INTEGRATED CIRCUITS DATA SHEET PCA82C252 Fault-tolerant CAN transceiver Product specification Supersedes data of 1997 Mar 07 File under Integrated Circuits, IC18 1997 Oct 28 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 FEATURES • Thermally protected Optimized for in-car low-speed communication • Bus lines protected against transients in an automotive environment • Baud rate up to 125 kBaud • An unpowered node does not disturb the bus lines. • Up to 15 nodes can be connected • Supports unshielded bus wires Support for low-power modes • Low RFI due to built-in slope control function • Low current sleep/standby mode with wake-up via the bus lines • Fully integrated receiver filters. • Power-on reset flag on the output. Bus failure management • Supports one-wire transmission modes with ground offset voltages up to 1.5 V GENERAL DESCRIPTION The PCA82C252 is the interface between the CAN protocol controller and the physical bus. It is primarily intended for low-speed applications, up to 125 kBaud, in passenger cars. The device provides differential transmit capability but will switch in error conditions to a single-wire transmitter and/or receiver. • Automatic switching to single-wire mode in the event of bus failure • Automatic reset to differential mode if bus failure is removed. Protection • Short-circuit proof to battery and ground in 12 V powered systems QUICK REFERENCE DATA SYMBOL PARAMETER VCC supply voltage VBAT battery voltage CONDITIONS MIN. TYP. MIN. UNIT 4.75 − 5.25 V no time limit −0.3 − +27 V operating 6.0 − 27 V load dump − − 40 V Isleep sleep mode current VCC = 0 V; VBAT = 12 V − 50 − µA VCANH,VCANL CANH, CANL input voltage VCC = 0 to 5.5 V; VBAT ≥ 0 V; no time limit −10 − +27 V VCC = 0 to 5.5 V; VBAT ≥ 0 V; t < 0.1 ms; load dump −40 − +40 V VDROP(H) CANH transmitter drop voltage ICANH = 40 mA − − 1.4 V VDROP(L) CANL transmitter drop voltage ICANL = 40 mA − − 1.4 V tPD propagation delay TXD to RXD − 1 − µs tf bus output fall time 90% to 10% − 0.5 − µs tr bus output rise time 10% to 90% − 0.5 − µs Tamb operating ambient temperature −40 − +125 °C ORDERING INFORMATION PACKAGE TYPE NUMBER NAME PCA82C252T SO14 1997 Oct 28 DESCRIPTION plastic small outline package; 14 leads; body width 3.9 mm 2 VERSION SOT108-1 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 BLOCK DIAGRAM BAT handbook, full pagewidth 14 INH WAKE STB EN VCC 10 16 kΩ 1 7 TEMPERATURE PROTECTION WAKE-UP STANDBY CONTROL 5 6 9 11 VCC TXD 12 8 DRIVER 2 RTL CANH CANL RTH PCA82C252 NERR FAILURE DETECTOR PLUS WAKE UP PLUS TIME-OUT 4 FILTER RXD RECEIVER 3 FILTER 13 MBH548 GND Fig.1 Block diagram. 1997 Oct 28 3 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 PINNING SYMBOL PIN DESCRIPTION INH 1 inhibit output for switching external 5 V regulator TXD 2 transmit data input, when LOW bus data will be dominant, when HIGH bus data will be recessive RXD 3 receive data output, when LOW bus data will be dominant NERR 4 error output pin, when LOW a bus error exists STB 5 not standby digital control input signal (active LOW) EN 6 enable digital control input signal WAKE 7 not wake input signal, when pulled down INH becomes active for wake-up (active LOW) RTH 8 termination resistor, CANH line will be high-impedance with certain bus errors RTL 9 termination resistor, CANL line will be high-impedance with certain bus errors VCC 10 supply voltage (+5 V) CANH 11 high voltage bus line, will be HIGH in dominant state CANL 12 low voltage bus line, will be LOW in dominant state GND 13 ground BAT 14 battery voltage handbook, halfpage INH 1 14 BAT TXD 2 13 GND RXD 3 12 CANL NERR 4 PCA82C252 11 CANH STB 5 10 VCC EN 6 9 RTL WAKE 7 8 RTH MBG621 Fig.2 Pin configuration. 