TLE Overview. High Speed CAN FD Transceiver. Qualified for Automotive Applications according to AEC-Q100

Similar documents
TLE9251V. 1 Overview. High Speed CAN Transceiver. Qualified for Automotive Applications according to AEC-Q100. Features

TLE6251D. Data Sheet. Automotive Power. High Speed CAN-Transceiver with Bus Wake-up. Rev. 1.0,

TLE7251V. 1 Overview. Features. Potential applications. Product validation. High Speed CAN-Transceiver with Bus Wake-up

TLE7251V. Data Sheet. Automotive Power. High Speed CAN-Transceiver with Bus Wake-up TLE7251VLE TLE7251VSJ. Rev. 1.0,

TLE8251V. 1 Overview. High Speed CAN Transceiver with Bus Wake-up

Monitoring Technology

G E T T I N G I N S T R U M E N T S, I N C.

application software

application software

-To become familiar with the input/output characteristics of several types of standard flip-flop devices and the conversion among them.

Enabling Switch Devices

Besides our own analog sensors, it can serve as a controller performing variegated control functions for any type of analog device by any maker.

LATCHES Implementation With Complex Gates

SMD LED Product Data Sheet LTSA-G6SPVEKT Spec No.: DS Effective Date: 10/12/2016 LITE-ON DCC RELEASE

Digital Panel Controller

Measurement of Capacitances Based on a Flip-Flop Sensor

Control elements. Fine adjustment. Function selector. Status indication. 24 V DC typ. 0,25 W / 0,25 VA. 24 V DC typ. 0,03 W / 0,09 VA. min.

SiI9127A/SiI1127A HDMI Receiver with Deep Color Output

LCD Module Specification

Advanced Handheld Tachometer FT Measure engine rotation speed via cigarette lighter socket sensor! Cigarette lighter socket sensor FT-0801

LCD Module Specification

DO NOT COPY DO NOT COPY DO NOT COPY DO NOT COPY

Workflow Overview. BD FACSDiva Software Quick Reference Guide for BD FACSAria Cell Sorters. Starting Up the System. Checking Cytometer Performance

TEA2037A HORIZONTAL & VERTICAL DEFLECTION CIRCUIT

EX 5 DIGITAL ELECTRONICS (GROUP 1BT4) G

H3CR. Multifunctional Timer Twin Timer Star-delta Timer Power OFF-delay Timer H3CR-A H3CR-AS H3CR-AP H3CR-A8 H3CR-A8S H3CR-A8E H3CR-G.

Overview ECE 553: TESTING AND TESTABLE DESIGN OF. Ad-Hoc DFT Methods Good design practices learned through experience are used as guidelines:

Personal Computer Embedded Type Servo System Controller. Simple Motion Board User's Manual (Advanced Synchronous Control) -MR-EM340GF

SAFETY WITH A SYSTEM V EN

Commissioning EN. Inverter. Inverter i510 Cabinet 0.25 to 2.2 kw

MELSEC iq-f FX5 Simple Motion Module User's Manual (Advanced Synchronous Control) -FX5-40SSC-S -FX5-80SSC-S

LCD Module Specification

Solution Guide II-A. Image Acquisition. Building Vision for Business. MVTec Software GmbH

2015 Communication Guide

Telemetrie-Messtechnik Schnorrenberg

USB TRANSCEIVER MACROCELL INTERFACE WITH USB 3.0 APPLICATIONS USING FPGA IMPLEMENTATION

Display. Specifications. For Use With RS170 Module. CyberDisplay TM 320 Monochrome. Model 290 KCD-QD01-BA. K o p i n C o r p o r a t i o n

Solution Guide II-A. Image Acquisition. HALCON Progress

Sartorius Combics Series

The Art of Image Acquisition

The Art of Image Acquisition

UPDATE FOR DESIGN OF STRUCTURAL STEEL HOLLOW SECTION CONNECTIONS VOLUME 1 DESIGN MODELS, First edition 1996 A.A. SYAM AND B.G.

04/000 Control Relays, Contactor Relays, Electronic Timing Relays, Electronic Safety Relays, Measuring and Monitoring Relays s y la e r R cto

AN-605 APPLICATION NOTE

Circuit Breaker Ratings A Primer for Protection Engineers

AUTOCOMPENSATIVE SYSTEM FOR MEASUREMENT OF THE CAPACITANCES

NT-G A-YFSEDY-NY

DIGITAL MOMENT LIMITTER. Instruction Manual EN B

Trinitron Color TV KV-TG21 KV-PG21 KV-PG14. Operating Instructions M70 M61 M40 P70 P (1)

TGL2209 SM 8 12 GHz 50 Watt VPIN Limiter

Novel Power Supply Independent Ring Oscillator

I (parent/guardian name) certify that, to the best of my knowledge, the

Sartorius EcoMix.COMPACT

SAFETY WARNING! DO NOT REMOVE THE MAINS EARTH CONNECTION!

INSTRUCTION MANUAL SPA CONTROL SYSTEM NEO 2100 CONTROL PANEL NEO 1100 CONTROL PANEL

A Delay-efficient Radiation-hard Digital Design Approach Using CWSP Elements

A Delay-efficient Radiation-hard Digital Design Approach Using CWSP Elements

TGL2210-SM_EVB GHz 100 Watt VPIN Limiter. Product Overview. Key Features. Applications. Functional Block Diagram. Ordering Information

ZEP - 644SXWW 640SX - LED 150 W. Profile spot

Positive Feedback: Bi-Stability. EECS 141 F01 Sequential Logic. Meta-Stability. Latch versus Flip-Flop. Mux-Based Latches

Connecting Battery-free IoT Tags Using LED Bulbs

IDT70V05S/L 8K x 8 DUAL-PORT STATIC RAM

UltraCella. Electronic control for Cold Rooms. User manual NO POWER & SIGNAL CABLES TOGETHER READ CAREFULLY IN THE TEXT!

UltraCella. Electronic control for Cold Rooms. User manual NO POWER & SIGNAL CABLES TOGETHER READ CAREFULLY IN THE TEXT!

COMPACT OPTICAL LASER TRANSMITTER for CATV - SMATV - SAT

Q = OCM Pro. Very Accurate Flow Measurement in partially and full filled Pipes and Channels

Nonuniform sampling AN1

Lab 2 Position and Velocity

4.1 Water tank. height z (mm) time t (s)

10. Water tank. Example I. Draw the graph of the amount z of water in the tank against time t.. Explain the shape of the graph.

