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EM5201 Datasheet(PDF) 11 Page - Excelliance MOS Corp. |
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EM5201 Datasheet(HTML) 11 Page - Excelliance MOS Corp. |
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11 / 13 page ![]() 2018/09/28 A.8 11 EM5201 Functional Description VIN and VBIAS Voltage Range The MOSFET gate voltage in the EM5201 is driven by an internal charge pump. The output voltage of the charge pump is dependent on the voltage on VBIAS pin. Care must be taken to ensure a sufficient VBIAS is used to keep the desired output rising time when given the anticipated input voltage. For quickly output rising requirement that may be under 60usec, make sure VIN ≤ (VBIAS – 2V) is highly recommended. For example, in order to have VIN=3V, VBIAS must be 5V. The Ron of EM5201 will still be keep constant if VIN > (VBIAS – 2V) but it will exhibit slowly output rising time. See figure as below. ON/OFF Control EM5201 is enabled if the voltage of the Von pin is greater than logic high level and the VBIAS voltage has an adequate applied. If the voltage of the EN pin is less than logic low level, the device will be disabled. Input Capacitor CIN The EM5201 do not require an input capacitor. In order to limit the voltage drop on the input supply caused by transient inrush current, an input bypass capacitor is recommended. A 1uF ceramic capacitor should be placed as closed as possible to the VIN pin. Higher values capacitor can help to further reduce the voltage drop. Output Capacitor Co Due to the integrated body diode in the NMOS switch, the CIN greater than Co is highly recommended. A CIN to Co ratio of 10 to 1 is recommended for minimizing VIN drop caused by inrush during startup. It also helps to prevent parasitic inductance forces Vo below GND when switching off. A 0.1uF ceramic capacitor should be placed as closed as possible to the Vo pin. Thermal and Layout Consideration EM5201 is designed to maintain a constant output load current. Due to physical limitations of the chip layout and assembly of the device the maximum switch current is 10A. All copper traces for the VIN and Vo pin should be widely and short to carry the maximum continuous current and obtain the best effect. The input and output capacitor should be close to the device as possible to minimize the parasitic trace inductances and prevents the voltage drop when load transient. The maximum IC junction temperature should be restricted to 125 ℃ under normal operating conditions. To calculate the maximum allowable dissipation, PD(MAX) for a given output current and ambient temperature, used the following equation: JA A MAX J MAX D T T P ) ( ) ( Where: PD(MAX)=Maximum allowable power dissipation TJ(MAX)=Maximum allowable junction temperature (125 ℃ for the EM5201) TA=Ambient Temperature of the device ΘJA= Junction to air thermal impedance. This parameter is also dependent upon PCB layput. |
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