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ATLS500MA201D датащи(PDF) 4 Page - Analog Technologies, Inc. |
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ATLS500MA201D датащи(HTML) 4 Page - Analog Technologies, Inc. |
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4 / 8 page ![]() 1161 Ringwood Ct, #110, San Jose, CA 95131, U. S. A. Tel.: (408) 748-9100, Fax: (408) 770-9187 www.analogtechnologies.com Copyrights 2000-2022, Analog Technologies, Inc. All Rights Reserved. Updated on 1/18/2022 Email: staff@analogti.com/sales@analogti.com 4 Analog Technologies ATLS500MA201D Constant Current Laser Driver Figure 4.1 and 4.2 shows a typical stand-alone application circuit. In Figure 4.1, the switch S1 is external shut down switch, which can turn on and off the driver with the SDN pin high and lower respectively, at the internal chip control input: >1.4V = enable, <0.95V = shut down, normal threshold voltage = 1.2V. The switch S1 can also be an electronic switch, such as an I/O pin of a micro-driver, with an either open drain or push/pull output. See Figure 5. If not using a switch (S1) to control the laser, leave the SDN pin unconnected. In Figure 4.1, the LED D1 is used to indicating laser diode status. When LDGD pin is high, >2V, the laser diode control loop is working properly. When LDGD pin is low, <0.3V, the laser diode is bad, or there is a short or open circuit at the laser diode. The LDGD pin can also be connected to a digital input pin of a micro-driver, when software/firmware is utilized in the system. See Figure 5. Figure 5 shows a typical micro-processor-based application circuit. To ADC & DAC To ADC To ADC To micro-controller To signal GND To power GND +5V LIO 6 VPS 12 PGND 10 LIGD 8 LDA 9 GND 3 2.5VR 4 LIS 5 PGND 11 GND 7 LDGD 2 SDN 1 Laser Driver To DAC To signal GND To micro-controller A K Laser diode D2 Figure 5. A Typical Micro-processor-based Application In Figure 4.1, the adjustable resistor W1 is used to setting the output current. Setting LIS from 0V to 2.5V will set the laser current from 0A to 500mA linearly. The laser diode D2 is connected between LDA and LDC. It is worth mentioning that the power supply return terminal should be connected to the pin 11 PGND and the cathode of the laser diode should be connected to the pin 10 LDC. These 2 nodes should not be connected together externally and they are connected together internally already by the driver. Turning the Driver On and Off The driver can be turned on and off by setting the SDN pin high and lower respectively. It is recommended to turn the driver on by this sequence: To turn on: turn on the power by providing the power supply voltage to the driver, turn on the driver by releasing the SDN pin. To turn off: turn off the driver by lowering the voltage of SDN pin, turn off the power by stopping the voltage supply on the VPS pin. When not controlling by the SDN pin: leave it unconnected and turn on and off the driver by the power supply. Adjusting the Output Current The output current is set by adjusting W1, which sets input voltages of LIS, pin 5. See Figure 4.1. The output current will be: IOUT (A) = 0.5 (A) × VLIS (V) /2.5 (V). LIS can be configured by using a DAC, to replace the W1 in Figure 4.1. Make sure that the DAC has output low noise, or, if no modulation is needed, an RC low pass filtered by be inserted between the DAC and the LIS pin. See Figure 5. The LIO can still be used to monitor the output current when the LIS is adjusted. 0V to 2.5V indicates the laser current of from 0A to 500mA linearly. Monitoring the Output Current The output current of the driver can be monitored by measuring the voltage on the LIO pin. This feature is very useful for micro-driver based system where the ADC is available and monitoring the current in real time is required. This pin provides a very low noise voltage signal which is proportional to the output current: VLIO (V) = 2.5 (V) × IOUT (A)/0.5 (A). For example, when the output signal equals to 2.5V, the output current is 500mA. LIO can be used to drive an ADC directly, and also be measured by a multimeter during debugging process. Figure 6 shows the relationship between Pin VPS and LDA. LDC |
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