MC44603 ONSEMI | Alldatasheet

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Technical content

/C0077/C0067/C0052/C0052/C0054/C0048/C0051 MIXED FREQUENCY MODE GREENLINE PWM* CONTROLLER:

ORDERING INFORMATION

TA = –25° to +85°C Plastic DIP–16 P SUFFIX PLASTIC PACKAGE CASE 648 (Top View) VCC VC Output R ref Sync Input PIN CONNECTIONS Order this document by MC44603/D Gnd Foldback Input Overvoltage Protection (OVP) Current Sense Input Demag Detection R Frequency Standby Voltage Feedback Input Error Amp Output R Power Standby Soft–Start/Dmax / Voltage Mode C T VARIABLE FREQUENCY, FIXED FREQUENCY, STANDBY MODE * PWM = Pulse Width Modulation MC44603DW SOP–16L DW SUFFIX PLASTIC PACKAGE CASE 751G (SOP–16L) 1MOTOROLA ANALOG IC DEVICE DATA /C0077/C0105/C0120/C0101/C0100 /C0070/C0114/C0101/C0113/C0117/C0101/C0110/C0099/C0121 /C0077/C0111/C0100/C0101 /C0071/C0114/C0101/C0101/C0110/C0076/C0105/C0110/C0101 /C0080/C0087/C0077 /C0067/C0111/C0110/C0116/C0114/C0111/C0108/C0108/C0101/C0114/C0058 Fixed Frequency, Variable Frequency, Standby Mode The MC44603 is an enhanced high performance controller that is specifically designed for off–line and dc–to–dc converter applications. This device has the unique ability of automatically changing operating modes if the converter output is overloaded, unloaded, or shorted, offering the designer additional protection for increased system reliability. The MC44603 has several distinguishing features when compared to conventional SMPS controllers. These features consist of a foldback facility for overload protection, a standby mode when the converter output is slightly loaded, a demagnetization detection for reduced switching stresses on transistor and diodes, and a high current totem pole output ideally suited for driving a power MOSFET. It can also be used for driving a bipolar transistor in low power converters (< 150 W). It is optimized to operate in discontinuous mode but can also operate in continuous mode. Its advanced design allows use in current mode or voltage mode control applications. Current or Voltage Mode Controller

  • Operation up to 250 kHz Output Switching Frequency
  • Inherent Feed Forward Compensation
  • Latching PWM for Cycle–by–Cycle Current Limiting
  • Oscillator with Precise Frequency Control High Flexibility
  • Externally Programmable Reference Current
  • Secondary or Primary Sensing
  • Synchronization Facility
  • High Current Totem Pole Output
  • Undervoltage Lockout with Hysteresis Safety/Protection Features
  • Overvoltage Protection Against Open Current and Open Voltage Loop
  • Protection Against Short Circuit on Oscillator Pin
  • Fully Programmable Foldback
  • Soft–Start Feature
  • Accurate Maximum Duty Cycle Setting
  • Demagnetization (Zero Current Detection) Protection
  • Internally Trimmed Reference GreenLine Controller: Low Power Consumption in Standby Mode
  • Low Startup and Operating Current
  • Fully Programmable Standby Mode
  • Controlled Frequency Reduction in Standby Mode
  • Low dV/dT for Low EMI Radiations GreenLine is a trademark of Motorola, Inc.  Motorola, Inc. 1999 Rev 1

