TPD4102K TOSHIBA | Alldatasheet
Document overview
- Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
- PDF pages: 28
Technical content
Features
/Gb7/G20Bootstrap circuit gives simple high side supply /Gb7/G20Bootstrap diode is built in /Gb7/G20PWM and 3-phase decoder circuit are built in /Gb7/G20Outputs Rotation pulse signals /Gb7/G203-phase bridge output using IGBTs /Gb7/G20FRDs are built in /Gb7/G20Incorporating over current and under voltage protection, and thermal shutdown /Gb7/G20Package: 23-pin HZIP This product has a MOS structure and is sensitive to electrostatic discharge. When handling this product, ensure that the environment is protected against electrostatic discharge. Weight HZIP23-P-1.27F : 6.1 g (typ.) HZIP23-P-1.27G : 6.1 g (typ.) HZIP23-P-1.27H : 6.1 g (typ.)
VS OS R REF GND VREG IS1 NC U BSU V BB1 VB S V N CW B S W V BB2 IS2 HU HV HW F/R FGVCC 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 * Weekly code: (Three digits) Lot No.T P D 4 1 0 2 K Toshiba trademark JAPAN Product No Week of manufacture (01 for first week of year, continues up to 52 or 53) Year of manufacture (One low-order digits of calendar year)
U V W Level shift high-side driver Triangular wave generator 6 V regulator Under- voltage protect- ion Under- voltage protect- ion Under- voltage protect- ion Under- voltage protect- ion
Pin No. Symbol Pin Description 1 V S Speed control signal input pin. (PWM reference voltage input pin) 2 OS PWM triangular wave oscillation frequency setup pin (Connect a capacitor to this pin.) 3 R REF PWM triangular wave oscillation frequency setup pin (Connect a resistor to this pin.)
4 GND Ground pin
5 V REG 6-V regulator output pin
6 V CC Control power supply pin
7 IS1 IGBT emitter and FRD anode pin (Connect a current detecting resistor to this pin.) 8 NC Unused pin, which is not connected to the chip internally.
9 U U-phase output pin
10 BSU U-phase bootstrap capacitor connecting pin
11 V BB1 U and V-phase high-voltage power supply input pin
12 V V-phase output pin
13 BSV V-phase bootstrap capacitor connecting pin
14 NC Unused pin, which is not connected to the chip internally.
15 W W-phase output pin
16 BSW W-phase bootstrap capacitor connecting pin
17 V BB2 W-phase high-voltage power supply input pin
18 IS2 IGBT emitter/FRD anode pin (Connect a current detecting resistor to this pin.)
19 HU U-phase hole IC signal input pin
20 HV V-phase hole IC signal input pin
21 HW W-phase hole IC signal input pin
22 F/R Forward/reverse select input pin
23 FG Rotation pulse output pin. (open drain)
Equivalent Circuit of Input Pins Internal circuit diagram of HU, HV, HW, F/R input pins Internal circuit diagram of VS pin Internal circuit diagram of FG pin Internal circuit diagram of IS pin IS 10 k/G57 2 k/G57 6.5 V 6.5 V To internal circuit VCC VS 4 k/G57 75 k/G57 6.5 V 150 k/G57 6.5 V To internal circuit VREG HU/HV/HW/FR 10 k/G57 2 k/G57 200 k/G57 6.5 V 6.5 V To internal circuit FG 5 k/G57 26 V To internal circuit 26 V
Hole Signal Input U Phase V Phase W Phase FR HU HV HW Upper Arm Lower Arm Upper Arm Lower Arm Upper Arm Lower Arm FG H H L H ON OFF OFF ON OFF OFF L H H L L ON OFF OFF OFF OFF ON H H H H L OFF OFF ON OFF OFF ON L H L H L OFF ON ON OFF OFF OFF H H L H H OFF ON OFF OFF ON OFF L H L L H OFF OFF OFF ON ON OFF H L H L H OFF ON ON OFF OFF OFF H L H L L OFF ON OFF OFF ON OFF L L H H L OFF OFF OFF ON ON OFF H L L H L ON OFF OFF ON OFF OFF L L L H H ON OFF OFF OFF OFF ON H L L L H OFF OFF ON OFF OFF ON L * L L L OFF OFF OFF OFF OFF OFF L * H H H OFF OFF OFF OFF OFF OFF L HU HV HW VU VV VW FG Output voltage Hole signal input FR /G3d H Rotation pulse