1997 Oct 28 4 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 Failures 4 and 7 initially result in a permanent dominant level at RXD. After a time-out, the CANL driver and the RTL pin are switched off. Only a weak pull-up at RTL remains. Reception continues by switching to the single-wire mode via CANH. When failures 4 or 7 are removed, the recessive bus levels are restored. If the differential voltage remains below the recessive threshold level for a certain period of time, reception and transmission switch back to the differential mode. FUNCTIONAL DESCRIPTION The PCA82C252 is the interface between the CAN protocol controller and the physical bus. It is primarily intended for low speed applications, up to 125 kbaud, in passenger cars. The device provides differential transmit capability to the bus and differential receive capability to the CAN controller. To reduce RF interference the rise and fall slope are limited. This allows the use of an unshielded twisted pair or a parallel pair of wires for the bus. Moreover, it supports transmission capability on either bus wire if one of the bus wires is corrupted. The failure detection logic automatically selects a suitable transmission mode. If any of the seven wiring failures occur, the output NERR will be made LOW. On error recovery, NERR will be made HIGH again. During all single-wire transmissions, the EMC performance (both immunity and emission) is worse than in the differential mode. Integrated receiver filters suppress any HF noise induced into the bus wires. The cut-off frequency of these filters is a compromise between propagation delay and HF suppression. In the single-wire mode, low frequency noise cannot be distinguished from the required signal. In normal operation (no wiring failures) the differential receiver is output to RXD. The differential receiver inputs are connected to CANH and CANL through integrated filters. The filtered input signals are also used for the single wire receivers. The CANH and CANL receivers have threshold voltages that ensure a maximum noise margin in single-wire modes. Low power modes Failure detector The transceiver provides 3 low power modes which can be entered and exited via pins STB and EN. The failure detector is active in the normal operation mode and detects the following single bus failures and switches to an appropriate mode: The sleep mode is the mode with the lowest power consumption. The INH pin is switched to high-impedance for deactivation of external voltage regulators. CANL is biased to the battery voltage via the RTL output. If the supply voltage is provided the RXD and NERR will signal the wake-up interrupt 1. CANH wire interrupted 2. CANL wire interrupted 3. CANH short-circuited to battery 4. CANL short-circuited to ground The VBAT standby mode will react the same as the sleep mode with an active INH output. 5. CANH short-circuited to ground 6. CANL short-circuited to battery The VCC standby mode is the VBAT standby with RTL switched to the VCC voltage. In this mode the NERR output signals the VBAT power-on flag and the RXD output will show the wake-up interrupt. 7. CANL mutually shorted to CANH. The differential receiver threshold is set at −2.9 V. This ensures correct reception in the normal operating modes and, in the event of failures 1, 2 and 5 with a noise margin as high as possible. These failures, or recovery from them, do not destroy ongoing transmissions. To ensure speed requirements the differential receiver has an acceleration function. Wake-up requests are recognized by the transceiver when a dominant signal is detected on either bus line or if the WAKE pin is connected to ground. On a wake-up request the transceiver will set the INH output which can be used to activate the external VCC voltage regulator. If VCC is provided the wake-up request can be read on the NERR or RXD outputs, on which the external microcontroller can wake up the transceiver (switch to normal operating mode) via STB and EN. Failures 3 and 6 are detected by comparators connected to CANH and CANL, respectively. If the comparator threshold is exceeded for a certain