2 MOTOROLA ANALOG IC DEVICE DATA

Total Power Supply and Zener Current (ICC + IZ) 30 mA Supply Voltage with Respect to Ground (Pin 4) VC VCC 18 V Output Current (Note 1) mA Source IO(Source) –750 Sink IO(Sink) 750 Output Energy (Capacitive Load per Cycle) W 5.0 µJ R F Stby, CT, Soft–Start, Rref, RP Stby Inputs Vin –0.3 to 5.5 V Foldback Input, Current Sense Input, E/A Output, Voltage Feedback Input, Overvoltage Protection, Synchronization Input Vin –0.3 to VCC + 0.3 V Synchronization Input High State Voltage VIH VCC + 0.3 V Low State Reverse Current VIL –20 mA Demagnetization Detection Input Current mA Source Idemag–ib (Source) –4.0 Sink Idemag–ib (Sink) 10 Error Amplifier Output Sink Current IE/A (Sink) 20 mA Power Dissipation and Thermal Characteristics P Suffix, Dual–In–Line, Case 648 Maximum Power Dissipation at TA = 85°C PD 0.6 W Thermal Resistance, Junction–to–Air R θJA 100 °C/W DW Suffix, Surface Mount, Case 751G Maximum Power Dissipation at TA = 85°C PD 0.45 W Thermal Resistance, Junction–to–Air R θJA 145 °C/W Operating Junction Temperature TJ 150 °C Operating Ambient Temperature TA –25 to +85 °C NOTES: 1. Maximum package power dissipation limits must be observed. 2. ESD data available upon request. ELECTRICAL CHARACTERISTICS (VCC and VC = 12 V, [Note 3], Rref = 10 kΩ , CT = 820 pF, for typical values TA = 25°C, for min/max values TA = –25° to +85°C [Note 4], unless otherwise noted.) Characteristic Symbol Min Typ Max Unit OUTPUT SECTION Output Voltage (Note 5) V Low State (ISink = 100 mA) Low State (ISink = 500 mA) VOL – 1.0 1.4 1.2 2.0 High State (ISource = 200 mA) High State (ISource = 500 mA) VOH – 1.5 2.0 2.0 2.7 Output Voltage During Initialization Phase VOL Vpgg VCC = 0 to 1.0 V, ISink = 10 µA VCC 10t o50V I Si k 100 µA OL – – 1.0 10VCC = 1.0 to 5.0 V, ISink = 100 µA VCC =50t o1 3V ISink=10m A 0.1 1.0 10VCC = 5.0 to 13 V, ISink = 1.0 mA – 0.1 1.0 Output Voltage Rising Edge Slew–Rate (CL = 1.0 nF, TJ = 25°C) dVo/dT – 300 – V/µs Output Voltage Falling Edge Slew–Rate (CL = 1.0 nF, TJ = 25°C) dVo/dT – –300 – V/µs ERROR AMPLIFIER SECTION Voltage Feedback Input (VE/A out = 2.5 V) VFB 2.42 2.5 2.58 V Input Bias Current (VFB = 2.5 V) IFB–ib –2.0 –0.6 – µA Open Loop Voltage Gain (VE/A out = 2.0 to 4.0 V) AVOL 65 70 – dB NOTES: 3. Adjust VCC above the startup threshold before setting to 12 V. 4. Low duty cycle pulse techniques are used during test to maintain junction temperature as close to ambient as possible. 5. VC must be greater than 5.0 V.

3MOTOROLA ANALOG IC DEVICE DATA ELECTRICAL CHARACTERISTICS (continued) (VCC and VC = 12 V, [Note 3], Rref = 10 kΩ , CT = 820 pF, for typical values TA = 25°C, for min/max values TA = –25° to +85°C [Note 4], unless otherwise noted.) Characteristic Symbol Min Typ Max Unit ERROR AMPLIFIER SECTION (continued) Unity Gain Bandwidth BW MHz TJ = 25°C – 4.0 – Voltage Feedback Input Line Regulation (VCC = 10 to 15 V) VFBline–reg –10 – 10 mV Output Current mA Sink (VE/A out = 1.5 V, VFB = 2.7 V) TA = –25° to +85°C ISink 2.0 12 – Source (VE/A out = 5.0 V, VFB = 2.3 V) TA = –25° to +85°C ISource –2.0 – –0.2 Output Voltage Swing V Low State (IE/A out (sink) = 0.33 mA, VFB = 2.7 V) VOL – 1.0 1.1 REFERENCE SECTION Reference Output Voltage (VCC = 10 to 15 V) Vref 2.4 2.5 2.6 V Reference Current Range (Iref = Vref/Rref, R = 5.0 k to 25 kΩ ) Iref –500 – –100 µA Reference Voltage Over Iref Range ΔVref –40 – 40 mV OSCILLATOR AND SYNCHRONIZATION SECTION Frequency fOSC kHz TA = 0° to +70°C 44.5 48 51.5 TA = –25° to +85°C 44 – 52 Frequency Change with Voltage (VCC = 10 to 15 V) ΔfOSC /ΔV – 0.05 – %/V Frequency Change with Temperature (TA = –25° to +85°C) ΔfOSC /ΔT – 0.05 – %/°C Oscillator Voltage Swing (Peak–to–Peak) VOSC(pp) 1.65 1.8 1.95 V Ratio Charge Current/Reference Current Icharge/Iref – TA = 0° to +70°C (VCT = 2.0 V) 0.375 0.4 0.425 Fixed Maximum Duty Cycle = Idischarge/(Idischarge + Icharge) D 78 80 82 % Ratio Standby Discharge Current versus IR F Stby (Note 6) Idisch–Stby/ – TA = 0° to +70°C IR F Stby 0.46 0.53 0.6 VR F Stby (IR F Stby = 100 µA) VR F Stby 2.4 2.5 2.6 V Frequency in Standby Mode (RF Stby (Pin 15) = 25 kΩ ) FStby 18 21 24 kHz Current Range IR F Stby –200 – –50 µA Synchronization Input Threshold Voltage (Note 7) VinthH VinthL 3.2 0.45 3.7 0.7 4.3 0.9 V Synchronization Input Current ISync–in –5.0 – 0 µA Minimum Synchronization Pulse Width (Note 8) TSync – – 0.5 µs UNDERVOLTAGE LOCKOUT SECTION Startup Threshold Vstup–th 13.6 14.5 15.4 V Output Disable Voltage After Threshold Turn–On (UVLO 1) Vdisable1 V TA = 0° to +70°C 8.6 9.0 9.4 Reference Disable Voltage After Threshold Turn–On (UVLO 2) Vdisable2 7.0 7.5 8.0 V NOTES: 13. Adjust VCC above the startup threshold before setting to 12 V. 14. Low duty cycle pulse techniques are used during test to maintain junction temperature as close to ambient as possible. 16. Standby is disabled for VR P Stby < 25 mV typical. 17. If not used, Synchronization input must be connected to Ground. 18. Synchronization Pulse Width must be shorter than TOSC = 1/fOSC .

