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ATLS25A219GUI Datasheet(PDF) 6 Page - Analog Technologies, Inc.

Part # ATLS25A219GUI
Description  32V 25A Constant Current Laser Driver
PDF  14 Pages
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Manufacturer  ANALOGTECHNOLOGIES [Analog Technologies, Inc.]
Direct Link  https://www.analogtechnologies.com/
Logo ANALOGTECHNOLOGIES - Analog Technologies, Inc.

ATLS25A219GUI Datasheet(HTML) 6 Page - Analog Technologies, Inc.

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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 1/24/2022
Email: staff@analogti.com/sales@analogti.com
6
Analog Technologies
ATLS25A219GUI
32V 25A Constant Current Laser Driver
OPERATION PRINCIPLE
The block diagram of the driver is shown in Figure 6. The
signal from pin 14, SBDN, is sent to a level detector circuit.
As shown in Figure 7, upon detecting signal level between
0V to 2V, the shutdown output is activated; it shuts down the
whole laser driver and drives the laser driver into Shutdown
Mode; upon detecting the level to be between 2.2V and 2.4V,
the standby signal is activated, it put the controller into
Standby Mode; when the signal is between 2.7V and above,
the controller is driven to Operation Mode.
Figure 7. Input Control
At pin 14, TMPO, its value comes from a temperature sensor.
The voltage at this pin reflects the internal temperature of this
driver. The relationship between the output voltage and the
temperature is shown in Figure 8.
There is a temperature protection circuit, upon detecting the
temperature to be >120
°C, it will force the laser driver into
Standby Mode. The laser driver reinitiates the power up
sequence when the junction temperature drops below 110°C.
The voltage reference circuit provides internal voltage
reference for the driver, its output is taken out after a noise
removal circuit at 4VR port, pin 9.
At pin 12 and pin 11, there are 2 ports for controlling the
output current: LISL and LISH. The former sets the output
current when PCN, Pulse Control, pin 13, is at low level, 0V
to 0.4V; the latter sets the output current when PCN pin is at
high level, 1.4V to 15V.
On PCN, pin 13, there is a 10M resistor tied to 5V. Therefore, if
leaving this pin open, it is set to 5V, a high logic level, thus,
LISH is in control. There is a 20k
Ω resistor in series with a diode,
connected between PCN pin and the 5V internal voltage. When
the PCN pin voltage is above 5V, the 20k
Ω resistor pulls down
the current on PCN pin. The circuit is shown at Figure 6. The
waveforms of LISH, LISL, PCN and LIO are shown in Figure 9.
Both LISH and LISL pin set the output current without any
offset voltage. The relationship between the voltage and the
output current is:
IOUT = VLISH/4.096×15 (A) = 3.662×VLISH (A), or
IOUT = VLISL/4.096×15(A) = 3.662×VLISH (A);
VLISH = IOUT (A)/15×4.096= 0.273 × IOUT (A), or
VLISL = IOUT (A)/15×4.096= 0.273× IOUT (A),
Where IOUT is the output current of the laser driver, VLISH or
VLISL represents the voltage on the LISH or LISL pin
respectively, in volt.
The LIO port, pin 15, outputs an analog voltage that is
proportional to the actual output current. When the output
current is 0A, the LIO voltage is 0.1V; when output current is
15A, the LIO voltage is 2.5V. The relationship is:
VLIO = IOUT (A)/15×4.096 = 0.273×IOUT (A);
IOUT = VLISL /4.096×15 (A) = 3.662×VLISH (A);
VLIO is the voltage on the LIO pin.
The waveform of LIO vs. LISH, LISL and PCN is shown in
Figure 12.
The output stage is designed to achieve low noise, high
efficiency, and relatively high modulation speed. It has an over
current protection circuit. There is a soft start circuit which
increases the output current slowly at the start up time and shuts
down the current quickly.
The LPGD pin indicates the control loop status. When this pin
goes high, >2V, the control loop is working properly, i.e., the
output current equals to the desired value, LISH or LISL = LIO
voltage; when this pin goes low, <0.3V, the laser driver is not
working properly, there might be a short or open circuit at the
output, or the laser driver is protected by the over temperature
protection circuit.



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