ACT30 ACTIVE-SEMI | Alldatasheet
Document overview
- Manufacturer or author: Provided By alldatasheet.com(free datasheet download site)
- PDF pages: 10
Technical content
Innovative PowerTM - 1 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. ACT30 Rev 5, 05-Jun-09 High Performance Off-Line Controller ActiveSwitcherTM IC Family
FEATURES
- Lowest Total Cost Solution
- 0.15W Standby Power
- Emitter Drive Allows Safe NPN Transistor Flyback Use
- Hiccup Mode Short Circuit
- Current Mode Operation
- Over-Current Protection
- Under-voltage Protection with Auto-Restart
- Proprietary Scalable Output Driver
- Flexible Packaging Options (Including TO-92)
- 65kHz or 100kHz Switching Frequency
- Selectable 0.4A to 1.2A Current Limit
APPLICATIONS
- Battery Chargers
- Power Adaptors
- Standby Power Supplies
- Appliances
- Universal Off-Line Power Supplies GENERAL DESCRIPTION The ACT30 is a high performance green-energy off- line power supply controller. It features a scalable driver for driving external NPN or MOSFET transistors for line voltage switching. This proprietary architecture enables many advanced features to be integrated into a small package (TO-92 or SOT23-B), resulting in lowest total cost solution. The ACT30 design has six internal terminals and is a pulse frequency and width modulation IC with many flexible packaging options. One combination of internal terminals is packaged in the space- saving TO-92 package (A/B versions) for 65kHz or 100kHz switching frequency and with 400mA or 800mA current limit. Consuming only 0.15W in standby, the IC features over-current, hiccup mode short circuit, and under- voltage protection mechanisms. The ACT30 is ideal for use in high performance universal adaptors and chargers. For highest performance versus cost and smallest PCB area, use the ACT30 in combination with the ACT32 CV/CC Controller. HIGH VOLTAGE DC GND VDD DRV OPTOCOUPLER IC1 Figure 1: Simplified Application Circuit Active- Semi
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 2 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi.
ORDERING INFORMATION
ACT30AHT 65kHz 400mA -40 ˚C to 150˚C 3 PACKAGE TO-92 ACT30BHT 65kHz 800mA -40 ˚C to 150˚C TO-92 3 ACT30AYT 65kHz 400mA -40 ˚C to 150˚C SOT23-B 3 PIN NAME DESCRIPTION TO-92 SOT23-B 1 1 VDD Power Supply Pin. Connect to optocoupler's emitter. Internally limited to 5.5V max. Bypass to GND with a proper compensation network. 2 3 GND Ground. 3 2 DRV Driver Output (TO-92 Only). Connect to emitter of the high voltage NPN or MOSFET. For ACT30A/C, DRV pin is internally connected to DRV1. For ACT30B/D, DRV pin is internally connected to both DRV1 and DRV2. PIN CONFIGURATION TO-92 SOT23-B ACT30A ACT30B
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 3 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. ABSOLUTE MAXIMUM RATINGSc
ELECTRICAL CHARACTERISTICS
(VVDD = 4V, TJ = 25°C, unless otherwise specified.) c: Do not exceed these limits to prevent dama ge to the device. Exposure to absolute ma ximum rating conditions for long periods m ay affect device reliability. PARAMETER VALUE UNIT VDD, FREQ to GND -0.3 to 6 V VDD Current 20 mA DRV, DRV1, DRV2 to GND -0.3 to 18 V Continuous DRV, DRV1, DRV2 Current Internally limited A Maximum Power Dissipation TO-92 0.6 W SOT23-B 0.39 Operating Junction Temperature -40 to 150 ˚C Storage Temperature -55 to 150 ˚C 300 ˚C Lead Temperature (Soldering, 10 sec) PARAMETER SYMBOL TEST CONDITIONS MIN TYP MAX UNIT VVDD Start Voltage V START Rising edge 4.75 5 5.25 V DRV1 Start Voltage V DRVST ACT30A 8.6 10.5 V ACT30B 9.6 11.5 DRV1 Short-Circuit Detect Threshold V SCDRV 6.35 6.8 7.25 V VVDD Under-Voltage Threshold V UV Falling edge 3.17 3.35 3.63 V VVDD Clamp Voltage 10mA 5.15 5.45 5.95 V Startup Supply Current I DDST V VDD = 4V before VUV 0.23 0.45 mA Supply Current I DD 0.7 1 mA Switching Frequency f SW ACT30A/B or FREQ = 0 50 65 80 kHz Maximum Duty Cycle D MAX ACT30A, VVDD = 4V 67 75 83 ACT30B, VVDD = 4V 60 Minimum Duty Cycle D MIN V VDD = 4.6V 3.5 % Effective Current Limit I LIM V VDD = VUV + 0.1V ACT30A 340 400 480 mA ACT30B with DRV1 = DRV2 680 800 920 VVDD to DRV1 Current Coefficient G GAIN -0.29 A/V VDD Dynamic Impedance R VDD 9 k Ω DRV1 or DRV2 Driver On- Resistance RDRV1, RDRV2 IDRV1 = IDRV2 = 0.05A 3.6 Ω DRV1 Rise Time 1nF load, 15 Ω pull-up 30 ns DRV1 Fall Time 1nF load, 15 Ω pull-up 20 ns DRV1 and DRV2 Switch Off Current Driver off, V DRV1 = VDRV2 = 10V 12 30 µA DRV1 must be higher than this voltage to start up.