period of time, the reception is switched to the single-wire mode. This time is needed to avoid false triggering by external RF fields. Recovery from these failures is detected automatically after a certain time-out (filtering) and no transmission is lost. 1997 Oct 28 5 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 To prevent false wake-up due to transients or RF fields, wake-up voltage threshold levels have to be maintained for a certain period of time. In the low power modes the failure detection circuit remains partly active to prevent increased power consumption should errors 3, 4 and 7 occur. Protections A current limiting circuit protects the transmitter output stages against short-circuit to positive and negative battery voltage. If the junction temperature exceeds a maximum value, the transmitter output stages are disabled. Because the transmitter is responsible for the major part of the power dissipation, this will result in a reduced power dissipation and hence a lower chip temperature. All other parts of the IC will remain operating. Power on After power-on VBAT is switched on, the INH pin will become HIGH and an internal power-on flag will be set. This flag can be read via the NERR pin (STB = 1, EN = 0) and will be reset by entering the normal operation mode. The CANH and CANL inputs are protected against electrical transients which may occur in an automotive environment. The EN and STB pins will internally be set to LOW level, if the VCC voltage is below a certain threshold level, to provide fail safe functionality. Table 1 Truth table of CAN transceiver STB EN MODE standby(1) INH NERR RXD RTL 0 0 VBAT 0 0 sleep(2) floating switched to VBAT 0 1 go to sleep command floating switched to VBAT standby(3) 1 0 VCC 1 1 normal operation mode HIGH LOW active wake-up interrupt signal if VCC is present switched to VBAT HIGH LOW active VBAT power-on flag LOW active wake-up interrupt switched to VCC HIGH LOW active error flag HIGH = receive; LOW = dominant received data switched to VCC Notes 1. Wake-up interrupts are released when entering normal operating mode. 2. If go to sleep command was used before (EN may turn LOW as VCC drops, without affecting internal functions because of fail safe functionality). 3. VBAT power-on flag will be reset when entering normal operation mode. 1997 Oct 28 6 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 LIMITING VALUES In accordance with the Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCC supply voltage −0.3 +6.0 V VDD DC input voltage at pins 2 to 6 −0.3 VCC + 0.3 V VBUS DC input voltage at pins 11 and 12 −10 +27 V VCANH,L DC input voltage at pins 11 and 12 VCC = 0 to 5.5 V; −40 VBAT ≥ 0 V; t < 0.1 ms; load dump +40 V Vtr transient voltage at pins 11 and 12 see Fig.6 −150 +100 V VWAKE DC input voltage on pin 7 − VBAT + 0.3 V IWAKE input current pin 7 −15 − V1,8,9 DC input voltage on pins 1, 8 and 9 −0.3 VBAT + 0.3 V VBAT DC input voltage on pin 14 −0.3 +27 − 40 V 500 16000 Ω −40 +150 °C −55 +150 °C voltage on pin 14 R8,9 termination resistances pins 8 and 9 Tvj virtual junction temperature Tstg storage temperature Vesd electrostatic discharge voltage at any pin load dump; 500 ms note 1 mA V note 2 −2000 +2000 V note 3 −200 +200 V Notes 1. Junction temperature in accordance with IEC 747-1. An alternative definition is: Tvj = Tamb + PD × Rth vj-a. Where; Rth vj-a is a fixed value to be used for the calculation of Tvj. The rating for Tvj limits the allowable combinations of power dissipation and ambient temperature. 2. Human body model: equivalent to discharging a 100 pF capacitor through a 1.5 kΩ resistor. 3. Machine model: equivalent to discharging a 200 pF capacitor through a 25 Ω resistor. THERMAL CHARACTERISTICS SYMBOL Rth vj-a PARAMETER thermal resistance from junction to ambient CONDITIONS in free air QUALITY SPECIFICATION Quality specification in accordance with “SNW-FQ-611-Part-E”. 