Showing posts with label discharge. Show all posts
Showing posts with label discharge. Show all posts

Solar Battery Protector Prevents excessive Discharge

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This circuit prevents the battery in a solar lighting system from being excessively discharged. Its for small systems with less than 100W of lighting, such as several fluorescent lights, although with a higher rated Mosfet at the output, it could switch larger loads. The circuit has two comparators based on an LM393 dual op amp. One monitors the ambient light so that lamps cannot be turned on during the day. The second monitors the battery voltage, to prevent it from being excessively discharged. IC1b monitors the ambient light by virtue of the light dependent resistor connected to its non-inverting input. When exposed to light, the resistance of the LDR is low and so the output at pin 7 is low.

Circuit diagram:
Solar battery protector prevents excessive discharge circuit schematic
Solar Battery Protector Circuit Diagram

IC1a monitors the battery voltage via a voltage divider connected to its non-inverting input. Its inverting input is connected to a reference voltage provided by ZD1. Trimpot VR1 is set so that when the battery is charged, the output at pin 1 is high and so Mosfet Q1 turns on to operate the lights. The two comparator outputs are connected together in OR gate fashion, which is permissible because they are open-collector outputs. Therefore, if either comparator output is low (ie, the internal output transistor is on) then the Mosfet (Q1) is prevented from turning on. In practice, VR1 would be set to turn off the Mosfet if the battery voltage falls below 12V. The suggested LDR is a NORP12, a weather resistant type available from Farnell Electronic Components Pty Ltd.
Author: Michael Moore - Copyright: Silicon Chip Electronics
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Deep Discharge Protection for Rechargeable Cells

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Deep Discharge Protection for Rechargeable CellsWith this circuit built into the power supply of a battery powered device, it will prevent the rechargeable cells from being completely drained when you forget to turn the equipment off. When the battery voltage drops below a preset limit (9.5 V in this example) the circuit will automatically disconnect the battery. Power is re-connected when the voltage rises above an upper threshold level (10.5 V here), this will typically occur after the equipment has been plugged into its recharging station.
The circuit is designed to use as little power as possible.The ICL7665 from Intersil forms the heart of the circuit. This IC contains two comparators together with a voltage reference and consumes just 3 μA. The circuit only uses one of the comparators, the values of resistors R1 to R3 shown in the diagram will cause the circuit to switch at the levels mentioned above. The comparator output switches the P-channel MOSFET T1 which in turn controls power to the load RLOAD.
Circuit diagram:
Deep Discharge circuit
The switching threshold levels and hysteresis can be changed by using different values of resistor for R1 to R3. Increasing the value of R3 to 300 KΩ will raise the upper thresh-old level to 12.5 V. The ICL7665 data sheet gives examples of suitable resistor values that can be used here.  The PCB layout uses SMD components so the finished circuit takes up very little space  when installed in the equipment.  A fine-tipped soldering iron should be adequate to mount the components and there shouldn’t be any problems provided you do not choose to use very small resistor packages. Once the circuit has been tested the entire PCB can be protected by encapsu-lating it with a short length of heat shrink sleeving.
Data sheet IRL7665:  www.intersil.com/data/fn/fn3182.pdf
Data sheet IRLML6402:  www.irf.com/product-info/datasheets/data/irlml6402.pdf
Author : Tilman Küpper Copyright : elektor elector  -  7-8/2007
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