, MEMS, and the Internet of Things. Part IV closes the loop with a structured method for sensor selection and a set of hands-on projects that a student can build with inexpensive hardware.
Throughout, I have tried to keep three kinds of readers in mind. For the student, there are worked numerical examples, clearly boxed for study, and end-of-chapter review questions and problems. For the practising engineer, there are comparison tables, selection guidance, and honest discussion of error sources and failure modes. For the curious, there are the historical and physical asides that make the subject a pleasure rather than a chore. Diagrams are used liberally, because a sensor is a physical object and one understands it far better by seeing its structure than by reading a paragraph about it.
A word on mathematics. The treatment is quantitative but never gratuitously so. Where an equation illuminates behaviour — the exponential approach of a first-order thermometer, the square-root relation between flow and differential pressure, the Callendar–Van Dusen equation for platinum resistance — it is derived or motivated rather than merely stated. Calculus and complex numbers appear where dynamic response demands them, but the emphasis is always on physical insight.
No book of this scope is written in isolation. I am grateful to the generations of students whose questions sharpened my explanations, to colleagues who reviewed portions of the manuscript, and to the many researchers and engineers whose published work forms the foundation of the field. Any errors that remain are my own, and I would be glad to hear of them so that future editions may be improved.
Les informations fournies dans la section « Synopsis » peuvent faire référence à une autre édition de ce titre.
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