PM15CNJ060 MITSUBISHI | Alldatasheet
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Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE PM15CNJ060
- 3 phase IGBT (15A/600V) inverter output
- Monolithic gate drive & protection logic circuit
- Protection logic
- Over circuit (OC)
- Short circuit (SC)
- Over temperature (OT)
- Under voltage lock-out (UV)
- UL Recognized File No. E80271 Yellow Card No. E80276 APPLICATION General purpose inverter, servo drives and other motor controlers PACKAGE OUTLINES Dimensions in mm 5.5 5.5 10.5 5.5 3.5 (14.25) (t = 0.5) (t = 0.4) (13.04) 7.62 7.62 7.62 25.7 2.5 0.5 1.5 0.5 2-R5 2-φ4.5 LABEL B A P N U V W 94.5 ± 1 3.5 ± 0.5 33.6 ± 0.8 44 ± 1 2.5423=58.42 ± 0.5 2.54 ± 0.25 14 ± 0.25 8 ± 0.5 18 ± 1 84.5 ± 0.5 2 ± 0.1 0.6 ± 0.1 56 ± 0.5 A:Detail B:Detail Terminal code NC : No Connect 1. VUPC 2. NC 3. UP 4. VUP1 5. VVPC 6. NC 7. VP 8. VVP1 9. VWPC 10. NC 11. WP 12. VWP1 13. VNC 14. VN1 15. UN 16. VN 17. WN 18. FO 19. P 20. N 21. U 22. V 23. W
Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE INTERNAL FUNCTIONS BLOCK DIAGRAM VCES ±IC ±ICP PC Tj Collector-Emitter Voltage Collector Current Collector Current (Peak) Collector Dissipation Junction Temperature VD = 15V, VCIN = 15V TC = 25°C TC = 25°C TC = 25°C V A A W MAXIMUM RATINGS (Tj = 25°C, unless otherwise noted) INVERTER PART Symbol Parameter Condition Ratings Unit 600 –20 ~ +125∗ ∗The item defines the maximum junction temperature for the power elements (IGBT/Diode) of the IPM to ensure safe operation. However, these power elements can endure junction temperature as high as 150°C instantaneously. To make use of this additional temperature al- lowance, a detailed study of the exact application conditions is required and, accordingly, necessary information is requested to be provided before use. VD VCIN VFO IFO V V V mA CONTROL PART Supply Voltage Input Voltage Fault Output Supply Voltage Fault Output Current Applied between : VUP1-VUPC VVP1-VVPC, VWP1-VWPC, VN1-VNC Applied between : UP-VUPC, VP-VVPC WP-VWPC, UN • VN • WN-VNC Applied between : FO-VNC Sink current at FO terminals Symbol Parameter Condition Ratings Unit WP NC NC NC VWP1 VWPC UN VN VN1 VNC WN Fo N W V P U VP VVP1 VVPC UP VUP1 VUPC OUT Si GND Vcc In GND OUT Si GND Vcc In GND OUN SUN OWN SWN OVN SVN Rfo Fo GND Vcc WN VN UN Rfo=1.5kΩ Tc Tb GND OUT Si GND Vcc In GND
Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE TOTAL SYSTEM Min. 0.3 VD = 15V, IC = 15A VCIN = 0V, Pulsed (Fig. 1) –IC = 15A, VD = 15V, VCIN = 15V (Fig. 2) VD = 15V, VCIN = 0V↔15V VCC = 300V, IC = 15A Tj = 125°C, Inductive Load (Upper-Lower Arm) (Fig. 3) VCE = VCES, VD = 15V (Fig. 4) V V µs µs µs µs µs mA Typ. 1.8 1.9 2.0 0.7 0.15 0.35 1.5 0.4 Max. 2.5 2.6 3.0 1.6 0.5 1.0 2.3 1.2 Collector-Emitter Saturation Voltage FWDi Forward Voltage Switching Time Collector-Emitter Cutoff Current ELECTRICAL CHARACTERISTICS (Tj = 25°C, unless otherwise noted) INVERTER PART Symbol Parameter Test Condition Unit Limits VCE(sat) VEC ton trr tc(on) toff tc(off) ICES (Note-1) Tc measurement point VCC(PROT) VCC(surge) TC Tstg Viso V V Vrms Supply Voltage Protected by SC Supply Voltage Module Case Operating Temperature Storage Temperature Isolation Voltage VD = 13.5 ~ 16.5V, Inverter Part, Tj = 125°C Start Applied between : P-N, Surge value (Note-1) 60Hz, Sinusoidal Charged part to Base, AC 1 min. Symbol Parameter Condition Ratings Unit 400 500 –20 ~ +100 –40 ~ +125 2500 Tj = 25°C Tj = 125°C Tj = 25°C Tj = 125°C Tc
Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE (Note-3) With ripple satisfying the following conditions dv/dt swing ≤ ±5V/µs, Variation ≤ 2V peak to peak VCC VD VCIN(ON) VCIN(OFF) fPWM tdead Applied across P-N terminals (Fig. 3) Applied between : VUP1-VUPC, VVP1-VVPC VWP1-VWPC, VN1-VNC (Note-3) Applied between : UP-VUPC, VP-VVPC, WP-VWPC UN • VN • WN-VNC Using Application Circuit of Fig. 8 For IPM’s each input signals (Fig. 7) V V V kHz µs Supply Voltage Control Supply Voltage Input ON Voltage Input OFF Voltage PWM Input Frequency Arm Shoot-through Blocking Time RECOMMENDED CONDITIONS FOR USE Symbol Parameter Test Condition Unit Recommended