AFP5D06K060Q5 AOSMD | Alldatasheet
Document overview
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Technical content
Features
UL Recognized: 600V-6A (Trench Shielded Planar Gate IGBT) Full bridge Inverter module including HVIC drivers Built-in bootstrap diodes with integrated current-limiting resistor Control supply under-voltage lockout protection (UVLO) Over-temperature (OT) protection and temperature monitoring (VOT) - pin open Temperature monitoring only (VOT) - 10kΩ resistor connection Short-circuit current protection (CSC) Controllable fault out signal (VCF) corresponding to SC, UV and OT fault Wide input interface (3-18V), Schmitt trigger receiver circuit (Active High) Isolation ratings of 2000Vrms/min
Applications
AC 100-240Vrms class low power motor drives Refrigerators and Compressors Internal Equivalent Circuit / Pin Configuration CF CSC WLIN ULIN VHIN UHIN VDD UVS UHO COM WHO VHO VVS ULO VLO WVS WLO UVB VVB WVB VOT WHIN VDD CSC (13) VCF (12) IN(WL) (11) NC (10) IN(UL) (9) NC (6) IN(WH) (7) IN(UH) (5) VB(W) (3) NC (2) VB(U) (1) VOT (14) (22) P (21) U (20) NC (19) W (18) NU (17) NC (16) NW (23) NC COM (4) VLIN VDD (8) COM VDD COM (15) AFP5D06K060Q5 AFP5D06K060Q5S Dual-In-Line Package Intelligent Power Module
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Ordering Information
Part Number Temperature Range Package Pin Length Description AFP5D06K060Q5 -40°C to 150°C IPM-5 Normal AFP5D06K060Q5S -40°C to 150°C IPM-5A Short AOS Green Products use reduced levels of Halogens, and are also RoHS compliant. Please visit www.aosmd.com/media/AOSGreenPolicy.pdf for additional information. Pin Description Pin Number Pin Name Pin Function
1 VB(U) High-Side Bias Voltage for U-Phase IGBT Driving
2 NC No Connection
3 VB(W) High-Side Bias Voltage for W-Phase IGBT Driving
4 COM Common Supply Ground
5 IN(UH) Signal Input for High-Side U-Phase
6 NC No Connection
7 IN(WH) Signal Input for High-Side W-Phase
8 VDD Common Bias Voltage for IC and IGBTs Driving
9 IN(UL) Signal Input for Low-Side U-Phase
10 NC No Connection
11 IN(WL) Signal Input for Low-Side W-Phase
12 VCF Controllable Fault Output
13 CSC Capacitor (Low-Pass Filter) for Short-circuit Current Detection Input
14 VOT Voltage Output of LVIC Temperature
15 COM Common Supply Ground
16 NW Negative DC-Link Input for W-Phase
17 NC No Connection
18 NU Negative DC-Link Input for U-Phase
19 W Output for W-Phase
20 NC No Connection
21 U Output for U-Phase
22 P Positive DC-Link Input
23 NC No Connection
www.aosmd.com Rev.1.0 May 2020 Page 3 of 15 AFP5D06K060Q5 / AFP5D06K060Q5S Absolute Maximum Ratings TJ = 25°C, unless otherwise specified. Symbol Parameter Conditions Ratings Units Inverter VPN Supply Voltage Applied between P - NU,NV,NW 450 V VPN(surge) Supply Voltage (surge) Applied between P - NU,NV,NW 500 V VCES Collector-Emitter Voltage 600 V IC High-side Output Phase Current TC=25°C, TJ<150°C 5 A TC=100°C, TJ<150°C 3 A ±IPK Output Peak Phase Current TC=25°C, less than 1ms pulse width 10 A PC Collector Dissipation TC=25°C, per chip 18.9 W IC Low-side Output Phase Current TC=25°C, TJ<150°C 10 A TC=100°C, TJ<150°C 5 A ±IPK Output Peak Phase Current TC=25°C, less than 1ms pulse width 20 A PC Collector Dissipation TC=25°C, per chip 23 W tSC Short Circuit Withstand Time VPN≤400V, TJ=150°C, VDD=15V 5 µs +TJ Operating Junction Temperature -40 to 150 °C Control (Protection) VDD Control Supply Voltage Applied between VDD-COM 25 V VDB High-Side Control Bias Voltage Applied between VB(U)-U, VB(V)-V, VB(W)-W 25 V VIN Input Voltage Applied between IN (UH), IN(VH), IN(WH), IN(UL), IN(VL), IN(WL) – COM VDD±0.5 V VCF Fault Output Supply Voltage Applied between VCF-COM 5±0.5 V ICF Fault Output Current Sink current at VCF terminal 1 mA VSC Current Sensing Input Voltage Applied between CSC-COM 5±0.5 V VOT Temperature Output Applied between VOT-COM 5±0.5 V Total System VPN(PROT) Self Protection Supply Voltage Limit (Short-Circuit Protection Capability) VDD=13.5-16.5V, Inverter part TJ=150°C, Non-repetitive, less than 2µs 400 V TC Module Case Operation Temperature Measurement point of T C is provided in Figure 1 -30 to 125 °C TSTG Storage Temperature -40 to 150 °C VISO Isolation Voltage 60Hz, sinusoidal, AC 1min, between connected all pins and heat sink plate 2000 Vrms
Figure 1. TC Measurement Point
- For the measurement point of case temperature (TC), please refer to Figure 1.