4 MOTOROLA ANALOG IC DEVICE DATA

ELECTRICAL CHARACTERISTICS (continued) (VCC and VC = 12 V, [Note 3], Rref = 10 kΩ , CT = 820 pF, for typical values TA = 25°C, for min/max values TA = –25° to +85°C [Note 4], unless otherwise noted.) Characteristic Symbol Min Typ Max Unit DEMAGNETIZATION DETECTION SECTION (Note 9) Demagnetization Detect Input Demagnetization Comparator Threshold (VPin 9 Decreasing) Vdemag–th 50 65 80 mV Propagation Delay (Input to Output, Low to High) – – 0.25 – µs Input Bias Current (Vdemag = 65 mV) Idemag–lb –0.5 – – µA Negative Clamp Level (Idemag = –2.0 mA) C L(neg) – –0.38 – V Positive Clamp Level (Idemag = 2.0 mA) C L(pos) – 0.72 – V SOFT–START SECTION (Note 11) Ratio Charge Current/Iref Iss(ch)/Iref – TA = 0° to +70°C 0.37 0.4 0.43 Discharge Current (Vsoft–start = 1.0 V) Idischarge 1.5 5.0 – mA Clamp Level Vss(CL) 2.2 2.4 2.6 V Duty Cycle (Rsoft–start = 12 kΩ ) Duty Cycle (Vsoft–start (Pin 11) = 0.1 V) D soft–start 12k D soft–start OVERVOLTAGE SECTION Protection Threshold Level on VOVP VOVP–th 2.42 2.5 2.58 V Propagation Delay (VOVP > 2.58 V to Vout Low) 1.0 – 3.0 µs Protection Level on VCC VCC prot V TA = 0° to +70°C 16.1 17 17.9 Input Resistance – kΩ TA = 0° to +70°C 1.5 2.0 3.0 FOLDBACK SECTION (Note 10) Current Sense Voltage Threshold (Vfoldback (Pin 5) = 0.9 V) VCS–th 0.86 0.89 0.9 V Foldback Input Bias Current (Vfoldback (Pin 5) = 0 V) Ifoldback–lb –6.0 –2.0 – µA STANDBY SECTION Ratio IR P Stby/Iref IR P Stby/Iref – TA = 0° to +70°C 0.37 0.4 0.43 Ratio Hysteresis (Vh Required to Return to Normal Operation from Standby Operation) Vh/VR P Stby – TA = 0° to +70°C 1.42 1.5 1.58 Current Sense Voltage Threshold (VR P Stby (Pin 12) = 1.0 V) VCS–Stby 0.28 0.31 0.34 V CURRENT SENSE SECTION Maximum Current Sense Input Threshold (Vfeedback (Pin 14) = 2.3 V and Vfoldback (Pin 6) = 1.2 V) VCS–th 0.96 1.0 1.04 V Input Bias Current ICS–ib –10 –2.0 – µA Propagation Delay (Current Sense Input to Output at VTH of MOS transistor = 3.0 V) – – 120 200 ns TOTAL DEVICE Power Supply Current ICC mA Startup (VCC = 13 V with VCC Increasing) – 0.3 0.45 Operating TA = –25° to +85°C (Note 3) 13 17 20 Power Supply Zener Voltage (ICC = 25 mA) VZ 18.5 – – V Thermal Shutdown – – 155 – °C NOTES: 13. Adjust VCC above the startup threshold before setting to 12 V. 14. Low duty cycle pulse techniques are used during test to maintain junction temperature as close to ambient as possible. 19. This function can be inhibited by connecting Pin 8 to Gnd. This allows a continuous current mode operation. 10. This function can be inhibited by connecting Pin 5 to VCC . 11. The MC44603 can be shut down by connecting the Soft–Start pin (Pin 11) to Ground.

