LEADER 03697nam 22005535 450 001 9910731488403321 005 20230823200004.0 010 $a3-031-31086-1 024 7 $a10.1007/978-3-031-31086-7 035 $a(CKB)27113293600041 035 $a(MiAaPQ)EBC30603304 035 $a(Au-PeEL)EBL30603304 035 $a(DE-He213)978-3-031-31086-7 035 $a(PPN)272272515 035 $a(EXLCZ)9927113293600041 100 $a20230619d2023 u| 0 101 0 $aeng 135 $aurcnu|||||||| 181 $ctxt$2rdacontent 182 $cc$2rdamedia 183 $acr$2rdacarrier 200 10$aTopics in LC Oscillators$b[electronic resource] $ePrinciples, Phase Noise, Pulling, Inductor Design /$fby Konstantinos Manetakis 205 $a1st ed. 2023. 210 1$aCham :$cSpringer Nature Switzerland :$cImprint: Springer,$d2023. 215 $a1 online resource (180 pages) 311 $a9783031310850 327 $aChapter 1. Basics of LC Oscillators -- Chapter 2. Self-Sustained Oscillators -- Chapter 3. Noise in LC Oscillators -- Chapter 4. Thermal Noise in LC Oscillators -- Chapter 5. Low-Frequency Noise in LC Oscillators -- Chapter 6. LC Oscillator Entrainment and Pulling -- Chapter 7. Design of Integrated Inductors. 330 $aThis book introduces an intuitive, self-sustained oscillator model and applies it to describe some of the most critical performance metrics of LC oscillators, such as phase noise, entrainment, and pulling. It also covers the related topics of magnetic coupling and inductor design. The author emphasizes the basic principles and illuminates them with approximate calculations, adopting a design-oriented approach that imparts intuition and complements simulations. This book constitutes a novel and fresh perspective on the subject and can be helpful to electrical engineering students and practicing engineers. It also serves as a bridge between the mathematical treatises of the subject and the more practical circuit-oriented approaches. Introduces the Van der Pol self-sustained oscillator model and explains its use to describe practical LC oscillators. Discusses the fundamentals of oscillator noise using the complementary approaches of dissipation and fluctuation. Models the oscillator as a phase point moving along its limit cycle and introduces the Phase Dynamics Equation. Explains the noise to phase noise conversion as a two-step process and delves into computing phase noise due to tank noise, transconductor thermal and flicker noise, supply, and bias noise. Highlights the vital role of the oscillator's common-mode behavior in converting low-frequency noise to phase noise. Applies the Phase Dynamics Equation to describe oscillator entrainment and pulling. Discusses methods to reduce magnetic coupling and includes a self-contained introduction to the design of integrated inductors. . 606 $aElectronic circuits 606 $aTelecommunication 606 $aElectronics 606 $aElectronic Circuits and Systems 606 $aMicrowaves, RF Engineering and Optical Communications 606 $aElectronics and Microelectronics, Instrumentation 615 0$aElectronic circuits. 615 0$aTelecommunication. 615 0$aElectronics. 615 14$aElectronic Circuits and Systems. 615 24$aMicrowaves, RF Engineering and Optical Communications. 615 24$aElectronics and Microelectronics, Instrumentation. 676 $a621.381533 700 $aManetakis$b Konstantinos$01368678 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910731488403321 996 $aTopics in LC Oscillators$93394560 997 $aUNINA