Absolute Maximum Ratings (Ta /G3d/G3d/G3d/G3d 25°C) Characteristics Symbol Rating Unit VBB 500 V Power supply voltage VCC 20 V Output current (DC) I out 1 A Output current (pulse) I out 2 A Input voltage (except VS) V IN /G2d0.5 to VREG /G2b 0.5 V Input voltage (only VS) VV S 8.2 V VREG current I REG 50 mA Power dissipation (Ta /G3d 25°C) P C 4 W Power dissipation (Tc /G3d 25°C) P C 20 W Operating junction temperature T jopr /G2d20 to 135 °C Junction temperature T j 150 °C Storage temperature T stg /G2d55 to 150/G20 °C Lead-heat sink isolation voltage Vhs 1000 (1 min) Vrms
Electrical Characteristics (Ta /G3d/G3d/G3d/G3d 25°C) Characteristics Symbol Test Condition Min Typ. Max Unit VBB /Gbe 50 /Gbe 400 Operating power supply voltage VCC /Gbe 13.5 15 17.5 V IBB VBB /G3d 400V Duty cycle /G3d 0% /Gbe 0.1 0.5 ICC VCC /G3d 15 V Duty cycle /G3d 0% /Gbe 1.8 10 mA IBS (ON) V BS /G3d 15 V, high side ON /Gbe 355 470 Current dissipation IBS (OFF) V BS /G3d 15V, high side OFF /Gbe 315 415 /G6dA VIH V IN /G3d H 3.5 /Gbe /Gbe Input voltage VIL V IN /G3d L /Gbe /Gbe 1.5 V IIH V IN /G3d VREG /Gbe /Gbe 100 Input current IIL V IN /G3d 0 V /Gbe /Gbe 100 /G6dA VCEsatH V CC /G3d 15 V, IC /G3d 0.5 A /Gbe 2.3 3.0 Output saturation voltage VCEsatL V CC /G3d 15 V, IC /G3d 0.5 A /Gbe 2.3 3.0 V VFH IF /G3d 0.5 A, high side /Gbe 1.3 2.1 FRD forward voltage VFL IF /G3d 0.5 A, low side /Gbe 1.2 1.8 V BSD forward voltage V F (BSD) IF /G3d 500 /G6dA /Gbe/G200.8 1.2 V PWMMIN /Gbe 0 /Gbe /Gbe PWM ON-duty cycle PWMMAX /Gbe /Gbe /Gbe 100 PWM ON-duty cycle, 0% VV S0% PWM /G3d 0% 1.7 2.1 2.5 V PWM ON-duty cycle, 100% VV S100% PWM /G3d 100% 4.9 5.4 6.1 V PWM ON-duty voltage range VV SW VV S100% /G2d VVS0% 2.8 3.3 3.8 V Output all-OFF voltage VV SOFF Output all OFF 1.1 1.3 1.5 V Regulator voltage V REG V CC /G3d 15 V, IO /G3d 30 mA 5 6 7 V Speed control voltage range V S /Gbe 0 /Gbe 6.5 V FG output saturation voltage VFGsat IFG /G3d 20 mA /Gbe /Gbe 0.5 V Current control voltage V R /Gbe 0.45 0.5 0.55 V Thermal shutdown temperature TSD /Gbe 150 165 200 °C Thermal shutdown hysteresis /G44TSD /Gbe /Gbe 20 /Gbe °C VCC under voltage protection V CCUVD /Gbe 10 11 12 V VCC under voltage protection recovery VCCUVR /Gbe 10.5 11.5 12.5 V VBS under voltage protection V BSUVD /Gbe 9 10 11 V VBS under voltage protection recovery V BSUVR /Gbe 9.5 10.5 11.5 V Refresh operating ON voltage T RFON Refresh operation 1.1 1.3 1.5 V Refresh operating OFF voltage T RFOFF Refresh operation OFF 3.1 3.8 4.6 V Triangular wave frequency f c R /G3d 27 k/G57, C /G3d 1000 pF 16.5 20 25 kHz Output on delay time t on V BB /G3d 280 V, VCC /G3d 15 V, IC /G3d 0.5 A /Gbe 2.0 3.5 /G6ds Output off delay time t off V BB /G3d 280 V, VCC /G3d 15 V, IC /G3d 0.5 A /Gbe 1.5 3 /G6ds FRD reverse recovery time t rr V BB /G3d 280 V, VCC /G3d 15 V, IC /G3d 0.5 A /Gbe 200 /Gbe ns
Application Circuit Example VCC VREG HU HV HW F/R FG VS OS RREF IS2 IS1 GND BSV BSU V BB1 BSW VBB2 U V W R2 C4 Forward/ reverse rotation Rotation pulse Speed instruction 15 V C1 C2 C3 M Low-side driver PWM 3-phase distribution logic Thermal shutdown Over current protection Level shift high-side driver Triangular wave generator 6 V regulator Under- voltage protect- ion Under- voltage protect- ion Under- voltage protect- ion Under- voltage protect- ion