LABORATORY COURSE OF ELECTRONIC INSTRUMENTATION BASED ON THE TELEMETRY OF SEVERAL PARAMETERS OF A REMOTE CONTROLLED CAR

Flo C. Compact W MSR. Followspot

AJ- P. Operating Instructions. Digital Video Cassette Recorder. Printed in Japan VQT S0699W3119 A OFF CH1 CH2 CH2 RESET COUNTER CH3 CH4

Sartorius Cubis Series User Manual Precision and Analytical Scales MSA Models

Lancelot TS. Grand W HTI. Followspot. Type: Followspot Source: 4000 W HTI PSU: Magnetic - hot restrike Optics: 2 to 5 zoom.

R&D White Paper WHP 120. Digital on-channel repeater for DAB. Research & Development BRITISH BROADCASTING CORPORATION.

COMPACT CWDM OPTICAL LASER TRANSMITTER for HFC & FTTH CATV & SAT DISTRIBUTIONS MHz

Type: Source: PSU: Followspot Optics: Standard: Features Optical Fully closing iris cassette: Long lamp life (3000 h) Factory set optical train:

Drivers Evaluation of Performance of LED Traffic Signal Modules

MULTI-VIEW VIDEO COMPRESSION USING DYNAMIC BACKGROUND FRAME AND 3D MOTION ESTIMATION

MaxGard Interconnection Systems

AZ DISPLAYS, INC. Complete LCD Solutions. AGM6448V Series LCD Module AGM6448V. Without. Without. 495 g(approx.) CXA-L0612-VMR (TDK) MIN -0.

Adaptive Down-Sampling Video Coding

Communication Systems, 5e

Computer Graphics Applications to Crew Displays

QPL6216TR7 PRELIMINARY. Product Description. Feature Overview. Functional Block Diagram. Applications. Ordering Information. High-Linearity SDARS LNA

A Turbo Tutorial. by Jakob Dahl Andersen COM Center Technical University of Denmark

Physics 218: Exam 1. Sections: , , , 544, , 557,569, 572 September 28 th, 2016

A Methodology for Evaluating Storage Systems in Distributed and Hierarchical Video Servers

Source and Channel Coding Issues for ATM Networks y. ECSE Department, Rensselaer Polytechnic Institute, Troy, NY 12180, U.S.A

QPC6222SR GENERAL PURPOSE DPDT TRANSFER SWITCH. Product Overview. Key Features. Functional Block Diagram. Applications. Ordering Information

Wideband silicon low-noise amplifier MMIC

Wideband silicon low-noise amplifier MMIC

CE 603 Photogrammetry II. Condition number = 2.7E+06

Wideband silicon low-noise amplifier MMIC

V6118 EM MICROELECTRONIC - MARIN SA. 2, 4 and 8 Mutiplex LCD Driver

(12) (10) Patent N0.: US 7,260,789 B2 Hunleth et a]. (45) Date of Patent: Aug. 21, 2007

United States Patent (19) Gardner

TGA2238-CP 8 11 GHz 50 W GaN Power Amplifier

BAS70 series; 1PS7xSB70 series

Transcription:

High Speed CAN FD Transceiver 1 Overview Qualified for Auomoive Applicaions according o AEC-Q100 Feaures Fully complian o ISO 11898-2 (2016) and SAE J2284-4/-5 Reference device and par of Ineroperabiliy Tes Specificaion for CAN Transceiver Guaraneed loop delay symmery for CAN FD daa frames up o 5 MBi/s Very low elecromagneic emission (EME) allows he use wihou addiional common mode choke Sand-by mode wih minimized quiescen curren Wake-up indicaion on he RxD oupu Wide common mode range for elecromagneic immuniy (EMI) Excellen ESD robusness +/-10kV (HBM) and +/-11kV (IEC 61000-4-2) PG-TSON-8 PG-DSO-8 Exended supply range on he V CC CAN shor circui proof o ground, baery and V CC TxD ime-ou funcion Very low CAN bus leakage curren in power-down sae Overemperaure proecion Proeced agains auomoive ransiens according ISO 7637 and SAE J2962-2 sandards Green Produc (RoHS complian) Small, leadless TSON8 package designed for auomaed opical inspecion (AOI) AEC Qualified Poenial applicaions Gaeway Modules Body Conrol Modules (BCM) Engine Conrol Uni (ECUs) Daa Shee 1 Rev. 1.1 www.infineon.com/auomoive-ransceiver

Overview Descripion Type Package Marking LE PG-TSON-8 9251 SJ PG-DSO-8 9251 The is he laes Infineon high-speed CAN ransceiver generaion, used inside HS CAN neworks for auomoive and also for indusrial applicaions. I is designed o fulfill he requiremens of ISO 11898-2 (2016) physical layer specificaion and respecively also he SAE sandards J1939 and J2284. The is available in a PG-DSO-8 package and in a small, leadless PG-TSON-8 package. Boh packages are RoHS complian and halogen free. Addiionally he PG-TSON-8 package suppors he solder join requiremens for auomaed opical inspecion (AOI). As an inerface beween he physical bus layer and he HS CAN proocol conroller, he proecs he microconroller agains inerferences generaed inside he nework. A very high ESD robusness and he perfec RF immuniy allows he use in auomoive applicaion wihou adding addiional proecion devices, like suppressor diodes for example. While he ransceiver is no supplied he bus is swiched off and illusrae an ideal passive behavior wih he lowes possible load o all oher subscribers of he HS CAN nework. Based on he high symmery of he CANH and CANL oupu signals, he provides a very low level of elecromagneic emission (EME) wihin a wide frequency range. The fulfills even sringen EMC es limis wihou addiional exernal circui, like a common mode choke for example. The perfec ransmier symmery combined wih he opimized delay symmery of he receiver enables he o suppor CAN FD daa frames. Depending on he size of he nework and he along coming parasiic effecs he device suppors bi raes up o 5 MBi/s. Dedicaed low-power modes, like Sand-by mode provide very low quiescen currens while he device is powered up. In Sand-by mode he ypical quiescen curren on V CC is below 10 µa while he device can sill be waked up by a bus signal on he HS CAN bus. Fail-safe feaures like overemperaure proecion, oupu curren limiaion or he TxD ime-ou feaure proec he and he exernal circuiry from irreparable damage. Daa Shee 2 Rev. 1.1