5MOTOROLA ANALOG IC DEVICE DATA Representative Block Diagram This device contains 243 active transistors. S R F Stby R ref R F Stby Vref15 16 Reference Block Vref Iref VCC VCC 14.5 V/7.5 V Vaux 18.0 V To Power Transforme VC Output Gnd OVP Current Sense Input VCCVref VOVP Out2.0 µs Delay Vref 5.0 µs Delay + 2.5 V R OVP 11.6 k 2.0 k VCC + 9.0 V SS/Dmax /VM 2.4 V R SS C SS 1.0 V Demag Detect Sync Input

9 Vref

3.7 V 1.0 V

0.4 Iref

Feed– back Compen– sation Foldback Input 1.6 V 3.6 V C T 0.7 V VDemag Out Synchro VOSC prot 0.6 Iref 0.8 Iref 0.25 IF Stby 0.2 Iref IDischarge IDischarge/2 Current Mirror X2 1.0 mA Error Amplifier R Q S R Q SR Q S R Q = Sink only = Positive True Logic + 2.5 V Thermal Shutdown IF Stby UVLO2 VOSC 1.6 V UVLO1 5.0 mA Negative Active Clamp

6 MOTOROLA ANALOG IC DEVICE DATA

Figure 1. Timing Resistor versus Figure 2. Standby Mode Timing Capacitor Figure 3. Oscillator Frequency Figure 4. Ratio Charge Current/Reference Figure 5. Output Waveform Figure 6. Output Cross Conduction

Figure 7. Oscillator Discharge Current Figure 8. Source Output Saturation Voltage Figure 9. Sink Output Saturation Voltage Figure 10. Error Amplifier Gain and Phase

120 Hz Rate

Figure 11. Voltage Feedback Input Figure 12. Demag Comparator Threshold

8 MOTOROLA ANALOG IC DEVICE DATA

Figure 13. Current Sense Gain Figure 14. Thermal Resistance and Maximum Figure 15. Propagation Delay Current Sense Figure 16. Startup Current versus VCC Figure 17. Supply Current versus Figure 18. Power Supply Zener Voltage

10 MOTOROLA ANALOG IC DEVICE DATA

Figure 25. Standby Reference Current Figure 26. Current Sense Voltage Threshold 1 VCC This pin is the positive supply of the IC. The operating voltage range after startup is 9.0 to 14.5 V. power source, it can reduce the effects of switching noise on the control circuitry. transistors. This output pin must be shunted by a Schottky diode, 1N5819 or equivalent. startup and sharper overload protection. Above 1.0 V the foldback input is inactive.

6 Overvoltage

requires a complete restart sequence. The overvoltage level is programmable.

7 Current Sense

mode of operation. A maximum level of 1.0 V allows either current or voltage mode operation.

8 Demagnetization

function can be inhibited by connecting Pin 8 to Gnd.

9 Synchronization

higher than 3.7 V. The oscillator runs free when Pin 9 is connected to Gnd. resistance value. CT, connected between Pin 10 and Gnd, generates the oscillator sawtooth.