Standard external parts are shown in the following table. Part Recommended Value Purpose Remarks C1, C2, C3 25 V/2.2 /G6dF Bootstrap capacitor (Note 1) R1 0.62 /G57 /Gb1 1% (1 W) Current detection (Note 2) C4 10 V/1000 pF /Gb1 5% PWM frequency setup (Note 3) R2 27 k /G57 /Gb1 5% PWM frequency setup (Note 3) C5 25 V/10 /G6dF Control power supply stability (Note 4) C6 10 V/0.1 /G6dF V REG power supply stability (Note 4) R3 5.1 k /G57 FG pin pull-up resistor (Note 5) Note 1: The required bootstrap capacitance value varies according to the motor drive conditions. The IC can operate at above the VBS undervoltage level, however, it is recommended that the capacitor voltage be greater than or equal to 13.5 V to keep the power dissipation small. The capacitor is biased by VCC and must be sufficiently derated for it. Note 2: The following formula shows the detection current: I O /G3d VR /Gb8 RIS (VR /G3d 0.5 V typ.) Do not exceed a detection current of 1 A when using the IC. Note 3: With the combination of Cos and R REF shown in the table, the PWM frequency is around 20 kHz. The IC intrinsic error factor is around 10%. The PWM frequency is broadly expressed by the following formula. (In this case, the stray capacitance of the printed circuit board needs to be considered.) f PWM /G3d 0.65 /Gb8 {Cos /Gb4 (RREF /G2b 4.25 k/G57)} [Hz] R REF creates the reference current of the PWM triangular wave charge/discharge circuit. If RREF is set too small it exceeds the current capacity of the IC internal circuits and the triangular wave distorts. Set RREF to at least 9 k/G57. Note 4: When using the IC, some adjustment is required in accordance with the use environment. When mounting, place as close to the base of the IC leads as possible to improve the noise elimination. Note 5: The FG pin is open drain. Note that when the FG pin is connected to a power supply with a voltage higher than or equal to the VCC, a protection circuit is triggered so that the current flows continuously. If not using the FG pin, connect to the GND. Note 6: If noise is detected on the Hall signal pin, add a CR filter. (recommended 0.1-/G6dF capacitor and 1-k/G57 resistor) Handling precautions (1) When switching the power supply to the circuit on/off, ensure that V S /G3c VVSOFF (all IGBT outputs off). At that time, either the VCC or the VBB can be turned on/off first. Note that if the power supply is switched off as described above, the IC may be destroyed if the current regeneration route to the VBB power supply is blocked when the VBB line is disconnected by a relay or similar while the motor is still running. (2) The IC has a forward/reverse rotation control pin (F/R). To change the rotation direction, switch the F/R pin after the motor is stopped in the state that the VS voltage is lower than or equal to 1.1 V . When the F/R pin is switched while the motor is rotating, the following malfunctions may occur. /G9f/G20A shoot-through current may flow between the upper arm and lower arm in the output stage (IGBT) at that moment when the motor is switched. /G9f/G20An over current may flow into the area where the over current protection circuit cannot detect it. (3) The IS pin connecting the current detection resistor is connected to a comparator in the IC and also functions as a sensor pin for detecting over current. As a result, over voltage caused by a surge voltage, for example, may destroy the circuit. Accordingly, be careful of handling the IC or of surge voltage in its application environment. (4) The triangular wave oscillator circuit, with externally connected C OS and RREF, charges and discharges minute amounts of current. Therefore, subjecting the IC to noise when mounting it on the board may distort the triangular wave or cause malfunction. To avoid this, attach external parts to the base of the IC leads or isolate them from any tracks or wiring which carries large current. (5) The PWM of this IC is controlled by the on/off state of the high-side IGBT.