Table of conens 1 Overview....................................................................... 1 Table of conens................................................................. 3 2 Block diagram................................................................... 4 3 Pin configuraion................................................................. 5 3.1 Pin assignmen........................................................................... 5 3.2 Pin definiions............................................................................ 5 4 High-speed CAN funcional descripion.............................................. 6 4.1 High-speed CAN physical layer............................................................. 6 5 Modes of operaion............................................................... 8 5.1 Normal-operaing mode................................................................... 9 5.2 Sand-by mode........................................................................... 9 5.3 Power-down sae........................................................................ 9 6 Changing he mode of operaion................................................... 10 6.1 Power-up and power-down............................................................... 10 6.2 Mode change by he STB pin.............................................................. 11 6.3 Remoe wake-up........................................................................ 12 7 Fail safe funcions............................................................... 14 7.1 Shor circui proecion.................................................................. 14 7.2 Unconneced logic pins.................................................................. 14 7.3 TxD ime-ou funcion.................................................................... 14 7.4 Overemperaure proecion.............................................................. 15 8 General produc characerisics................................................... 16 8.1 Absolue maximum raings............................................................... 16 8.2 Funcional range........................................................................ 17 8.3 Thermal resisance...................................................................... 17 9 Elecrical characerisics......................................................... 18 9.1 Funcional device characerisics.......................................................... 18 9.2 Diagrams............................................................................... 23 10 Applicaion informaion.......................................................... 24 10.1 ESD robusness according o IEC61000-4-2................................................. 24 10.2 Applicaion example..................................................................... 24 10.3 Furher applicaion informaion........................................................... 25 11 Package ouline................................................................. 26 12 Revision hisory................................................................. 27 Daa Shee 3 Rev. 1.1

Block diagram 2 Block diagram 3 VCC Transmier CANH 7 Driver Timeou 1 TxD CANL 6 Temp- Proecion Mode Conrol 8 STB Receiver Normal-mode Receiver Mux 4 RxD GND V CC /2 Wake- Logic & Filer Low-power Receiver V CC = N.C. Bus-biasing GND 2 5 N.C. Figure 1 Funcional block diagram Daa Shee 4 Rev. 1.1

Pin configuraion 3 Pin configuraion 3.1 Pin assignmen TxD GND V CC 1 2 3 PAD 8 7 6 STB CANH CANL TxD GND 1 2 8 7 STB CANH RxD 4 5 N.C V CC 3 6 CANL (Top-side x-ray view) RxD 4 5 N.C Figure 2 Pin configuraion 3.2 Pin definiions Table 1 Pin definiions and funcions Pin No. Symbol Funcion 1 TxD Transmi Daa Inpu; Inernal pull-up o V CC, low for dominan sae. 2 GND Ground 3 V CC Transmier Supply Volage; 100 nf decoupling capacior o GND required, 4 RxD Receive Daa Oupu; low in dominan sae. 5 N.C. No Conneced; Pin has no funcion and is inernally no conneced. 6 CANL CAN Bus Low Level I/O; low in dominan sae. 7 CANH CAN Bus High Level I/O; high in dominan sae. 8 STB Sand-by Inpu; Inernal pull-up o V CC, low for Normal-operaing mode. PAD Connec o PCB hea sink area. Do no connec o oher poenial han GND. Daa Shee 5 Rev. 1.1

High-speed CAN funcional descripion 4 High-speed CAN funcional descripion HS CAN is a serial bus sysem ha connecs microconrollers, sensors and acuaors for real-ime conrol applicaions. The use of he Conroller Area Nework (abbreviaed CAN) wihin road vehicles is described by he inernaional sandard ISO 11898. According o he 7-layer OSI reference model he physical layer of a HS CAN bus sysem specifies he daa ransmission from one CAN node o all oher available CAN nodes wihin he nework. The physical layer specificaion of a CAN bus sysem includes all elecrical specificaions of a CAN nework. The CAN ransceiver is par of he physical layer specificaion. Several differen physical layer sandards of CAN neworks have been developed in recen years. The is a high-speed CAN ransceiver wih a dedicaed bus wake-up funcion as defined in he laes ISO 11898-2 HS CAN sandard. 4.1 High-speed CAN physical layer TxD CANH CANL VCC VCC VCC = Transmier supply volage TxD = Transmi daa inpu from he microconroller RxD = Receive daa oupu o he microconroller CANH = Bus level on he CANH CANL = inpu/oupu Bus level on he CANL inpu/oupu VDiff = Differenial volage beween CANH and CANL VDiff = VCANH VCANL VDiff VCC dominan receiver hreshold recessive receiver hreshold RxD VCC Loop(H,L) Loop(L,H) Figure 3 High-speed CAN bus signals and logic signals Daa Shee 6 Rev. 1.1