11 Soft–Start/Dmax /

comparator allows to return in the normal mode at a higher output power level. 13 E/A Out The error amplifier output is made available for loop compensation. through an optical (or other) feedback loop. 15 R F Standby The reduced frequency or standby frequency programming is made by the RF Standby resistance choice. 16 R ref R ref sets the internal reference current. The internal reference current ranges from 100 µA to 500 µA. This requires that 5.0 kΩ ≤ Rref ≤ 25 kΩ .

12 MOTOROLA ANALOG IC DEVICE DATA

Figure 29. Switching Off Behavior Figure 30. Oscillator

14 MOTOROLA ANALOG IC DEVICE DATA

Output during the appropriate oscillator cycle. Figure 33. Output Totem Pole

7 C R S

  • The Sawtooth Generation: In the steady state, the oscillator voltage varies between about 1.6 V and 3.6 V. The sawtooth is obtained by charging and discharging an external capacitor CT (Pin 10), using two distinct current sources = Icharge and Idischarge. In fact, CT is permanently connected to the charging current source (0.4 Iref) and so, the discharge current source has to be higher than the charge current to be able to decrease the CT voltage (refer to Figure 35). This condition is performed, its value being (2.0 Iref) in normal working and (0.4 Iref + 0.5 IF Stby in standby mode).

Figure 34. Oscillator Figure 35. Simplified Block Oscillator synchronization or demagnetization pulse before restarting. that permanently supplies CT. allowed only during the oscillator capacitor charge.

16 MOTOROLA ANALOG IC DEVICE DATA

PICL only depends on the current drawn from the mains. decreases when the standby losses are reduced. decreasing the switching frequency as much as possible. frequency lower than the normal working one.

  • Standby Power Calculations with MC44603 During a switching period, the energy drawn by the transformer during the on–time to be transferred to the output during the off–time, is equal to: E /C00431 xLxI pk2 where: – L is the transformer primary inductor, – lpk is the inductor peak current. Input power is labelled Pin: Pin/C00430 . 5xLxIpk2 xfS where fS is the normal working switching frequency. Also, Ipk /C0043VCS R S where RS is the resistor used to measure the power switch current. Thus, the input power is proportional to VCS 2 (VCS being the internal current sense comparator input). That is why the standby detection is performed by creating a VCS threshold. An internal current source (0.4 x Iref) sets the threshold level by connecting a resistor to Pin 12. As depicted in Figure 40, the standby comparator noninverting input voltage is typically equal to (3.0 x VCS + VF) while the inverter input value is (VR P Stby + VF).

Figure 40. Standby

0.2 Iref

the oscillator period and to diminish the switching frequency. source (0.6 x Iref) is connected to Pin 12. Figure 41. Dynamic Mode Change

Figure 42. Dmax and Soft–Start

2.4 VD Z

Figure 43. Maximum Duty Cycle Control voltage can easily be set by connecting a resistor to this pin. Figure 44. Different Possible Uses of Pin 11 soft–start and maximum duty cycle limitation. maximum value (normally, VCS max = 1.0 V). can be obtained (refer to Figure 45). Figure 45. Foldback Characteristic NOTE: Foldback is disabled by connecting Pin 5 to VCC . overvoltages that last at least 2.0 µs. the IC output) until Vref is disabled. in order to limit the circuit startup consumption. regulator has started to allow the reference Vref to stabilize. Figure 46. Overvoltage Protection

18 MOTOROLA ANALOG IC DEVICE DATA

Figure 47. VCC Management before allowing system operation. R F Stby that is used to fix the standby frequency. of Vdisable1) and so the minimum hysteresis is 4.2 V.

Figure 48. 250 W Input Power Off–Line Flyback Converter with MOSFET Switch

185 Vac

270 Vac

20 MOTOROLA ANALOG IC DEVICE DATA

250 W Input Power Fly–Back Converter

185 V – 270 V Mains Range

MC44603P & MTP6N60E Tests Conditions Results Line Regulation 150 V 130 V 114 V 7.0 V Vin = 185 Vac to 270 Vac Fmains = 50 Hz Iout = 0.6 A Iout = 2.0 A Iout = 2.0 A Iout = 2.0 A 10 mV 10 mV 10 mV 20 mV Load Regulation 150 V Vin = 220 Vac Iout = 0.3 A to 0.6 A 50 mV Cross Regulation 150 V Vin = 220 Vac Iout (150 V) = 0.6 A Iout (30 V) = 0 A to 2.0 A Iout (14 V) = 2.0 A Iout (7.0 V) = 2.0 A < 1.0 mV Efficiency Vin = 220 Vac, Pin = 250 W 81% Standby Mode P input Switching Frequency Vin = 220 Vac, Pout = 0 W 3.3 W 20 kHz fully stable Output Short Circuit Pout (max) = 270 W Safe on all outputs Startup Pin = 250 W Vac = 160 V