Description of Protection Function (1) Over current protection The IC incorporates the over current protection circuit to protect itself against over current at startup or when a motor is locked. This protection function detects voltage generated in the current detection resistor connected to the IS pin. When this voltage exceeds V R /G3d 0.5 V (typ.), the high-side IGBT output, which is on, temporarily shuts down after a mask period (approx. 2.3 ms), preventing any additional current from flowing to the IC. The next PWM ON signal releases the shutdown state. (2) Under voltage protection The IC incorporates the under voltage protection circuit to prevent the IGBT from operating in unsaturated mode when the V CC voltage or the VBS voltage drops. When the VCC power supply falls to the IC internal setting (VCCUVD /G3d 11 V typ.), all IGBT outputs shut down regardless of the input. This protection function has hysteresis. When the VCCUVR (/G3d 11.5 V typ.) reaches 0.5 V higher than the shutdown voltage, the IC is automatically restored and the IGBT is turned on again by the input. When the V BS supply voltage drops (VBSUVD /G3d 10 V typ.), the high-side IGBT output shuts down. When the VBSUVR (/G3d 10.5 V typ.) reaches 0.5 V higher than the shutdown voltage, the IGBT is turned on again by the input signal. (3) Thermal shutdown The IC incorporates the thermal shutdown circuit to protect itself against the abnormal state when its temperature rises excessively. When the temperature of this chip rises due to external causes or internal heat generation and the internal setting TSD reaches 165°C, all IGBT outputs shut down regardless of the input. This protection function has hysteresis (/G44TSD /G3d 20/Gb0C typ.). When the chip temperature falls to TSD /G2d /G44TSD, the chip is automatically restored and the IGBT is turned on again by the input. Because the chip contains just one temperature detection location, when the chip heats up due to the IGBT, for example, the differences in distance from the detection location in the IGBT (the source of the heat) cause differences in the time taken for shutdown to occur. Therefore, the temperature of the chip may rise higher than the thermal shutdown temperature when the circuit started to operate. Duty ON Over current setting value PWM reference voltage Duty OFF tOFF tON t ON Mask period /G2b tOFF Over current shutdown Retry Triangle wave Output current
1.4 /G2d20 3.4 3.0 2.6 2.2 1.8 20 60 100 140 IC /G3d 700 mA IC /G3d 500 mA IC /G3d 300 mA VCC /G3d 15 V Consumption current I CC (mA) FRD forward voltage V FL (V) Junction temperature T j ( ° C ) VCEsatH – Tj IGBT saturation voltage V CEsatH (V) Junction temperature T j ( ° C ) VCEsatL – Tj IGBT saturation voltage V CEsatL (V) Junction temperature T j ( ° C ) VFH – Tj FRD forward voltage V FH (V) Junction temperature T j ( ° C ) VFL – Tj Control power supply voltage V CC (V) ICC – VCC Control power supply voltage V CC (V) VREG – VCC Regulator voltage V REG (V) IF /G3d 700 mA IF /G3d 300 mA IF /G3d 500 mA 0.8 /G2d20 20 60 100 140 1.0 1.2 1.4 1.6 1.4 /G2d20 3.4 3.0 2.6 2.2 1.8 20 60 100 140 IC /G3d 700 mA VCC /G3d 15 V IC /G3d 500 mA IC /G3d 300 mA 0.8 /G2d20 20 60 100 140 1.0 1.2 1.4 1.6 IF /G3d 700 mA IF /G3d 500 mA IF /G3d 300 mA 1.0 3.0 1.5 2.0 2.5 10 15 20 /G2d20°C 25°C 135°C 5.0 5.5 6.0 6.5 10 15 20 7.0 /G2d20°C 25°C 135°C I reg /G3d 30 mA