High-speed CAN funcional descripion The is a high-speed CAN ransceiver, operaing as an inerface beween he CAN conroller and he physical bus medium. A HS CAN nework is a wo wire, differenial nework which allows daa ransmission raes up o 5 MBi/s. The characerisic for a HS CAN nework are he wo signal saes on he CAN bus: dominan and recessive (see Figure 3). The CANH and CANL pins are he inerface o he CAN bus and boh pins operae as an inpu and oupu. The RxD and TxD pins are he inerface o he microconroller. The pin TxD is he serial daa inpu from he CAN conroller, he RxD pin is he serial daa oupu o he CAN conroller. As shown in Figure 1, he HS CAN ransceiver includes a receiver and a ransmier uni, allowing he ransceiver o send daa o he bus medium and monior he daa from he bus medium a he same ime. The HS CAN ransceiver convers he serial daa sream which is available on he ransmi daa inpu TxD, ino a differenial oupu signal on he CAN bus, provided by he CANH and CANL pins. The receiver sage of he moniors he daa on he CAN bus and convers hem o a serial, single-ended signal on he RxD oupu pin. A logical low signal on he TxD pin creaes a dominan signal on he CAN bus, followed by a logical low signal on he RxD pin (see Figure 3). The feaure, broadcasing daa o he CAN bus and lisening o he daa raffic on he CAN bus simulaneously is essenial o suppor he bi-o-bi arbiraion wihin CAN neworks. The volage levels for HS CAN ransceivers are defined in ISO 11898-2. Wheher a daa bi is dominan or recessive depends on he volage difference beween he CANH and CANL pins: V Diff = V CANH - V CANL. To ransmi a dominan signal o he CAN bus he ampliude of he differenial signal V Diff is higher han or equal o 1.5 V. To receive a recessive signal from he CAN bus he ampliude of he differenial V Diff is lower han or equal o 0.5 V. Parially-supplied high-speed CAN neworks are hose where he CAN bus nodes of one common nework have differen power supply condiions. Some nodes are conneced o he common power supply, while oher nodes are disconneced from he power supply and in power-down sae. Regardless of wheher he CAN bus subscriber is supplied or no, each subscriber conneced o he common bus media mus no inerfere wih he communicaion. The is designed o suppor parially-supplied neworks. In power-down sae, he receiver inpu resisors are swiched off and he ransceiver inpu has a high resisance. For permanenly supplied ECU's, he HS CAN ransceiver provides a Sand-by mode. In Sand-by mode, he power consumpion of he is opimized o a minimum, while he device is sill able o recognize wake-up paerns on he CAN bus and signal he wake-up even o he exernal microconroller. The volage level on he digial inpu TxD and he digial oupu RxD is deermined by he power supply level a he V CC pin. Depending on he volage level a he V CC pin, he signal levels on he logic pins (STB, TxD and RxD) are compaible wih microconrollers having a 5 V I/O supply. Daa Shee 7 Rev. 1.1

Modes of operaion 5 Modes of operaion The suppors hree differen modes of operaion (see Figure 4 and Table 2): Normal-operaing mode Sand-by mode Mode changes are eiher riggered by he mode selecion inpu pin STB. Wake-up evens on he HS CAN bus are indicaed on he RxD oupu pin in Sand-by mode, bu no mode change is riggered by a wake-up even. An undervolage even on he supply V CC powers down he. 1) Transmier disabled for V CC < V CC_UV Power-down sae STB X V CC > STB 0 V CC < V CC > STB 1 Normal-operaing mode 1) STB 0 V CC > STB 0 V CC > STB 1 Sand-by mode V CC > STB V CC > 1 Figure 4 Mode sae diagram Table 2 Modes of operaion Mode STB V CC Bus Bias Transmier Normal-mode Receiver Low-power Receiver Normal-operaing low V CC > V CC_UV V CC /2 on on off low V CC_UV > V CC > GND off on off Sand-by high V CC > GND off off on Power-down sae X V CC < floaing off off off Daa Shee 8 Rev. 1.1

Modes of operaion 5.1 Normal-operaing mode In Normal-operaing mode he ransceiver sends and receives daa from he HS CAN bus. All funcions are acive (see also Figure 4 and Table 2): The ransmier is acive and drives he serial daa sream on he TxD inpu pin o he bus pins CANH and CANL. The normal-mode receiver is acive and convers he signals from he bus o a serial daa sream on he RxD oupu. The low-power receiver is urned off. The RxD oupu pin indicaes he daa received by he normal-mode receiver. The bus biasing is conneced o V CC /2. The STB inpu pin is acive and changes he mode of operaion. The TxD ime-ou funcion is enabled and disconnecs he ransmier in case a ime-ou is deeced. The overemperaure proecion is enabled and disconnecs he ransmier in case an overemperaure is deeced. The undervolage deecion on V CC is enabled. Normal-operaing mode is enered from Sand-by mode, when he STB inpu pin is se o logical low. Normal-operaing mode can only be enered when all supplies are available: The supply V CC is available (V CC > ). 5.2 Sand-by mode The Sand-by mode is he power save mode of he. In Sand-by mode mos of he funcions are urned off and he is monioring he bus for a valid wake-up paern (WUP). The following funcions are available (see also Figure 4 and Table 2): The ransmier is disabled and he daa available on he TxD inpu is blocked. The normal-mode receiver is disabled. The low-power receiver is urned on and moniors he bus for a valid wake-up paern (WUP). The RxD oupu pin follows he Bus signal afer WUP deecion. The bus biasing is conneced o GND. The STB inpu pin is acive and changes he mode of operaion. The TxD ime-ou funcion is disabled. The overemperaure proecion is disabled. The undervolage deecion on V CC is enabled and powers down he device in case of deecion. The Sand-by mode can be enered from Normal-operaing mode by seing he STB pin o logical high. To ener Sand-by mode he supply V CC needs o be available (V CC > ). 5.3 Power-down sae Independen of he saus a STB inpu pin he is powered down if he supply volage V CC < (see Figure 4). In he power-down sae he differenial inpu resisors of he receiver are swiched off. The CANH and CANL bus inerface of he is floaing and acs as a high-impedance inpu wih a very small leakage curren. The high-ohmic inpu does no influence he recessive level of he CAN nework and allows an opimized EME performance of he enire HS CAN nework. In power-down sae he ransceiver is an invisible node o he bus. Daa Shee 9 Rev. 1.1

Changing he mode of operaion 6 Changing he mode of operaion 6.1 Power-up and power-down The HS CAN ransceiver powers up by applying he supply volage V CC o he device (V CC > ). Afer powering up, he device eners one ou of wo operaing modes (see Figure 5 and Figure 6). Depending on he condiion of he mode selecion pin STB he device can ener every mode of operaion afer he power-up: V CC is available and STB inpu is se o low - Normal-operaing mode The device powers down when he supply falls below he undervolage deecion hreshold The power-down deecion is acive in every mode of operaion. V CC > V CC > STB 0 Normal-operaing mode 1) STB 0 V CC > Power-down sae STB X V CC < 1) Transmier disabled for VCC < VCC_UV blue -> indicaes he even riggering he power-up or power-down red -> indicaes he condiion which is required o reach a cerain operaing mode V CC < V CC > STB 1 Sand-by mode STB V CC > 1 Figure 5 Power-up and power-down VCC VCC undervolage monior VPOD POFF hyseresis VPOD_HYS PON VCC undervolage monior VPOD any mode of operaion Power-down sae Sand-by mode STB "0" for Normal-operaing mode "1" for Sand-by mode X = don care high due he inernal pull-up resisor 1) Figure 6 1) assuming no exernal signal applied Power-up and power-down imings Daa Shee 10 Rev. 1.1