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 4 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. FUNCTIONAL BLOCK DIAGRAM VDD REGULATOR GND FREQ DRV2 BIAS & UVLO OSC & RAMP CURRENT PFWM SWITCHING CONTROL LOGIC SLEW GND DRV1 HICCUP CONTROL 200k 4.75V 10µA/V ILIM VC GENERATOR ERROR COMP 20k 20k 1X 56X 56X 3.6V (ACT30A/C) 4.6V (ACT30B/D) FUNCTIONAL DESCRIPTION As seen in the Functional Block Diagram , the main components include switching control logic, two on- chip medium-voltage power-MOSFETs with parallel current sensor, driver, oscillator and ramp generator, current limit VC generator, error comparator, hiccup control, bias and under voltage- lockout, and regulator circuitry. As seen in the Functional Block Diagram , the design has six internal terminals. V VDD is the power supply terminal. DRV1 and DRV2 are linear driver outputs that can drive the emitter of an external high voltage NPN transistor or N-channel MOSFET. This emitter-drive method takes advantage of the high V CBO of the transistor, allowing a low cost transistor such as ‘13003 (V CBO = 700V) or ‘13002 (VCBO = 600V) to be used for a wide AC input range. The slew-rate limited driver coupled with the turn-off characteristics of an external NPN transitor result in lower EMI. The driver peak current is designed to have a negative voltage coefficient with respect to supply voltage V VDD, so that lower supply voltage automatically results in higher DRV1 peak current. This way, the optocoupler can control V VDD directly to affect driver current. Startup Sequence Figure 1 shows a Simplified Application Circuit for the ACT30. Initially, the small current through resistor R1 charges up the capacitor C1, and the BJT acts as a follower to bring up the DRV1 voltage. An internal regulator generates a V VDD voltage equal to V DRV1 – 3.6V for ACT30A (V DRV1 – 4.6V for ACT30B) but limits it to 5.5V max. As V VDD crosses 5V, the regulator sourcing function stops and V VDD begins to drop due to its current consumption. As V VDD voltage decreases below 4.75V, the IC starts to operate with increasing driver current. When the output voltage reaches regulation point, the optocoupler feedback circuit stops V VDD from decreasing further. The switching action also allows the auxiliary windings to take over in supplying the C1 capacitor. Figure 2 shows a typical startup sequence for the ACT30. To limit the auxiliary voltage, use a 12V zener diode for ACT30A or a 13V zener diode for ACT30B (D1 diode in Figure 1). Even though up to 2MΩ startup resistor (R1) can be used due to the very low startup current, the actual R1 value should be chosen as a compromise between standby power and startup time delay. c: FREQ terminal wire-bonded to VDD in ACT30C/D (TO-92) d: DRV2 terminal wire-bonded to DRV1 in ACT30B/D (TO-92)
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 6 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. Pulse Modulation The PFWM Switching Control Logic block operates in different modes depending on the output load current level. At light load, the V VDD voltage is around 4.75V. The energy delivered by each switching cycle (with minimum on time of 500ns) to the output causes V VDD to increase slightly above 4.75V. The FPWM Switching Control Logic block is able to detect this condition and prevents the IC from switching until V VDD is below 4.75V again. This results in a pulse-modulation action with fixed pulse width and varying frequency, and low power consumption because the switching frequency is reduced. Typical system standby power consumption is 0.15W. Short Circuit Hiccup When the output is short circuited, the ACT30 enters hiccup mode operation. In this condition, the auxiliary supply voltage collapses. An on-chip detector compares DRV1 voltage during the off- time of each cycle to 6.8V. If DRV1 voltage is below 6.8V, the IC will not start the next cycle, causing both the auxiliary supply voltage and V VDD to reduce further. The circuit enters startup mode when V VDD drops below 3.35V. This hiccup behavior continues until the short circuit is removed. In this behavior, the effective duty cycle is very low resulting in very low short circuit current. To make sure that the IC enters hiccup mode easily, the transformer should be constructed so that there is close coupl ing between secondary and auxiliary, so that the auxiliary voltage is low when the output is short-circuited. This can be achieved with the primary/auxiliary/secondary sequencing from the bobbin.