/G2d20 20 60 100 140 11.5 9.0 11.0 9.5 10.5 10.0 V BSUVD V BSUVR /G2d20 20 60 100 140 6.0 2.0 4.0 VS 100% VSW VS 0% VCC /G3d 15 V Under voltage protection operating voltage VBSUV (V) Under voltage protection operating voltage VCCUV (V) Junction temperature T j ( ° C ) tON – Tj Output on delay time t ON ( /G6ds) Junction temperature T j ( ° C ) tOFF – Tj Output off delay time t OFF ( /G6ds) Junction temperature T j ( ° C ) VS – Tj PWM on-duty set-up voltage V S ( V ) Junction temperature T j ( ° C ) VCCUV – Tj Junction temperature T j ( ° C ) VBSUV – Tj Junction temperature T j ( ° C ) VR – Tj Current control operating voltage V R (V) /G2d20 20 60 100 140 3.0 1.0 2.0 VBB /G3d 280 V VCC /G3d 15 V IC /G3d 0.5 A High side Low side 3.0 1.0 2.0 /G2d20 20 60 100 140 VBB /G3d 280 V VCC /G3d 15 V IC /G3d 0.5 A High side Low side /G2d20 20 60 100 140 12.5 10.0 12.0 10.5 11.5 11.0 V CCUVD V CCUVR /G2d20 20 60 100 140 1.0 0.8 0.2 0.6 0.4 VCC /G3d 15 V
IBS – VBS (OFF) Turn-off loss Wtoff ( /G6dJ) Turn-on loss Wton ( /G6dJ) Control power supply voltage V BS (V) IBS – VBS (ON) Current consumption I BS (ON) ( /G6dA) Control power supply voltage V BS (V) Current consumption I BS (OFF) ( /G6dA) Junction temperature T j (°C) VF (BSD) – Tj BSD forward voltage V F (BSD) (V) Junction temperature T j ( ° C ) Junction temperature T j ( ° C ) Wtoff – Tj Wton – Tj 100 500 200 300 400 14 16 18 /G2d20°C 25°C 135°C 100 200 300 400 14 16 500 /G2d20°C 25°C 135°C IF /G3d 700 /G6dA IF /G3d 500 /G6dA IF /G3d 300 /G6dA 0.6 /G2d20 20 60 100 140 0.7 0.8 0.9 1.0 /G2d20 250 200 150 100 20 60 100 140 IC /G3d 700 mA IC /G3d 500 mA IC /G3d 300 mA /G2d20 20 60 100 140 IC /G3d 300 mA IC /G3d 500 mA IC /G3d 700 mA
IGBT Saturation Voltage (U-phase low side) FRD Forward Voltage (U-phase low side) HU /G3d 5 V HV /G3d 0 V HW /G3d 0 V FR /G3d 0 V VM 0.5 A 1000 pF 27 k/G57 VCC /G3d 15 V VS /G3d 6 V 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG VM 0.5 A 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG
VCC Current Dissipation (ICC) Regulator Voltage 1000 pF 27 k/G57 VCC /G3d 15 V AM 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG 30 mA 1000 pF 27 k/G57 VCC /G3d 15 V VM 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG
Output ON/OFF Delay Time (U-phase low side) HU HV /G3d 0 V HW /G3d 0 V FR /G3d 0 V 1000 pF 27 k/G57 U /G3d 280 V IM 560 /G57 VS /G3d 6 V VCC /G3d 15 V PG 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG 2.2 /G6dF tOFFtON 10% 0 V 90% HU IM
5 V 90%
10%
PWM ON-duty Setup Voltage (U-phase high side) Note: Sweeps the VS pin voltage to increase and monitors the U pin. When output is turned off from on, the PWM /G3d 0%. When output is full on, the PWM /G3d 100%. HU /G3d 0 V HV /G3d 5 V HW /G3d 5 V FR /G3d 0 V 1000 pF 27 k/G57 VBB /G3d 18 V VM 2 k/G57 VCC /G3d 15 V
0 V /Gae6 V
6 V /Gae0 VVS /G3d
- VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG
VCC Under voltage Protection Operation/Recovery Voltage (U-phase low side) Note: Sweeps the V CC pin voltage from 15 V to decrease and monitors the U pin voltage. The VCC pin voltage when output is off defines the under voltage protection operating voltage. Also sweeps from 6 V to increase. The VCC pin voltage when output is on defines the under voltage protection recovery voltage. VBS Under voltage Protection Operation/Recovery Voltage (U-phase high side) Note: Sweeps the BSU pin voltage from 15 V to decrease and monitors the V BB pin voltage. The BSU pin voltage when output is off defines the under voltage protection operating voltage. Also sweeps the BSU pin voltage from 6 V to increase and change the VS voltage at 6 V /Gae 0 V /Gae 6V. The BSU pin voltage when output is on defines the under voltage protection recovery voltage. HU /G3d 5 V HV /G3d 0 V HW /G3d 0 V FR /G3d 0 V 1000 pF 27 k/G57 U /G3d 18 V VM 2 k/G57 VS /G3d 6 V