1997 Oct 28 7 VALUE UNIT 120 K/W Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 CHARACTERISTICS VCC = 4.75 to 5.25 V; VSTB = VCC; VBAT = 6 V to 27 V; Tamb = −40 to +125 °C; unless otherwise specified. All voltages are defined with respect to ground. Positive currents flow into the IC. All parameters are guaranteed over the temperature range by design, but only 100% tested at 25 °C. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT Supplies recessive; TXD = VCC; normal operating mode − 6 10 mA dominant; TXD = 0 V; no load; normal operating mode − 29 35 mA supply current (VCC standby) VCC = 5 V; VBAT = 12 V; Tamb < 90 °C − 120 1000 µA supply current (VBAT standby) VCC = 5 V; VBAT = 12 V; Tamb < 90 °C − 55 80 µA IBAT supply current (sleep mode) VCC = 0 V; VBAT = 12 V; Tamb < 90 °C − 50 75 µA VBAT battery voltage for setting power-on flag low power modes − − 1.0 V tpwon battery voltage low time for setting power-on flag low power modes 1 − − s ICC ICC + IBAT supply current Pins STB, EN and TXD VIH HIGH level input voltage 0.7VCC − VCC + 0.3 V VIL LOW level input voltage −0.3 − 0.3VCC V IIH HIGH level input current (pins STB and EN) Vi = 4 V − 9 20 µA IIL LOW level input current (pins STB and EN) Vi = 1 V 4 8 − µA IIH HIGH level input current (pin TXD) Vi = 4 V −25 −80 −200 µA IIL LOW level input current (pin TXD) Vi = 1 V −100 −320 −800 µA VCC forced battery voltage standby mode (fail safe) 2.75 − 4.5 V Pins RXD and NERR VOH HIGH level output voltage (pin NERR) Io = −100 µA VCC − 0.9 − VCC V VOH HIGH level output voltage (pin RXD) Io = −250 µA VCC − 0.9 − VCC V VOL LOW level output voltage Io = 1.25 mA 0 − 0.9 V IIL LOW level input current VWAKE = 0 V; VBAT = 27 V −10 −120 −250 µA Vwu(th) wake-up threshold voltage VSTB = 0 V 1.2 − 3.2 V Pin WAKE 1997 Oct 28 8 Philips Semiconductors Product specification Fault-tolerant CAN transceiver SYMBOL PARAMETER PCA82C252 CONDITIONS MIN. TYP. MAX. UNIT Pin INH VdropH ILI HIGH level voltage drop leakage current IINH = −0.18 mA; VBAT < 16 V − − 0.8 V IINH = −0.18 mA; VBAT > 16 V − − 1.0 V sleep mode; VINH = 0 V − − 5.0 µA −3.25 − −2.65 V Pins CANH and CANL Vdrx(rd) differential receiver recessive-to-dominant threshold voltage Vdrx(dr) differential receiver dominant-to-recessive threshold voltage no bus failures 0.4 0.7 1.0 V bus failures 1, 2 and 5 −3.25 − −2.65 V VoCANHrec CANH recessive output voltage TXD = VCC; RRTH < 4 kΩ − − 0.2 V VoCANLrec CANL recessive output voltage TXD = VCC; RRTL < 4 kΩ VCC − 0.2 − − V VoCANHdom CANH dominant output voltage TXD = 0 V; V6 = VCC; ICANH = −40 mA VCC − 1.4 − − V VoCANLdom CANL dominant output voltage TXD = 0 V; V6 = VCC; ICANL = 40 mA − − 1.4 V VCANH = 0 V; TXD = 0 V − −75 −100 mA sleep mode; VCANH = 12 V − 0 − µA IoCANH IoCANL CANH output current CANL output current VCANL = 14 V; TXD = 0 V − 90 130 mA sleep mode; VCANL = 0 V, VBAT = 12 V − 0 − µA 7.3 8.0 V Vdetth voltage detection threshold for short-circuit to battery voltage on CANH and CANL normal mode 6.5 Vdetth voltage detection threshold for short-circuit to battery voltage on CANH standby/sleep mode VBAT − 2.5 − VBAT − 1 V VwuL CANL wake-up voltage threshold 2.4 3.1 3.8 V VwuH CANH wake-up voltage threshold 1.2 1.9 2.7 V ∆Vwu wake-up voltage threshold difference 0.2 − − V VCANH CANH single-ended receiver threshold failures 4, 6 and 7 1.5 1.82 2.15 V VCANL CANL single-ended receiver threshold voltage failure 3 2.8 3.1 3.4 V 1997 Oct 28 9 Philips Semiconductors Product specification Fault-tolerant CAN transceiver SYMBOL PARAMETER PCA82C252 CONDITIONS MIN. TYP. MAX. UNIT Pins RTH and RTL − 7 25 Ω Io < 1 mA; VCC standby mode − 15 75 Ω RTL to BAT switch series resistance VBAT standby or sleep mode 10 16 28 kΩ RRTH RTH to ground switch-on resistance Io < 10 mA; normal operating mode − 43 95 Ω VoRTH RTH output voltage Io = 1 mA; low power modes − 0.7 1.0 V IRTLpu RTL pull-up current normal operating mode, failures 4, 6 and 7 − 75 − µA IRTHpd RTH pull-down current normal operating mode, failure 3 − 75 − µA 155 165 180 °C RRTL RTL to VCC switch-on resistance Io < 10 mA; normal operating mode Thermal shutdown Tjsd shut down junction temperature AC CHARACTERISTICS VCC = 4.75 to 5.25 V; VSTB = VCC; VBAT = 6 V to 27 V; Tamb = −40 to +125 °C; unless otherwise specified. All voltages are defined with respect to ground. Positive currents flow into the IC. All parameters are guaranteed over the temperature range by design, but only 100% tested at 25 °C. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT trd CANL and CANH bus output transition time recessive-to-dominant 10% to 90%; C1 = 10 nF; C2 = 0; R1 = 100 Ω 0.6 0.85 − µs tdr CANL and CANH bus output transition time dominant-to-recessive 10% to 90%; C1 = 1 nF; C2 = 0; R1 = 100 Ω 0.3 0.4 − µs tPD(L) propagation delay TXD-to-RXD LOW C1 = 100 pF; C2 = 0; R1 = 100 Ω; no failures and bus failures 1, 2 and 5 − 0.75 1.25 µs C1 = C2 = 3.3 nF; R1 = 100 Ω; no failures and bus failures 1, 2 and 5 − 1 1.5 µs C1 = 100 pF; C2 = 0; R1 = 100 Ω; bus failures 3, 4, 6 and 7 − 0.85 1.3 µs 1.1 1.7 µs C1 = C2 = 3.3 nF; R1 = 100 Ω; − bus failures 3, 4, 6 and 7 1997 Oct 28 10 Philips Semiconductors Product specification Fault-tolerant CAN transceiver SYMBOL tPD(H) PARAMETER propagation delay TXD-to-RXD HIGH PCA82C252 CONDITIONS MIN. TYP. MAX. UNIT C1 = 100 pF; C2 = 0; − Rl = 100 Ω; no failures and bus failures 1, 2 and 5 0.75 1.25 µs C1 = C2 = 3.3 nF; Rl = 100 Ω; no failures and bus failures 1 and 2 − 1 1.5 µs C1 = 100 pF; C2 = 0; R1 = 100 Ω; bus failures 3, 4, 6 and 7 − 0.85 1.3 µs C1 = C2 = 3.3 nF; R1 = 100 Ω; − bus failures 3, 4, 5, 6 and 7 1.4 2.1 µs two(min) minimum dominant time for wake-up on CANL or CANH low power modes VBAT = 12 V 8 − 38 µs tWAKE(min) minimum WAKE LOW time for wake-up low power modes VBAT = 12 V 8 − 38 µs failures 3 and 6 detection time normal mode 10 − 60 µs failure 3 recovery time normal mode 10 − 60 µs failure 6 recovery time normal mode 150 − 750 µs failures 4 and 7 detection time normal mode 0.75 − 4.0 ms failures 4 and 7 recovery time normal mode 10 − 60 µs failures 3, 4 and 7 detection time low power modes; VBAT = 12 V 0.8 − 8.0 ms failures 3, 4 and 7 recovery time low power modes; VBAT = 12 V − 4 − ms th(min) minimum hold time to go to sleep command 5 − 50 µs ∆ec edge-count difference between CANH and CANL for failures 1, 2 and 5 detection (NERR becomes LOW) normal mode − 3 − edge-count difference between CANH and CANL for failures 1, 2 and 5 recovery normal mode − 1 − tfail 1997 Oct 28 11 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 TEST AND APPLICATION INFORMATION +5 V dbook, full pagewidth INH WAKE TXD STB EN RXD +12 V BAT 1 10 7 8 2 5 12 RTH R1 C2 11 6 9 3 CANH RTL R1 4 GND C1 CANL PCA82C252 13 20 pF VCC 14 C1 NERR MBH550 For testing, the 100 Ω termination resistors are not connected to RTH or RTL because a minimum 500 Ω per transceiver is allowed. The capacitive bus load of 10 nF is split up into 3 capacitors to simulate the cable. Fig.3 Test circuit for dynamic characteristics. VCC VTXD andbook, full pagewidth 0V VCANL 5V 3.6 V 1.4 V VCANH 0V 2.2 V 0.7 V −2.9 V −5 V Vdiff VRXD 0.7VCC 0.3VCC Vdiff = VCANH − VCANL tPD(H) tPD(L) MBH549 Fig.4 Timing diagram for dynamic characteristics. 1997 Oct 28 12 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 VBAT handbook, full pagewidth BATTERY +5 V P8xC292/P8xCE598 CAN CONTROLLER +5 V CTX0 CRXO TXD WAKE 2 RXD STB 3 5 NERR 4 EN 6 INH 1 7 14 PCA82C252 10 CAN TRANSCEIVER 13 8 11 RTH 12 CANH BAT VCC GND 100 nF 9 CANL RTL CAN BUS LINE MBH552 Fig.5 Application of the PCA82C252. handbook, full pagewidth +5 V +12 V INH WAKE TXD STB EN RXD 1 14 10 7 8 2 5 12 RTH 100 Ω CANL 1 nF PCA82C252 11 6 CANH 1 nF 9 3 13 20 pF VCC BAT 4 GND RTL 100 Ω NERR MBH551 The waveforms of the applied transients will be in accordance with ISO 7637 part 1, test pulses 1, 2, 3a and 3b. Fig.6 Test circuit for automotive transients. 