LEADER 05377nam 2200673 450 001 9910825865203321 005 20200520144314.0 010 $a0-12-418667-X 010 $a0-12-418663-7 035 $a(CKB)3710000000463912 035 $a(EBL)2166539 035 $a(SSID)ssj0001616424 035 $a(PQKBManifestationID)16346414 035 $a(PQKBTitleCode)TC0001616424 035 $a(PQKBWorkID)14919544 035 $a(PQKB)10192856 035 $a(Au-PeEL)EBL2166539 035 $a(CaPaEBR)ebr11090975 035 $a(CaONFJC)MIL823217 035 $a(OCoLC)922847744 035 $a(CaSebORM)9780124186675 035 $a(MiAaPQ)EBC2166539 035 $a(PPN)19217620X 035 $a(EXLCZ)993710000000463912 100 $a20150424h20152015 uy| 0 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aHigh speed digital design $edesign of high speed interconnects and signaling /$fHanqiao Zhang, Steve Krooswyk, Jeff Ou 205 $aFirst edition. 210 1$aWaltham, MA :$cElsevier,$d[2015] 210 4$dİ2015 215 $a1 online resource (268 p.) 300 $aIncludes index. 320 $aIncludes bibliographical references and index. 327 $aFront Cover; High Speed Digital Design; Copyright Page; Contents; About the Authors/Contributors; 1 Transmission line fundamentals; Basic Electromagnetics; Electromagnetics Field Theory; Maxwell's equations; Ampere's law; Faraday's law; Gauss's law; Gauss's law for magnetism; Propagation of Plane Waves; Uniform plane wave; Uniform plane wave in conductive media; Power flow and the Poynting vector; Transmission Line Theory; Wave Equations on Lossless Transmission Lines; Lossless transmission line; Wave propagation on a lossless transmission line; Incident waves and reflected waves 327 $aImpedance, Reflection Coefficient, and Power Flow on a Lossless Transmission LineInput impedance and reflection coefficient; Power flow on a lossless transmission line; Traveling and Standing Waves on a Transmission Line; Traveling waves; Standing waves; Transmission Line Structures; Stripline; Microstrip; Coplanar Waveguides; Novel Transmission Lines; References; 2 PCB design for signal integrity; Differential Signaling; Impedance; Time Domain Analysis; Eye Diagram; Jitter; Jitter components and budget; Jitter amplification example; Frequency Domain Analysis; Spectral Content; Insertion Loss 327 $aIntegrated Insertion Loss NoiseReturn Loss; S11 nulls; Crosstalk; Crosstalk sum; Integrated Crosstalk; Signal-to-Noise Ratio; Stack-Up Design; Impedance Target (Routing Impedance); Optimal routing impedance; PCB Losses; Dielectric Loss; Lower loss dielectrics; Hybrid stackups; Conductor Loss; Surface roughness; Crosstalk Mitigation through StackUp; Stripline dielectric; Solder mask; Dual Stripline; PCB stackup; Angled routing; Parallelism; Densely Broadside Coupled Dual Stripline; Via Stub Mitigation; Impedance optimization; U-turn via; Back-drilling; Blind and buried via 327 $aPCB Layout OptimizationLength Matching; Fiber Weave Effect; Crosstalk Reduction; Interleaving; Guard trace; Signal-to-ground ratio; Ground placement; Orthogonal placement; Component (vertical to horizontal) cancellation; Non-Ideal Return Path; Power Integrity; Repeaters; Introduction to re-timers; Introduction to re-drivers; Modeling and simulation; PCIe considerations; References; 3 Channel modeling and simulation; Transmission Lines; Causality; Checking for Model Causality; Causal Frequency-Dependent Model; Copper Surface Roughness; Modified Hammerstad model; Huray model; Conductivity 327 $aEnvironmental ImpactHumidity; Conductivity; Temperature; Model and simulation; Model Geometries; Stripline structures; Microstrip structures; Corner Models; Iterative corner model; Monte Carlo corner model; Ideal Assumptions: Homogeneous Impedance; Ideal Assumptions: Crosstalk Aggressors; Transmitters; IBIS Models; Spice Voltage Source Model; Linearity test; 3D Modeling; Ports/Terminals; Wave ports; Lumped ports; Model Analysis Settings; Discrete or interpolating solutions; Frequency range and step size; Port order; Normalize result to 50ohms; Plated-Through-Hole Via; Model Techniques 327 $aPre-Layout Approximation 330 $a High Speed Digital Design discusses the major factors to consider in designing a high speed digital system and how design concepts affect the functionality of the system as a whole. It will help you understand why signals act so differently on a high speed digital system, identify the various problems that may occur in the design, and research solutions to minimize their impact and address their root causes. The authors offer a strong foundation that will help you get high speed digital system designs right the first time. Taking a systems design approach, High Speed Digital Design offers a 606 $aDigital electronics 606 $aLogic design 615 0$aDigital electronics. 615 0$aLogic design. 676 $a621.398 700 $aZhang$b Hanqiao$0901819 702 $aKrooswyk$b Steve 702 $aOu$b Zhe-Yu Jeff 801 0$bMiAaPQ 801 1$bMiAaPQ 801 2$bMiAaPQ 906 $aBOOK 912 $a9910825865203321 996 $aHigh speed digital design$93920594 997 $aUNINA