15 V /Gae6 V
6 V /Gae15 VVCC /G3d
- VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG HU /G3d 5 V HV /G3d 0 V HW /G3d 0 V FR /G3d 5 V 1000 pF 27 k/G57 VCC /G3d 15 V VM VS /G3d 6 V 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG BSU /G3d 2 k/G57 VBB /G3d 18 V
6 V /Gae 15 V
Current Control Operating Voltage (U-phase high side) Note: Sweeps the IS pin voltage to increase and monitors the U pin voltage. The IS pin voltage when output is off defines the current control operating voltage. HU /G3d 0 V HV /G3d 5 V HW /G3d 5 V FR /G3d 0 V 1000 pF 27 k/G57 IS /G3d 0 V /Gae 0.6 V VM VBB /G3d 18 V 15 V VCC /G3d 15 V VS /G3d 6 V 2 k/G57 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG
VBS Current Consumption (U-phase high side) HU /G3d 5 V/0 V HV /G3d 0 V HW /G3d 0 V FR /G3d 5 V 1000 pF 27 k/G57 VCC /G3d 15 V AM VS /G3d 6 V 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG BSU /G3d 15 V
BSD Forward Voltage (U-phase) VM 500 /G6dA 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG
Turn-On/Off Loss (low-side IGBT /G2b/G2b/G2b/G2b high-side FRD) Input (HU) IGBT (C-E voltage) (U-GND) Power supply current Wtoff Wton HU HV /G3d 0 V HW /G3d 0 V FR /G3d 0 V 1000 pF 27 k/G57 VBB /G3d 280 V VM 5 mH VS /G3d 6 V VCC /G3d 15 V PG 1. VS 2. OS 3. RREF 4. GND 5. V REG 6. VCC 7. IS1 /Gbe (NC) 9. U 10. BSU 11. V BB1 12. V 13. BSV 14. /Gbe (NC) 15. W 16. BSW 17. V BB2 18. IS2 19. HU 20. HV 21. HW 22. FR 23. FG L IM 2.2 /G6dF
Weight: 6.1 g (typ.)
Weight: 6.1 g (typ.)
Weight: 6.1 g (typ.)
/Gb7/G20TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor devices in general can malfunction or fail due to their inherent electrical sensitivity and vulnerability to physical stress. It is the responsibility of the buyer, when utilizing TOSHIBA products, to comply with the standards of safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of such TOSHIBA products could cause loss of human life, bodily injury or damage to property. In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as set forth in the most recent TOSHIBA products specifications. Also, please keep in mind the precautions and conditions set forth in the “Handling Guide for Semiconductor Devices,” or “TOSHIBA Semiconductor Reliability Handbook” etc.. /Gb7/G20The TOSHIBA products listed in this document are intended for usage in general electronics applications (computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances, etc.). These TOSHIBA products are neither intended nor warranted for usage in equipment that requires extraordinarily high quality and/or reliability or a malfunction or failure of which may cause loss of human life or bodily injury (“Unintended Usage”). Unintended Usage include atomic energy control instruments, airplane or spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments, medical instruments, all types of safety devices, etc.. Unintended Usage of TOSHIBA products listed in this document shall be made at the customer’s own risk. /Gb7/G20The products described in this document are subject to the foreign exchange and foreign trade laws. /Gb7/G20The information contained herein is presented only as a guide for the applications of our products. No responsibility is assumed by TOSHIBA CORPORATION for any infringements of intellectual property or other rights of the third parties which may result from its use. No license is granted by implication or otherwise under any intellectual property or other rights of TOSHIBA CORPORATION or others. /Gb7/G20The information contained herein is subject to change without notice. 000707EBARESTRICTIONS ON PRODUCT USE