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MP4050GS Scheda tecnica(PDF) 16 Page - Monolithic Power Systems |
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MP4050GS Scheda tecnica(HTML) 16 Page - Monolithic Power Systems |
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16 / 21 page ![]() MP4050 – NON-ISOLATED, HIGH BRIGHTNESS, LED DRIVER MP4050 Rev.1.02 www.MonolithicPower.com 16 1/18/2016 MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2016 MPS. All Rights Reserved. Table 1: Recommended input capacitance Surge voltage 500V 1000V 1500V 2000V C2 3.3μF 4.7μF 4.7μF C3 3.3μF 4.7μF 10μF Show in Figure11 The demo board can pass the 2000V differential surge test by adopting below circuit setup. (1) Add a MOV RV1(TVR14431) (2) Add a fuse F1 (SS-5-2A) 1mH/0.1A L1 4.7 400V C3 4.7 400V C2 10/1W FR1 L N MB6S 600V/0.5A BD1 TVR14431 RV1 F1 250V/2A 85~265VAC Figure11: 2kV surge solution Layout Guide PCB layout is very important to achieve reliable operation, good EMI and good thermal performance especially in very small size LED application. The following describe some layout recommendations. 1. The loop formed between the MP4050, inductor, freewheeling diode and output capacitor should be kept as small as possible for better EMI. 2. Put the AC input far away from the switching nodes to minimize the noise coupling that may bypass the input filter. 3. The VCC pin and PRO pin capacitor should be located physically close to the IC and GND. 4. Put the feedback resistor next to the PRO pin as possible and minimize the feedback sampling loop to minimize the noise coupling route. 5. In the buck topology, since the MP4050 SOURCE pin is switching nodes, the copper area connected to SOURCE should be minimize to minimize EMI with the thermal constraints of the design. 6. Since MP4050 DRAIN pin is static node connecting to DC input, the copper area connected to DRAIN could be maximized to improve the heat sinking. Figure 12 shows a sample layout. Top Layer Bottom Layer Figure 12: PCB Layout Design Example Below is a design example following the application guidelines based on these specifications: Table 2: Design Example VIN 85Vac~265Vac VOUT 40V IOUT 115mA Figure 13 shows the detailed application schematic. This circuit is used for the typical performance and circuit waveforms. For more device applications, please refer to the related evaluation board datasheets. |
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