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TOP264EG/VG 数据表(PDF) 19 Page - Power Integrations, Inc. |
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TOP264EG/VG 数据表(HTML) 19 Page - Power Integrations, Inc. |
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19 / 36 page ![]() Rev. B 03/10 19 TOP264-271 www.powerint.com 6. Power levels shown in the power table for the V package device assume 6.45 cm2 of 610 g/m2 copper heat sink area in an enclosed adapter, or 19.4 cm2 in an open frame. The provided peak power depends on the current limit for the respective device. TOP264-271 Selection Selecting the optimum TOP264-271 depends upon required maximum output power, efficiency, heat sinking constraints, system requirements and cost goals. With the option to externally reduce current limit, TOP264-271 may be used for lower power applications where higher efficiency is needed or minimal heat sinking is available. Input Capacitor The input capacitor must be chosen to provide the minimum DC voltage required for the TOP264-271 converter to maintain regulation at the lowest specified input voltage and maximum output power. Since TOP264-271 has a high DC MAX limit and an optimized dual slope line feed forward for ripple rejection, it is possible to use a smaller input capacitor. For TOP264-271, a capacitance of 2 mF per watt is possible for universal input with an appropriately designed transformer. Primary Clamp and Output Reflected Voltage V OR A primary clamp is necessary to limit the peak TOP264-271 drain to source voltage. A Zener clamp requires few parts and takes up little board space. For good efficiency, the clamp Zener should be selected to be at least 1.5 times the output reflected voltage V OR, as this keeps the leakage spike conduction time short. When using a Zener clamp in a universal input application, a V OR of less than 135 V is recommended to allow for the absolute tolerances and temperature variations of the Zener. This will ensure efficient operation of the clamp circuit and will also keep the maximum drain voltage below the rated breakdown voltage of the TOP264-271 MOSFET. A high V OR is required to take full advantage of the wider DC MAX of TOP264-271. An RCD (or RCDZ) clamp provides tighter clamp voltage tolerance than a Zener clamp and allows a V OR as high as 150 V. RCD clamp dissipation can be minimized by reducing the external current limit as a function of input line voltage (see Figure 18). The RCD clamp is more cost effective than the Zener clamp but requires more careful design (see Quick Design Checklist). Output Diode The output diode is selected for peak inverse voltage, output current, and thermal conditions in the application (including heat sinking, air circulation, etc.). The higher DC MAX of TOP264-271, along with an appropriate transformer turns ratio, can allow the use of a 80 V Schottky diode for higher efficiency on output voltages as high as 15 V. Bias Winding Capacitor Due to the low frequency operation at no-load, a bias winding capacitance of 10 mF minimum is recommended. Ensure a minimum bias winding voltage of >9 V at zero load for correct operation and output voltage regulation. Soft-Start Generally, a power supply experiences maximum stress at start-up before the feedback loop achieves regulation. For a period of 17 ms, the on-chip soft-start linearly increases the drain peak current and switching frequency from their low starting values to their respective maximum values. This causes the output voltage to rise in an orderly manner, allowing time for the feedback loop to take control of the duty cycle. This reduces the stress on the TOP264-271 MOSFET, clamp circuit and output diode(s), and helps prevent transformer saturation during start-up. Also, soft-start limits the amount of output voltage overshoot and, in many applications, eliminates the need for a soft-finish capacitor. Note that as soon as the loop closes the soft-start function ceases even if this is prior to the end of the 17 ms soft-start period. EMI The frequency jitter feature modulates the switching frequency over a narrow band as a means to reduce conducted EMI peaks associated with the harmonics of the fundamental switching TOPSwitch-HX vs. TOPSwitch-JX Function TOPSwitch-HX TOPSwitch-JX TOPSwitch-JX Advantages CONTROL current I C(OFF) at 0% duty cycle I C(OFF) = IB + 3.4 mA (TOP256-258) I B = External bias current I C(OFF) = IB + 1.6 mA (TOP266-268) • Reduced CONTROL current • Better no-load performance (<0.1 W) • Better standby performance eDIP-12 package Not available Available • 66/132 kHz frequency option for DIP style heatsink less designs • Better thermal performance for increased power capability over DIP-8 package Breakdown voltage BV DSS Min. 700 V at T J = 25 °C Min. 725 V at T J = 25 °C • Simplifies meeting customer derating requirements (e.g. 80%) • Extended line surge withstand Fast AC reset 3 External transistor circuits using the V pin 1 External transistor circuit using the X pin • Saves 5 components Table 4. Comparison Between TOPSwitch-HX and TOPSwitch-JX. |
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