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UD052012G-AG6-R 数据表(PDF) 7 Page - Unisonic Technologies |
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UD052012G-AG6-R 数据表(HTML) 7 Page - Unisonic Technologies |
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7 / 9 page ![]() UD052012 Advance LINEAR INTEGRATED CIRCUIT UNISONICTECHNOLOGIESCO.,LTD 7 of 9 www.unisonic.com.tw QW-R115-039.a APPLICATION INFORMATION (Cont.) Where FOSC is the switching frequency, L is the inductance value, VIN is the input voltage, ESR is the equivalent series resistance value of the output capacitor, ESL is the equivalent series inductance value of the output capacitor and the COUT is the output capacitor. Low ESR capacitors are preferred to use. Ceramic, tantalum or low ESR electrolytic capacitors can be used depending on the output ripple requirements. When using the ceramic capacitors, the ESL component is usually negligible. It is important to use the proper method to eliminate high frequency noise when measuring the output ripple. Inductor Selection The output inductor is used for storing energy and filtering output ripple current. But the trade-off condition often happens between maximum energy storage and the physical size of the inductor. The first consideration for selecting the output inductor is to make sure that the inductance is large enough to keep the converter in the continuous current mode. That will lower ripple current and result in lower output ripple voltage. The ∆IL is inductor peak-to-peak ripple current: 1 × × OUT OUT L IN OSC V V I V FL A good compromise value between size and efficiency is to set the peak-to-peak inductor ripple current ∆IL equal to 30% of the maximum load current. But setting the peak-to-peak inductor ripple current ∆IL between 20%~50% of the maximum load current is also acceptable. Then the inductance can be calculated with the following equation: ∆IL=0.3×IOUT(MAX) × ×× OUT IN OUT IN OSC L V VV L VF I To guarantee sufficient output current, peak inductor current must be lower than the UD052012 high-side MOSFET current limit. () 2 L PEAK OUT MAX I II Feedforward Capacitor Selection Internal compensation function allows users saving time in design and saving cost by reducing the number of external components. The use of a feedforward capacitor C3 in the feedback network is recommended to improve transient response or higher phase margin. UTC UD052012 VOUT FB R1 R2 C3 For optimizing the feedforward capacitor, knowing the cross frequency is the first thing. The cross frequency (or the converter bandwidth) can be determined by using a network analyzer. When getting the cross frequency with no feedforward capacitor identified, the value of feedforward capacitor C3 can be calculated with the following equation: 11 11 3 21 12 CROSS C FR RR Where FCROSS is the cross frequency. To reduce transient ripple, the feedforward capacitor value can be increased to push the cross frequency to higher region. Although this can improve transient response, it also decreases phase margin and causes more ringing. In the other hand, if more phase margin is desired, the feedforward capacitor value can be decreased to push the cross frequency to lower region. In general, the feedforward capacitor range is between 10pF to 330pF. |
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