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Electrical Characteristics
TJ = 25°C, unless otherwise specified. Symbol Parameter Conditions Min. Typ. Max. Units Inverter VCE(SAT) Collector-Emitter Saturation Voltage for high-side VDD=VDB=15V, VIN=5V IC=2.5A, TJ=125°C - 1.69 - V VCE(SAT) Collector-Emitter Saturation Voltage for low-side VDD=VDB=15V, VIN=5V IC=2.5A, TJ=125°C - 1.40 - V VF FWD Forward Voltage VIN=0 IF=2.5A, TJ=25°C - 1.75 2.15 V tON Switching Times VPN=300V, VDD=VDB=15V IC=2.5A, TJ=25°C, VIN=0V ↔ 5V Inductive load (high-side) 0.40 0.80 1.40 µs tC(ON) - 0.10 0.40 µs tOFF - 0.85 1.45 µs tC(OFF) - 0.12 0.30 µs trr - 0.12 - µs tON Switching Times VPN=300V, VDD=VDB=15V IC=2.5A, TJ=25°C, VIN=0V ↔ 5V Inductive load (low-side) 0.40 0.75 1.40 µs tC(ON) - 0.10 0.40 µs tOFF - 1.00 1.60 µs tC(OFF) - 0.12 0.30 µs trr - 0.10 - µs ICES Collector-Emitter Leakage Current VCE=VCES TJ=25°C - - 1 mA TJ=125°C - - 10 mA Control (Protection) IQDD Quiescent VDD Supply Current VDD=15V, IN(UH,VH,WH,UL,VL,WL) =0V VDD-COM - - 2.1 mA IQDB Quiescent V DB Supply Current VDB=15V, IN(UH, VH, WH)=0V VB(U)-U, VB(V)-V, VB(W)-W - - 0.3 mA VSC(ref) Short-Circuit Trip Level VDD=15V (2) 0.45 0.48 0.51 V UVDT Supply Circuit U nder-Voltage Protection Trip Level 10.3 11.4 12.5 V UVDR Reset Level 10.8 11.9 13.0 V UVDBT Trip Level 8.5 9.5 10.5 V UVDBR Reset Level 9.5 10.5 11.5 V VOT Temperature Output Pull-down R=10kΩ (3) LVIC Temperature=80°C 2.36 2.45 2.55 V LVIC Temperature=25°C 0.77 1.00 1.25 V OTT Over-Temperature Protection (4) VDD=15V, Detect LVIC Temperature Trip Level 110 130 150 °C OTHYS Hysteresis of Trip Reset - 30 - °C VCFH Fault Output Voltage VSC=0V, VCF Circuit: 10kΩ to 5V pull-up 4.9 - - V VCFL VSC=1V, VCF Circuit: 10kΩ to 5V pull-up - - 0.5 V VCF+ CF positive going threshold - 1.9 2.2 V VCF- CF negative going threshold 0.8 1.1 - V tFO Fault Output Pulse Width (5) 20 - - µs IIN Input Current VIN=5V - 1.0 - mA Vth(on) ON Threshold Voltage Applied between IN (UH), IN(VH), IN(WH), IN(UL), IN(VL), IN(WL)-COM 2.3 2.6 V Vth(off) OFF Threshold Voltage 0.8 1.2 V Vth(hys) ON/OFF Threshold Hysteresis Voltage - 1.1 - V VF(BSD) Bootstrap Diode Forward Voltage IF=10mA Including Voltage Drop by Limiting Resistor (6) 0.5 1.0 1.5 V RBSD Built-in Limiting Resistance Included in Bootstrap Diode 80 100 120 Ω Notes: 2. Short-circuit protection works only for low sides. 3. The IPM does not shutdown IGBTs and output fault signal automatically when temperature rises excessively. When temperature exceeds the protective level that the user defined, the controller (MCU) should stop the IPM. Temperature of LVIC vs. VOT output characteristics is described in Figure 3.
- Plain washers (ISO 7089-7094) are recommended.