Figure 49. 125 W Input Power Off–Line Flyback Converter with Bipolar Switch

22 MOTOROLA ANALOG IC DEVICE DATA

125 W Input Power Fly–Back Converter

MC44603P & MJF18006 Tests Conditions Results Line Regulation 120 V 128 V 115 V 8.0 V Vin = 185 Vac to 270 Vac Fmains = 60 Hz Iout = 0.5 A Iout = 1.0 A Iout = 1.0 A Iout = 1.0 A 10 mV 10 mV 10 mV 20 mV Load Regulation 120 V Vin = 220 Vac Iout = 0.2 A to 0.5 A = 0.05 V Cross Regulation 120 V Vin = 220 Vac Iout (120 V) = 0.5 A Iout (28 V) = 0 A to 1.0 A Iout (15 V) = 1.0 A Iout (8.0 V) = 1.0 A < 1.0 mV Efficiency Vin = 220 Vac, Pin = 125 W 85% Standby Mode P input Switching Frequency Vin = 220 Vac, Pout = 0 W 2.46 W 20 kHz fully stable Output Short Circuit Pout (max) = 140 W Safe on all outputs Startup Pin = 125 W Vac = 150 V

23MOTOROLA ANALOG IC DEVICE DATA P SUFFIX PLASTIC PACKAGE CASE 648–08 ISSUE R OUTLINE DIMENSIONS NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: INCH. 3. DIMENSION L TO CENTER OF LEADS WHEN FORMED PARALLEL. 4. DIMENSION B DOES NOT INCLUDE MOLD FLASH. 5. ROUNDED CORNERS OPTIONAL. –A– B F C S H G D J L M 16 PL SEATING 916 K PLANE–T– MAM0.25 (0.010) T DIM MIN MAX MIN MAX MILLIMETERSINCHES A 0.740 0.770 18.80 19.55 B 0.250 0.270 6.35 6.85 C 0.145 0.175 3.69 4.44 D 0.015 0.021 0.39 0.53 F 0.040 0.70 1.02 1.77 G 0.100 BSC 2.54 BSC H 0.050 BSC 1.27 BSC J 0.008 0.015 0.21 0.38 K 0.110 0.130 2.80 3.30 L 0.295 0.305 7.50 7.74 M 0 10 0 10 S 0.020 0.040 0.51 1.01 /C0095/C0095/C0095/C0095 DIM MIN MAX MIN MAX INCHESMILLIMETERS A 10.15 10.45 0.400 0.411 B 7.40 7.60 0.292 0.299 C 2.35 2.65 0.093 0.104 D 0.35 0.49 0.014 0.019 F 0.50 0.90 0.020 0.035 G 1.27 BSC 0.050 BSC J 0.25 0.32 0.010 0.012 K 0.10 0.25 0.004 0.009 M 0 7 0 7 P 10.05 10.55 0.395 0.415 R 0.25 0.75 0.010 0.029 MBM0.010 (0.25) NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: MILLIMETER. 3. DIMENSIONS A AND B DO NOT INCLUDE MOLD PROTRUSION. 4. MAXIMUM MOLD PROTRUSION 0.15 (0.006) PER SIDE. 5. DIMENSION D DOES NOT INCLUDE DAMBAR PROTRUSION. ALLOWABLE DAMBAR PROTRUSION SHALL BE 0.13 (0.005) TOTAL IN EXCESS OF D DIMENSION AT MAXIMUM MATERIAL CONDITION. –A– –B– P 8X G14X D16X SEATING PLANE –T– SAM0.010 (0.25) B ST 16 9 F J R X 45/C0095 /C0095/C0095/C0095/C0095M C K DW SUFFIX PLASTIC PACKAGE CASE 751G–02 (SOP–16L) ISSUE A

24 MOTOROLA ANALOG IC DEVICE DATA

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