Changing he mode of operaion 6.2 Mode change by he STB pin When he is supplied wih he volage V CC he inernal logic works and mode change by he mode selecion pin STB is possible. By defaul he STB inpu pin is logical high due o he inernal pull-up curren source o V CC. Changing he STB inpu pin o logical low in Sand-by mode riggers a mode change o Normal-operaing mode (see Figure 7). Sand-by mode can be enered from Normal-operaing mode by seing he STB pin o logical high. While changing he mode of operaion from Normal-operaing mode o Sand-by mode, he ransceiver urns off he ransmier. 1) Transmier disabled for V CC < V CC_UV Normal-operaing mode 1) STB 0 V CC > Power-down sae STB X V CC < V CC > STB 0 V CC > STB 1 Sand-by mode STB V CC > 1 Figure 7 Mode selecion by he STB pin Daa Shee 11 Rev. 1.1

Changing he mode of operaion 6.3 Remoe wake-up The has a remoe wake-up feaure also called bus wake-up feaure according o he ISO 11898-2 (2016). In Sand-by mode he low-power receiver moniors he aciviy on he CAN bus and in case i deecs a wake-up paern i indicaes he wake-up signal on he RxD oupu pin. In Sand-by mode a wake-up even on he HS CAN is flagged on he RxD oupu pin (see Figure 9). The ransceiver remains in he currenly seleced mode of operaion. No mode change is applied due o he wakeup even (see Figure 8). STB Sand-by mode V CC 1 on Indicaion on RxD if wakeup paern deeced Figure 8 Remoe wake-up V CC on STB 1 Bus wake-up paern A bus wake-up is riggered by a dedicaed valid wake-up paern. The defined wake-up paern avoids any false wake-up by spikes which migh be on he HS CAN bus or by a permanen bus shorage. The inernal wake-up flag will be rese when: A mode change o Normal-operaing mode is applied during he wake-up paern. A power-down even occurs on he digial supply V CC. Wihin he maximum wake-up ime WAKE, he wake-up paern conens a dominan signal wih he pulse widh Filer, followed by a recessive signal wih he pulse widh Filer and anoher dominan signal wih he pulse widh Filer (see Figure 9). The RxD oupu remains logical high as long no wake-up even has been deeced. Daa Shee 12 Rev. 1.1

Changing he mode of operaion V Diff < Wake V Diff_LP_D V Diff_LP_R > Filer > Filer > Filer WU RxD V CC wake-up deeced 30% of V CC Figure 9 Remoe wake-up signal Afer a wake-up even has been deeced he RxD oupu follows he CANH/CANL inpu pins. Dominan and recessive signals are indicaed on he RxD oupu as logical high and low wih he delay of WU as long heir pulse widh exceeds he filer ime Filer (see also Figure 10). V Diff V Diff_LP_D WU WU WU V Diff_LP_R RxD wake-up deeced Figure 10 RxD signal afer wake-up deecion Daa Shee 13 Rev. 1.1

Fail safe funcions 7 Fail safe funcions 7.1 Shor circui proecion The CANH and CANL bus pins are proven o cope wih a shor circui faul agains GND and agains he supply volages. A curren limiing circui proecs he ransceiver agains damages. If he device is heaing up due o a coninuous shor on he CANH or CANL, he inernal overemperaure proecion swiches off he bus ransmier. 7.2 Unconneced logic pins All logic inpu pins have an inernal pull-up curren source o V CC. In case he V CC supply is acivaed and he logical pins are open, he eners ino he Sand-by mode by defaul. 7.3 TxD ime-ou funcion The TxD ime-ou feaure proecs he CAN bus agains permanen blocking in case he logical signal on he TxD pin is coninuously low. A coninuous low signal on he TxD pin migh have is roo cause in a lockedup microconroller or in a shor circui on he prined circui board, for example. In Normal-operaing mode, a logical low signal on he TxD pin for he ime > TxD enables he TxD ime-ou feaure and he disables he ransmier (see Figure 11). The receiver is sill acive and he daa on he bus coninues o be moniored by he RxD oupu pin. TxD CANH CANL > TxD TxD ime-ou TxD ime ou released RxD Figure 11 TxD ime-ou funcion Figure 11 illusraes how he ransmier is deacivaed and acivaed again. A permanen low signal on he TxD inpu pin acivaes he TxD ime-ou funcion and deacivaes he ransmier. To release he ransmier afer a TxD ime-ou even, he requires a signal change on he TxD inpu pin from logical low o logical high. Daa Shee 14 Rev. 1.1

Fail safe funcions 7.4 Overemperaure proecion The has an inegraed overemperaure deecion o proec he agains hermal oversress of he ransmier. The overemperaure proecion is only acive in Normal-operaing mode. In case of an overemperaure condiion, he emperaure sensor will disable he ransmier while he ransceiver remains in Normal-operaing mode. Afer he device has cooled down he ransmier is acivaed again (see Figure 12). A hyseresis is implemened wihin he emperaure sensor. T J T JSD (shu down emperaure) T cool down swich-on ransmier CANH CANL TxD RxD Figure 12 Overemperaure proecion Daa Shee 15 Rev. 1.1

General produc characerisics 8 General produc characerisics 8.1 Absolue maximum raings Table 3 Absolue maximum raings volages, currens and emperaures 1) All volages wih respec o ground; posiive curren flowing ino pin; (unless oherwise specified) Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Volages Transmier supply volage V CC -0.3 6.0 V P_8.1.1 CANH and CANL DC volage V CANH -40 40 V P_8.1.3 versus GND Differenial volage beween V CAN_Diff -40 40 V P_8.1.4 CANH and CANL Volages a he digial I/O pins: V MAX_IO1-0.3 6.0 V P_8.1.5 STB, RxD, TxD Volages a he digial I/O pins: V MAX_IO2-0.3 V CC +0.3 V P_8.1.6 STB, RxD, TxD Currens RxD oupu curren I RxD -5 5 ma P_8.1.7 Temperaures Juncion emperaure T j -40 150 C P_8.1.8 Sorage emperaure T S -55 150 C P_8.1.9 ESD Resisiviy ESD immuniy a CANH, CANL versus GND V ESD_HBM_CAN -10 10 kv HBM (100 pf via 1.5 kω) 2) P_8.1.11 P_8.1.12 ESD immuniy a all oher pins V ESD_HBM_ALL -2 2 kv HBM (100 pf via 1.5 kω) 2) ESD immuniy all pins V ESD_CDM -750 750 V CDM 3) P_8.1.13 1) No subjec o producion es, specified by design 2) ESD suscepibiliy, Human Body Model HBM according o ANSI/ESDA/JEDEC JS-001 3) ESD suscepibiliy, Charge Device Model CDM according o EIA/JESD22-C101 or ESDA STM5.3.1 Noe: Sresses above he ones lised here may cause permanen damage o he device. Exposure o absolue maximum raing condiions for exended periods may affec device reliabiliy. Inegraed proecion funcions are designed o preven IC desrucion under faul condiions described in he daa shee. Faul condiions are considered as ouside normal-operaing range. Proecion funcions are no designed for coninuos repeiive operaion. Daa Shee 16 Rev. 1.1