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 8 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. Application Example The application circuit in Figure 5 provides a 5V/0.75A constant voltage/constant current output. The performance of this circuit is summarized in Table 2. Table 2: System Performance of Circuit in Figure 5 Layout Considerations The following should be observed when doing layout for the ACT30: 1) Use a "star point" conn ection at the GND pin of ACT30 for the VDD bypass components (C5 and C6 in Figure 5), the input filter capacitor (C2 in Figure 5) and other ground connections on the primary side. 2) Keep the loop across the input filter capacitor, the transformer primary windings, and the high voltage transistor, and the ACT30 as small as possible. 3) Keep ACT30 pins and the high voltage transistor pins as short as possible. 4) Keep the loop across the secondary windings, the output diode, and the output capacitors as small as possible. 5) Allow enough copper area under the high voltage transistor, output diode, and current shunt resistor for heat sink. 110VAC 220VAC Standby Power 0.09W 0.15W Current Limit 0.75A 0.75A Full Load Efficiency 65% 67%
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 9 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. PACKAGE OUTLINE TO-92 PACKAGE OUTLINE AND DIMENSIONS (AMMO TAPE PACKING) SYMBOL DIMENSION IN MILIMETERS DIMENSION IN INCHES MIN MAX MIN MAX A 3.300 3.700 0.130 0.146 A1 1.100 1.400 0.043 0.055 b 0.380 0.550 0.015 0.022 c 0.360 0.510 0.014 0.020 D 4.400 4.700 0.173 0.185 D1 3.430 0.135 E 4.300 4.700 0.169 0.185 e 1.270 TYP 0.050 TYP e1 2.440 2.640 0.096 0.104 Φ 1.600 0.063 h 0.000 0.380 0.000 0.015 SYMBOL DIMENSION IN MILIMETERS DIMENSION IN INCHES MIN MAX MIN MAX ∆k -1.000 1.000 -0.039 0.039 F1, F2 2.200 2.800 0.087 0.110 H 19.00 21.00 0.748 0.827 H0 15.50 16.50 0.610 0.650 L1 2.500 0.098 P 12.40 13.00 0.488 0.512 ∆P -1.000 1.000 -0.039 0.039 P0 12.50 12.90 0.492 0.508 P1 3.550 4.150 0.140 0.163 P2 6.050 6.650 0.238 0.262 Q1 3.800 4.200 0.150 0.165 t1 0.350 0.450 0.014 0.018 t2 0.150 0.250 0.006 0.010 W 17.50 19.00 0.689 0.748 W0 5.500 6.500 0.217 0.256 W1 8.500 9.500 0.335 0.374 W2 1.000 0.039 W P ∆P P2 P1 F1 F2 H Φ D b e
Rev 5, 05-Jun-09 Active- Semi Innovative PowerTM - 10 - www.active-semi.com Copyright © 2009 Active-Semi, Inc. ActiveSwitcherTM is a trademark of Active-Semi. SOT23-B PACKAGE OUTLINE AND DIMENSIONS SYMBOL DIMENSION IN MILLIMETERS DIMENSION IN INCHES MIN MAX MIN MAX A 1.900 1.150 0.035 0.045 A1 0.000 0.100 0.000 0.004 A2 0.900 1.050 0.035 0.041 b 0.300 0.500 0.012 0.020 c 0.080 0.150 0.003 0.006 D 2.800 3.000 0.110 0.118 E 1.200 1.400 0.047 0.055 E1 2.250 2.550 0.089 0.100 e 0.037 TYP e1 1.800 2.000 0.071 0.079 L 0.550 REF 0.022 REF L1 0.300 0.500 0.012 0.020 θ 0° 8° 0° 8°
0.950 TYP
θ D b E e A c LL 1 0.25 Active-Semi, Inc. reserves the right to modify the circui try or specifications without not ice. Users should evaluate each product to make sure that it is suitable for their applications. Active-Semi products are not intended or authorized for use as critical components in life-support devices or systems. Acti ve-Semi, Inc. does not assume any liability arising out of the use of any product or circuit described in this datasheet, nor does it convey any patent license. Active-Semi and its logo are trademarks of Active-Semi, Inc. For more information on this and other products, contact sales@active-semi.com or visit http://www.active-semi.com. For other inquiries, please send to: