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LEDD16 数据表(PDF) 5 Page - GAPTEC Electronic GmbH & Co. KG |
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LEDD16 数据表(HTML) 5 Page - GAPTEC Electronic GmbH & Co. KG |
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5 / 6 page ![]() GAPTEC-Electronic GmbH & Co. KG sales@gaptec-electronic.com – www.gaptec-electronic.com Page 5 of 6 LEDD16_24 – Rev. 2018-1.2 Specifications subject to change without notice. LEDD16_24 Series Constant current power LED driver - Wide Input - Non-Isolated & Regulated Output current adjustment by external DC control volta- Thermal feedback circuit In this application, the LED modules of each LED drivers should be independent from electrical connection to the others and input power - this is to prevent the damaging to LED drivers also to avoid the un-necessaried interference among each LED module driven by the LED driver. The selection of components for the thermal feedback circuit is not only dependent on the choice of R2 and R3, but also on the amount of heat sink area required to extract heat from the LEDs. To maximize the light output at high ambient or operating temperature conditions, the LEDs must have a sufficient thermal extraction path, otherwise the thermal control circuit will effect current drive reduction in non-optimal conditions. The thermal control threshold point is set by adjusting R2. For this design, three values (33k, 22k and 10k) were evaluated. These values were chosen to give break points at approximately 25°C, 40°C and 60°C. Note that the light output will not continually dim to zero - the thermal control is applying DC control to the ADJ pin and therefore has a dimming ratio from maximum Current of approxi- mately 5:1. Once the reduced DC level goes below the shutdown threshold of around 200mV, the LED drive current will fall to zero and the LEDs will be extinguished. The slope of the current re- duction is determined by the beta value of the thermistor. The larger the beta value, the sharper will be the resultant current control response. The slope of the current reduction is also affected by Q1‘s base emitter voltage (VBE) variation with temperature. |
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