1997 Oct 28 13 GENERATOR Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 PACKAGE OUTLINE SO14: plastic small outline package; 14 leads; body width 3.9 mm SOT108-1 D E A X c y HE v M A Z 8 14 Q A2 A (A 3) A1 pin 1 index θ Lp 1 L 7 e 0 detail X w M bp 2.5 5 mm scale DIMENSIONS (inch dimensions are derived from the original mm dimensions) UNIT A max. A1 A2 A3 bp c D (1) E (1) e HE L Lp Q v w y Z (1) mm 1.75 0.25 0.10 1.45 1.25 0.25 0.49 0.36 0.25 0.19 8.75 8.55 4.0 3.8 1.27 6.2 5.8 1.05 1.0 0.4 0.7 0.6 0.25 0.25 0.1 0.7 0.3 0.010 0.057 0.004 0.049 0.01 0.019 0.0100 0.35 0.014 0.0075 0.34 0.16 0.15 0.050 0.028 0.024 0.01 0.01 0.004 0.028 0.012 inches 0.069 0.244 0.039 0.041 0.228 0.016 θ Note 1. Plastic or metal protrusions of 0.15 mm maximum per side are not included. REFERENCES OUTLINE VERSION IEC JEDEC SOT108-1 076E06S MS-012AB 1997 Oct 28 EIAJ EUROPEAN PROJECTION ISSUE DATE 95-01-23 97-05-22 14 o 8 0o Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 SOLDERING Wave soldering Introduction Wave soldering techniques can be used for all SO packages if the following conditions are observed: There is no soldering method that is ideal for all IC packages. Wave soldering is often preferred when through-hole and surface mounted components are mixed on one printed-circuit board. However, wave soldering is not always suitable for surface mounted ICs, or for printed-circuits with high population densities. In these situations reflow soldering is often used. • A double-wave (a turbulent wave with high upward pressure followed by a smooth laminar wave) soldering technique should be used. • The longitudinal axis of the package footprint must be parallel to the solder flow. • The package footprint must incorporate solder thieves at the downstream end. This text gives a very brief insight to a complex technology. A more in-depth account of soldering ICs can be found in our “IC Package Databook” (order code 9398 652 90011). During placement and before soldering, the package must be fixed with a droplet of adhesive. The adhesive can be applied by screen printing, pin transfer or syringe dispensing. The package can be soldered after the adhesive is cured. Reflow soldering Reflow soldering techniques are suitable for all SO packages. Maximum permissible solder temperature is 260 °C, and maximum duration of package immersion in solder is 10 seconds, if cooled to less than 150 °C within 6 seconds. Typical dwell time is 4 seconds at 250 °C. Reflow soldering requires solder paste (a suspension of fine solder particles, flux and binding agent) to be applied to the printed-circuit board by screen printing, stencilling or pressure-syringe dispensing before package placement. A mildly-activated flux will eliminate the need for removal of corrosive residues in most applications. Several techniques exist for reflowing; for example, thermal conduction by heated belt. Dwell times vary between 50 and 300 seconds depending on heating method. Typical reflow temperatures range from 215 to 250 °C. Repairing soldered joints Fix the component by first soldering two diagonallyopposite end leads. Use only a low voltage soldering iron (less than 24 V) applied to the flat part of the lead. Contact time must be limited to 10 seconds at up to 300 °C. When using a dedicated tool, all other leads can be soldered in one operation within 2 to 5 seconds between 270 and 320 °C. Preheating is necessary to dry the paste and evaporate the binding agent. Preheating duration: 45 minutes at 45 °C. 1997 Oct 28 15 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 DEFINITIONS Data sheet status Objective specification This data sheet contains target or goal specifications for product development. Preliminary specification This data sheet contains preliminary data; supplementary data may be published later. Product specification