value ≤ 400 15 ± 1.5 ≤ 0.8 ≥ 4.0 ≤ 15 ≥ 2 Min. 0.98 Mounting part screw : M4 N • m kg • cm g Typ. 1.18 Max. 1.47 Mounting torque Weight MECHANICAL RATINGS AND CHARACTERISTICS Symbol Parameter Test Condition Unit Limits Rth(j-c)Q Rth(j-c)F Rth(c-f) Min. Inverter IGBT part (per 1/6 module) Inverter FWDi part (per 1/6 module) Case to fin, (per 1 module) Thermal grease applied °C/W °C/W °C/W Typ. Max. 2.9 4.5 0.5 Junction to case Thermal Resistances Contact Thermal Resistance THERMAL RESISTANCES Symbol Parameter Test Condition Unit Limits ID Vth(ON) Vth(OFF) OC SC toff(OC) OT OTr UV UVr IFO(H) IFO(L) tFO (Note-2) Fault output is given only when the internal SC, OT & UV protections schemes of either upper or lower arm device operate to protect it. Min. 1.2 1.7 100 11.5 1.0 VD = 15V, VCIN = 15V Applied between : UP-VUPC, VP-VVPC, WP-VWPC UN • VN • WN-VNC –20 ≤ Tj ≤ 125°C, VD = 15V (Fig. 5,6) –20 ≤ Tj ≤ 125°C, VD = 15V (Fig. 5,6) VD = 15V (Fig. 5,6) VD = 15V –20 ≤ Tj ≤ 125°C VD = 15V, VCIN = 15V (Note-2) VD = 15V (Note-2) mA V V A A µs V V mA mA ms Typ. 1.5 2.0 110 12.0 12.5 1.8 Max. 1.8 2.3 120 12.5 0.01 Circuit Current Input ON Voltage Input OFF Voltage Over Current Trip Level Short Circuit Trip Level Over Current Delay Time Over Temperature protection Supply Circuit Under-Voltage Protection Fault Output Current Minimum Fault Output Pulse Width CONTROL PART Trip level Reset level Trip level Reset level Symbol Parameter Test Condition Unit Limits VN1-VNC VXP1-VXPC
Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE PRECAUTIONS FOR TESTING 1. Before appling any control supply voltage (VD), the input signals should be low level. After this, each input signal should be set to the specified ON and OFF level. 2. When performing “SC” tests, the turn-off surge voltage spike at the corresponding protection operation should not be allowed to rise above VCC(surge) rating of the device. (These test should not be done by using a curve tracer or its equivalent.) 10% 90% trr Irr tr td (on) tc (on) tc (off) td (off) VCIN Ic Vce 10% 90% tf ton= td (on) + tr toff= td (off) + tf VD (all) U,V,W, (N) Signal Input P, (U,V,W) A Pulse VCE VCIN (15V) VD (all) U,V,W, (N) Signal Input P, (U,V,W) VCIN VCC IC IC IC OC SC VCIN toff (OC) toff (OC) Short Over Current (sc) Over Current (oc) Constant Current Constant Current U,V,W N VCINN VCINP VD VD P Ic Vcc VCINN VCINP t t tdead tdead Fig. 5 OC and SC Test Fig. 6 OC and SC Test waveform Fig. 7 Dead time measurement point example Fig. 3 Switching time Test circuit and waveform P, (U,V,W) P, (U,V,W) U,V,W, (N) U,V,W, (N) VD (all) VD (all) VCIN (0V) VCIN (15V) –Ic Ic Fig. 1 VCE(sat) Test Fig. 2 VEC Test V V a) Lower Arm Switching P N N U,V,W Vcc Vcc Ic Ic VD (all) P U,V,W VD (all) VCIN VCIN Signal input (Upper Arm) Signal input (Lower Arm) Signal input (Upper Arm) Signal input (Lower Arm) b) Upper Arm Switching Fig. 4 ICES Test
Jan. 2000 MITSUBISHI <INTELLIGENT POWER MODULES> PM15CNJ060 FLAT-BASE TYPE INSULATED PACKAGE NOTES FOR STABLE AND SAFE OPERATION ;
- Design the PCB pattern to minimize wiring length between opto-coupler and IPM’s input terminal, and also to minimize the stray capacity between the input and output wirings of opto-coupler.
- Connect low impedance capacitor between the Vcc and GND terminal of each fast switching opto-coupler.
- Fast switching opto-couplers : tPLH, tPHL ≤ 0.8µs, Use High CMR type.
- Slow switching opto-coupler : CTR > 100%
- Use 4 isolated control power supplies (VD). Also, care should be taken to minimize the instantaneous voltage charge of the power supply.
- Make inductance of DC bus line as small as possible, and minimize surge voltage using snubber capacitor between P and N terminal.
- Use line noise filter capacitor (ex. 4.7nF) between each input AC line and ground to reject common-mode noise from AC line and improve noise immunity of the system. VD4 VD1 M U V W N P VUPC VUP1 NC NC NC UP OUT Si GND GND In Vcc VVPC VVP1 VP VWPC VWP1 Tc Tb GND VNC VN1 Fo WN VN UN WP GND Fo WN VN UN SVN OVN SUN OUN SWN OWN OUT Si GND GND In Vcc Vcc Vcc OUT Si GND GND In VD2 VD3 Fig. 8 Application Example Circuit