General produc characerisics 8.2 Funcional range Table 4 Funcional range Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Supply Volages Transmier supply volage V CC 4.5 5.5 V P_8.2.1 Thermal Parameers Juncion emperaure T j -40 150 C 1) P_8.2.3 1) No subjec o producion es, specified by design. Noe: Wihin he funcional range he IC operaes as described in he circui descripion. The elecrical characerisics are specified wihin he condiions given in he relaed elecrical characerisics able. 8.3 Thermal resisance Noe: This hermal daa was generaed in accordance wih JEDEC JESD51 sandards. For more informaion, please visi www.jedec.org. Table 5 Thermal resisance 1) Parameer Symbol Values Uni Noe or Min. Typ. Max. Tes Condiion Thermal Resisances Juncion o Ambien R hja_tson8 65 K/W 2) PG-TSON-8 Juncion o Ambien R hja_dso8 120 K/W 2) PG-DSO-8 Thermal Shudown (juncion emperaure) Thermal shudown emperaure, rising T JSD 170 180 190 C emperaure falling: Min. 150 C Number P_8.3.1 P_8.3.2 P_8.3.3 Thermal shudown hyseresis T 5 10 20 K P_8.3.4 1) No subjec o producion es, specified by design 2) Specified R hja value is according o Jedec JESD51-2,-7 a naural convecion on FR4 2s2p board. The produc () was simulaed on a 76.2 x 114.3 x 1.5 mm board wih 2 inner copper layers (2 x 70µm Cu, 2 x 35µm Cu) Daa Shee 17 Rev. 1.1

Elecrical characerisics 9 Elecrical characerisics 9.1 Funcional device characerisics Table 6 Elecrical characerisics 4.5 V < V CC <5.5V; R L =60Ω; -40 C < T j < 150 C; all volages wih respec o ground; posiive curren flowing ino pin; unless oherwise specified. Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Curren Consumpion Curren consumpion a V CC Normal-operaing, recessive sae I CC_R 2 4 ma V TxD = V CC, V =0V; P_9.1.1 Curren consumpion a V CC Normal-operaing mode, dominan sae Curren consumpion a V CC Sand-by mode Curren consumpion a V CC Sand-by mode I CC_D 38 48 ma V TxD = V =0V; P_9.1.2 I CC(STB) 7 18 µa V TxD = V STB =V CC ; P_9.1.4 I CC(STB)_85 13 µa V TxD = V STB = V 1) CC T J < 85 C; 0V<V CC <5.5V; P_9.1.6 Supply reses V CC undervolage monior V CC(UV,R) 3.8 4.35 4.5 V P_9.1.12 rising edge V CC undervolage monior V CC(UV,F) 3.8 4.25 4.5 V P_9.1.13 falling edge V CC undervolage monior V CC(UV,H) 100 mv 1) P_9.1.14 hyseresis V CC power-down hreshold 2.0 2.55 3.0 V P_9.1.92 V CC delay ime power-up PON 280 µs 1) (see Figure 6); P_9.1.19 V CC delay ime power-down POFF 100 µs 1) (see Figure 6); P_9.1.20 Receiver oupu RxD High level oupu curren I RxD,H -4-1 ma V RxD = V CC -0,4V; P_9.1.21 V Diff < 0,5V Low level oupu curren I RxD,L 1 4 ma V RxD =0.4V; V Diff > 0,9V P_9.1.22 Transmission inpu TxD High level inpu volage hreshold Low level inpu volage hreshold V TxD,H 0.5 V CC 0.7 V CC V recessive sae; P_9.1.26 V TxD,L 0.3 V CC 0.4 V CC V dominan sae; P_9.1.27 Inpu hyseresis V HYS(TxD) 200 mv 1) P_9.1.28 High level inpu curren I TxD,H -2 2 µa V TxD = V CC ; P_9.1.29 Daa Shee 18 Rev. 1.1

Elecrical characerisics Table 6 Elecrical characerisics (con d) 4.5 V < V CC <5.5V; R L =60Ω; -40 C < T j < 150 C; all volages wih respec o ground; posiive curren flowing ino pin; unless oherwise specified. Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Low level inpu curren I TxD,L -200-20 µa V TxD =0V; P_9.1.30 Inpu capaciance C TxD 10 pf 1) P_9.1.31 TxD permanen dominan ime-ou, opional sand-by inpu STB High level inpu volage hreshold Low level inpu volage hreshold TxD 1 4 ms Normal-operaing mode; P_9.1.32 V STB,H 0.5 V CC 0.7 V CC V Sand-by mode; P_9.1.36 V STB,L 0.3 0.4 V Normal-operaing V CC V CC mode; P_9.1.37 Inpu hyseresis V HYS(STB) 200 mv P_9.1.42 Inpu capaciance C (STB) 10 pf 1) P_9.1.43 1) Daa Shee 19 Rev. 1.1