This data sheet contains final product specifications. Limiting values Limiting values given are in accordance with the Absolute Maximum Rating System (IEC 134). Stress above one or more of the limiting values may cause permanent damage to the device. These are stress ratings only and operation of the device at these or at any other conditions above those given in the Characteristics sections of the specification is not implied. Exposure to limiting values for extended periods may affect device reliability. Application information Where application information is given, it is advisory and does not form part of the specification. LIFE SUPPORT APPLICATIONS These products are not designed for use in life support appliances, devices, or systems where malfunction of these products can reasonably be expected to result in personal injury. Philips customers using or selling these products for use in such applications do so at their own risk and agree to fully indemnify Philips for any damages resulting from such improper use or sale. 1997 Oct 28 16 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 NOTES 1997 Oct 28 17 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 NOTES 1997 Oct 28 18 Philips Semiconductors Product specification Fault-tolerant CAN transceiver PCA82C252 NOTES 1997 Oct 28 19 Philips Semiconductors – a worldwide company Argentina: see South America Australia: 34 Waterloo Road, NORTH RYDE, NSW 2113, Tel. +61 2 9805 4455, Fax. +61 2 9805 4466 Austria: Computerstr. 6, A-1101 WIEN, P.O. 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VB, Tel. +31 40 27 82785, Fax. +31 40 27 88399 New Zealand: 2 Wagener Place, C.P.O. Box 1041, AUCKLAND, Tel. +64 9 849 4160, Fax. +64 9 849 7811 Norway: Box 1, Manglerud 0612, OSLO, Tel. +47 22 74 8000, Fax. +47 22 74 8341 Philippines: Philips Semiconductors Philippines Inc., 106 Valero St. Salcedo Village, P.O. Box 2108 MCC, MAKATI, Metro MANILA, Tel. +63 2 816 6380, Fax. +63 2 817 3474 Poland: Ul. Lukiska 10, PL 04-123 WARSZAWA, Tel. +48 22 612 2831, Fax. +48 22 612 2327 Portugal: see Spain Romania: see Italy Russia: Philips Russia, Ul. Usatcheva 35A, 119048 MOSCOW, Tel. +7 095 755 6918, Fax. +7 095 755 6919 Singapore: Lorong 1, Toa Payoh, SINGAPORE 1231, Tel. +65 350 2538, Fax. +65 251 6500 Slovakia: see Austria Slovenia: see Italy South Africa: S.A. PHILIPS Pty Ltd., 195-215 Main Road Martindale, 2092 JOHANNESBURG, P.O. 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No. 5, 80640 GÜLTEPE/ISTANBUL, Tel. +90 212 279 2770, Fax. +90 212 282 6707 Ukraine: PHILIPS UKRAINE, 4 Patrice Lumumba str., Building B, Floor 7, 252042 KIEV, Tel. +380 44 264 2776, Fax. +380 44 268 0461 United Kingdom: Philips Semiconductors Ltd., 276 Bath Road, Hayes, MIDDLESEX UB3 5BX, Tel. +44 181 730 5000, Fax. +44 181 754 8421 United States: 811 East Arques Avenue, SUNNYVALE, CA 94088-3409, Tel. +1 800 234 7381 Uruguay: see South America Vietnam: see Singapore Yugoslavia: PHILIPS, Trg N. Pasica 5/v, 11000 BEOGRAD, Tel. +381 11 625 344, Fax.+381 11 635 777 For all other countries apply to: Philips Semiconductors, Marketing & Sales Communications, Building BE-p, P.O. Box 218, 5600 MD EINDHOVEN, The Netherlands, Fax. +31 40 27 24825 Internet: http://www.semiconductors.philips.com © Philips Electronics N.V. 1997 SCA55 All rights are reserved. Reproduction in whole or in part is prohibited without the prior written consent of the copyright owner. The information presented in this document does not form part of any quotation or contract, is believed to be accurate and reliable and may be changed without notice. No liability will be accepted by the publisher for any consequence of its use. Publication thereof does not convey nor imply any license under patent- or other industrial or intellectual property rights. Printed in The Netherlands 897027/00/04/pp20 Date of release: 1997 Oct 28 Document order number: 9397 750 02969