Figure 6. Flatness Measurement Positions
- IPM may not respond if the input pulse width is less than PWIN(ON), PWIN(OFF).
www.aosmd.com Rev.1.0 May 2020 Page 11 of 15 AFP5D06K060Q5 / AFP5D06K060Q5S Example of Application Circuit CF CSC WLIN ULIN UVS UHO COM WHO VHO VVS ULO VLO WVS WLO UVB VVB WVB VOT(14) VOT (13) CSC (12) VCF (3) VB(W) (2) NC (1) VB(U) (15) COM (22) P (21) U (20) NC (19) W (18) NU (17) NC (16) NW C2C1 A B R1 C D D1 (23) NC M VLIN C2C1 D1 10kΩ Bootstrap negative electrodes should be connected to U, V, W pins directly and separated from the main output wires. Long wiring here might cause short circuit failure. Shunt Resistor Long wiring here might cause SC level fluctuation and malfunction. Long GND wiring here might generate noise to input signal and cause IGBT malfunction. N1 Power GND wiringControl GND wiring VHIN UHIN VDD WHIN VDD COM (6) NC It is recommended to only use (15) COM connection. VDD Open: OT Enabled 10kΩ Pull-down: OT Disabled Micro Controller High-side PWM input Low-side PWM input Temperature sensing Fault output signal Recommended Component Values: (#1) C1:over 10µF, C2:100nF, D1:24V (#2) R:100Ω, C:1nF (#3) R2:2kΩ, C5:10nF #5#2 (11) IN(WL) (10) NC (9) IN(UL) 15V VDD (7) IN(WH) (5) IN(UH) (4) COM (8) VDD R C R C R C R C (1) If the control GND is connected with the power GND by common broad pattern, it may cause malfunction by power GND fluctuation. It is recommended to connect the control GND and power GND at a single point (N1), near the terminal of the shunt resistor. (2) There are two COM pins in the IPM but it is recommended to only use the (15) COM pin to minimize SC detection noise. (3) A zener diode D1 (24V/1W) is recommended between each pair of control supply pins to prevent surge destruction. (4) Prevention of surge destruction can further be improved by placing the bus capacitor as close to pin P and N1 as possible. Generally a 0.1-0.22µF snubber capacitor C3 between the P-N1 terminals is recommended. (5) Selection of the R1*C4 filter components for short-circuit protection is recommended to have tight tolerance, and is temperature- compensated type. The R1*C4 time constant should be set such that SC current is shut down within 2µs; (typically 1.5-2µs). R1 and C4 should be placed as close as possible to the CSC pin. SC interrupting time may vary with layout patterns and components selection, therefore thorough evaluation in the system is necessary. (6) Tight tolerance and temperature-compensated components are also recommended when selecting the R2*C5 filter for VOT. The R2*C5 time constant should be set such that VOT is immune to noise. Recommended values of R2 and C5 are 2kΩ and 10nF. (7) To prevent malfunction, traces A, B, and C should be as short as possible. (8) It is recommended that all capacitors are mounted as close to the IPM as possible. (C1: electrolytic type with good temperature and frequency characteristics. C2: ceramic type with 0.1-2µF, good temperature, frequency and DC bias characteristics.)
required turn-on and turn-off threshold voltages. example, if control supply is 5V, a 10kΩ (over 5kΩ) pull-up resistor R3 is recommended. value. For the design guide, please refer to the Figure 5. (12) Direct drive of the IPM from the MCU is possible without having to use opto-coupler or isolation transformer. avoid such problems, line ripple voltage is recommended to have dV/dt ≤ ±1V/µs, and Vripple ≤ 2Vp-p. (14) It is not recommended to use the IPM to drive the same load in parallel with another IPM or inverter types. Figure 11. Switching Times Definition
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www.aosmd.com Rev.1.0 May 2020 Page 15 of 15 AFP5D06K060Q5 / AFP5D06K060Q5S LEGAL DISCLAIMER Alpha and Omega Semiconductor makes no representations or warranties with respect to the accuracy or completeness of the information provided herein and takes no liabilities for the consequences of use of such information or any product described herein. Alpha and Omega Semiconductor reserves the right to make changes to such information at any time witho ut further notice. This document does not constitute the grant of any intellectual property rights or representation of non -infringement of any third party’s intellectual property rights. Customer shall comply with applicable legal requirements, including all applicable export control rules, regulations and limitation. LIFE SUPPORT POLICY ALPHA AND OMEGA SEMICOND UCTOR PRODUCTS ARE NOT AUTHORIZED FOR USE AS CRITICAL COMPONENTS IN LIFE SUPPORT DEVICES OR SYSTEMS As used herein: 1. Life support devices or systems are devices or systems which, (a) are intended for surgical implant into the body or (b) support or sustain life, and (c) whose failure to perform when properly used in accordance with instructions for use provided in the labeling, can be reasonably expected to result in a significant injury of the user. 2. A critical component in any component of a life support, device, or system whose failure to perform can be reasonably expected to cause the failure of the life support device or system, or to affe ct its safety or effectiveness.