Elecrical characerisics Table 6 Elecrical characerisics (con d) 4.5 V < V CC <5.5V; R L =60Ω; -40 C < T j < 150 C; all volages wih respec o ground; posiive curren flowing ino pin; unless oherwise specified. Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Bus receiver Differenial range dominan V Diff_D_Range 0.9 8.0 V -12V V CMR 12 V; P_9.1.46 Normal-operaing mode Differenial range recessive V Diff_R_Range -3.0 0.5 V -12V V CMR 12 V; P_9.1.48 Normal-operaing mode Differenial receiver hyseresis V Diff,hys 30 mv 1) P_9.1.49 Normal-operaing mode Differenial range hreshold V Diff_D_STB_R 1.15 8.0 V -12V V CMR 12 V; P_9.1.50 dominan Sand-by mode ange Differenial range recessive V Diff_R_STB_R -3.0 0.4 V -12V V CMR 12 V; P_9.1.51 Sand-by mode ange Common mode range CMR -12 12 V P_9.1.52 Single ended inernal resisance R CAN_H, 6 50 kω recessive sae, R CAN_L -2V V CANH 7V; -2V V CANL 7V; Differenial inernal resisance R Diff 12 100 kω recessive sae, -2V V CANH 7V; -2V V CANL 7V; Inpu resisance deviaion beween CANH and CANL Inpu capaciance CANH, CANL versus GND R i -3 3 % 1) recessive sae, V CANH = V CANL = 5V; P_9.1.53 P_9.1.54 P_9.1.55 C In 20 40 pf 1) P_9.1.56 Differenial inpu capaciance C InDiff 10 20 pf 1) P_9.1.57 Bus ransmier CANL, CANH recessive oupu volage Normal-operaing mode CANH, CANL recessive oupu volage difference Normal-operaing mode CANL dominan oupu volage Normal-operaing mode CANH dominan oupu volage Normal-operaing mode V CANL,H 2.0 2.5 3.0 V V TxD = V CC no load; V Diff_R_NM = V CANH - V CANL -500 50 mv V TxD = V CC, no load; V CANL 0.5 2.25 V V TxD =0V; 50 Ω < R L <65Ω, 4.75 V < V CC <5.25V; V CANH 2.75 4.5 V V TxD =0V; 50 Ω < R L <65Ω, 4.75 V < V CC <5.25V; P_9.1.58 P_9.1.59 P_9.1.60 P_9.1.61 Daa Shee 20 Rev. 1.1

Elecrical characerisics Table 6 Elecrical characerisics (con d) 4.5 V < V CC <5.5V; R L =60Ω; -40 C < T j < 150 C; all volages wih respec o ground; posiive curren flowing ino pin; unless oherwise specified. Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Differenial volage dominan Normal-operaing mode V Diff = V CANH - V CANL Differenial volage dominan exended bus load Normal-operaing mode Differenial volage dominan high exended bus load Normal-operaing mode CANH, CANL recessive oupu volage difference Sand-by mode CANL, CANH recessive oupu volage Sand-by mode Driver symmery (V SYM = V CANH + V CANL ) V Diff_D_NM 1.5 2.0 3.0 V V TxD =0V, 50 Ω < R L <65Ω, 4.75 V < V CC <5.25V; V Diff_EXT_BL 1.4 2.0 3.3 V V TxD =0V, 45 Ω < R L <70Ω, 4.75 V < V CC <5.25V; V Diff_HEXT_BL 1.5 5.0 V V TxD =0V, R L = 2240Ω, 4.75 V < V CC <5.25V, saic behavior; 1) P_9.1.62 P_9.1.63 P_9.1.64 V Diff_STB -0.2 0.2 V no load; P_9.1.65 V CANL,H -0.1 0.1 V no load; P_9.1.66 V SYM 0.9 V CC 1.0 V CC 1.1 V CC V 1) 2) C 1 = 4.7nF P_9.1.67 CANL shor circui curren I CANLsc 40 75 115 ma V CANLshor =18V, < TxD, V TxD =0V; CANH shor circui curren I CANHsc -115-75 -40 ma V CANHshor = -3 V, < TxD, V TxD =0V; P_9.1.68 P_9.1.70 Leakage curren, CANH I CANH,lk -5 5 µa V CC =0V, P_9.1.71 0V<V CANH 5V, V CANH = V CANL; Leakage curren, CANL I CANL,lk -5 5 µa V CC =0V, 0V<V CANL 5V, V CANH = V CANL; P_9.1.72 Dynamic CAN-ransceiver characerisics Propagaion delay TxD-o-RxD Propagaion delay increased load TxD-o-RxD Loop 80 255 ns C 1 =0pF, C 2 = 100 pf, C RxD =15pF; (see Figure 14) Loop_150 80 330 ns C 1 =0pF, C 2 = 100 pf, C RxD =15pF, R L = 150 Ω 1) P_9.1.73 P_9.1.74 Daa Shee 21 Rev. 1.1

Elecrical characerisics Table 6 Elecrical characerisics (con d) 4.5 V < V CC <5.5V; R L =60Ω; -40 C < T j < 150 C; all volages wih respec o ground; posiive curren flowing ino pin; unless oherwise specified. Parameer Symbol Values Uni Noe or Number Min. Typ. Max. Tes Condiion Delay Times Delay ime for mode change Mode 20 µs 1) P_9.1.79 CAN aciviy filer ime Filer 0.5 1.8 µs 1) P_9.1.81 Bus wake-up ime-ou Wake 0.8 10 ms 1) P_9.1.82 Bus wake-up delay ime WU 5 µs P_9.1.83 CAN FD characerisics Received recessive bi widh a 2 MBi/s Received recessive bi widh a 5 MBi/s Transmied recessive bi widh a 2 MBi/s Transmied recessive bi widh a 5 MBi/s Receiver iming symmery a 2MBi/s Rec_2M = Bi(RxD)_2M - Bi(Bus)_2M Receiver iming symmery a 5MBi/s Rec_5M = Bi(RxD)_5M - Bi(Bus)_5M Bi(RxD)_2M 400 500 550 ns C 2 = 100 pf, C RxD =15pF, Bi = 500 ns, (see Figure 15); Bi(RxD)_5M 120 200 220 ns C 2 = 100 pf, C RxD =15pF, Bi = 200 ns, (see Figure 15); Bi(Bus)_2M 435 500 530 ns C 2 = 100 pf, C RxD =15pF, Bi = 500 ns, (see Figure 15); Bi(Bus)_5M 155 200 210 ns C 2 = 100 pf, C RxD =15pF, Bi = 200 ns, (see Figure 15); Rec_2M -65 40 ns C 2 = 100 pf, C RxD =15pF, Bi = 500 ns, (see Figure 15); Rec_5M -45 15 ns C 2 = 100 pf, C RxD =15pF, Bi = 200 ns, (see Figure 15); 1) No subjec o producion es, specified by design. 2) VSYM shall be observed during dominan and recessive sae and also during he ransiion from dominan o recessive and vice versa, while TxD is simulaed by a square wave signal wih a frequency of 1 MHz. P_9.1.84 P_9.1.85 P_9.1.86 P_9.1.87 P_9.1.88 P_9.1.89 Daa Shee 22 Rev. 1.1

Elecrical characerisics 9.2 Diagrams N.C. 5 7 CANH C 2 R L /2 C 1 R L /2 6 CANL TxD STB RxD 1 8 4 C RxD GND 2 V CC 3 100 nf Figure 13 Tes circui for dynamic characerisics TxD 0.7 x VCC 0.3 x VCC VDiff Loop(H,L) Loop(L,H) RxD 0.7 x VCC 0.3 x VCC Figure 14 Timing diagrams for dynamic characerisics TxD 0.7 x VCC 0.3 x VCC 0.3 x VCC 5 x Bi Bi Loop(H,L) VDiff VDiff = VCANH - VCANL Bi(Bus) 0.5 V 0.9 V Loop(L,H) Bi(RxD) RxD 0.7 x VCC 0.3 x VCC Figure 15 Recessive bi ime for five dominan bis followed by one recessive bi Daa Shee 23 Rev. 1.1

Applicaion informaion 10 Applicaion informaion 10.1 ESD robusness according o IEC61000-4-2 Tess for ESD robusness according o IEC61000-4-2 Gun es (150 pf, 330 Ω) have been performed. The resuls and es condiions are available in a separae es repor. Table 7 ESD robusness according o IEC61000-4-2 Performed Tes Resul Uni Remarks Elecrosaic discharge volage a pin CANH and CANL versus GND +11 kv 1) Posiive pulse Elecrosaic discharge volage a pin CANH and CANL versus GND 1) No subjec o producion es. ESD suscepibiliy ESD GUN according o GIFT / ICT paper: EMC Evaluaion of CAN Transceivers, version IEC TS62228, secion 4.3. (DIN EN61000-4-2) Tesed by exernal es faciliy (IBEE Zwickau, EMC es repor Nr. 01-07-2017 and Nr. 06-08-17) 10.2 Applicaion example -11 kv 1) Negaive pulse V BAT I Q1 CANH CANL TLE4476D EN GND 22 μf 100 nf 120 Ohm 7 6 3 V CC N.C. 5 8 STB CANH 1 TxD 4 RxD CANL Ou Ou In VCC 100 nf Microconroller e.g. XC22xx GND GND 2 I Q1 TLE4476D EN GND 22 μf 100 nf 7 6 3 V CC N.C. 5 8 STB CANH 1 TxD 4 RxD CANL Ou Ou In VCC 100 nf Microconroller e.g. XC22xx GND 120 Ohm GND 2 Figure 16 CANH CANL example ECU design Applicaion circui Daa Shee 24 Rev. 1.1

Applicaion informaion 10.3 Furher applicaion informaion Exising applicaion noe of For furher informaion you may visi: hp://www.infineon.com/auomoive-ransceiver Daa Shee 25 Rev. 1.1

Package ouline 11 Package ouline Figure 17 PG-TSON-8 (Plasic Thin Small Ouline Nonleaded) Figure 18 PG-DSO-8 (Plasic Dual Small Ouline) Green produc (RoHS complian) To mee he world-wide cusomer requiremens for environmenally friendly producs and o be complian wih governmen regulaions he device is available as a green produc. Green producs are RoHS complian (i.e. Pb-free finish on leads and suiable for Pb-free soldering according o IPC/JEDEC J-STD-020). For furher informaion on alernaive packages, please visi our websie: hp://www.infineon.com/packages. Dimensions in mm Daa Shee 26 Rev. 1.1

Revision hisory 12 Revision hisory Revision Dae Changes 1.1 Daa Shee updaed: I CC_D max. lowered from 60mA o 48mA (see P_9.1.2) I CC_(STB) max. lowered from 20µA o 18µA (see P_9.1.4) Exended emperaure condiion T J < 150 C (see P_9.1.4) Inroduced new Sand-by Mode curren consumpion for V CC < 85 C: max. 13µA (see P_9.1.6) Increased HBM robusness o +/-10kV (see P_8.1.11) Updaed Figure 14. Removed unspecified parameers d(l),t, d(l),r, d(h),t, d(h),r. Ediorial Changes 1.0 2017-09-14 Daa Shee creaed Daa Shee 27 Rev. 1.1

Trademarks All referenced produc or service names and rademarks are he propery of heir respecive owners. Ediion Published by Infineon Technologies AG 81726 Munich, Germany 2018 Infineon Technologies AG. All Righs Reserved. Do you have a quesion abou any aspec of his documen? Email: erraum@infineon.com IMPORTANT NOTICE The informaion given in his documen shall in no even be regarded as a guaranee of condiions or characerisics ("Beschaffenheisgaranie"). Wih respec o any examples, hins or any ypical values saed herein and/or any informaion regarding he applicaion of he produc, Infineon Technologies hereby disclaims any and all warranies and liabiliies of any kind, including wihou limiaion warranies of non-infringemen of inellecual propery righs of any hird pary. In addiion, any informaion given in his documen is subjec o cusomer's compliance wih is obligaions saed in his documen and any applicable legal requiremens, norms and sandards concerning cusomer's producs and any use of he produc of Infineon Technologies in cusomer's applicaions. The daa conained in his documen is exclusively inended for echnically rained saff. I is he responsibiliy of cusomer's echnical deparmens o evaluae he suiabiliy of he produc for he inended applicaion and he compleeness of he produc informaion given in his documen wih respec o such applicaion. For furher informaion on echnology, delivery erms and condiions and prices, please conac he neares Infineon Technologies Office (www.infineon.com). WARNINGS Due o echnical requiremens producs may conain dangerous subsances. For informaion on he ypes in quesion please conac your neares Infineon Technologies office. Excep as oherwise explicily approved by Infineon Technologies in a wrien documen signed by auhorized represenaives of Infineon Technologies, Infineon Technologies producs may no be used in any applicaions where a failure of he produc or any consequences of he use hereof can reasonably be expeced o resul in personal injury.