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SABMB2 数据表(PDF) 3 Page - Advanced Linear Devices |
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SABMB2 数据表(HTML) 3 Page - Advanced Linear Devices |
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3 / 4 page ![]() SABMB2/SABMB2XX Advanced Linear Devices, Inc. 3 of 4 already charged to over 90% of its max. rated voltage. The trickle charging of supercapacitors with energy harvesting techniques tends to work well with SAB MOSFETs as charge balancing devices, as it is less likely to have high transient energy spurts resulting in excessive voltage or current excursions. If an energy harvesting source only provides a few µA of current, the power budget does not allow wasting any of this current on capacitor leakage currents and power dissipation of resistor or operational amplifier based charge-balancing circuits. It may also be important to reduce long term leakage currents, as energy harvesting charging at low levels may take up to many days. In summary, in order for an energy harvesting application to be successful, the input energy harvested must exceed all the energy required due to the leakages of the supercapacitors and the charge- balancing circuits, plus any load requirements. With their unique balancing characteristics and near-zero charge loss, SAB MOSFETs are ideal devices for use in supercapacitor charge- balancing in energy harvesting applications. BATTERY POWERED APPLICATIONS Many battery powered circuits requiring a supercapacitor to boost power output can benefit from using SAB MOSFETs for supercapacitor balancing. The additional power burn by using SAB MOSFETs for supercapacitor stack balancing can actually be negative, as adding SAB MOSFETs can save supercapacitor leakage current and associated power dissipation by lowering the operating bias voltage of the leakier supercapacitor. Applications that depend on long life battery usage must take into account the supercapacitor leakage current and balancing circuit power burn because the currents involved are steady state DC currents that are continuous throughout the lifetime of the application and its battery life. The average added power dissipation with the addition of the SABMB2 board is zero, provided the selection of the operating voltages and SAB MOSFETs are appropriate for the leakage currents of the supercapacitors specified. CONNECTION TO OTHER SABMBXX PCBs The SABMB2 is compatible with other SABMBXX boards and is designed to be used along with other SABMBXX boards connected in series to achieve balancing the corresponding number of supercapacitors installed in a series stack. For example, five supercapacitors in series can be balanced with one SABMB2 PCB and one SABMB16 PCB connected in series. For more information on the CHARACTERISTICS OF SUPERCAPACITOR AUTO BALANCING (SABTM) MOSFETS, please refer to the following documents: * ALD8100XX/ALD9100XX FAMILY of SUPERCAPACITOR AUTO BALANCING (SABTM) MOSFET ARRAYS * Individual datasheet for chosen SAB MOSFET. CAUTION: Users must limit the voltage across any ALD9100XX chip to 15.0V max. SABMB2 PCB CONNECTION TO SUPERCAPACITORS C1, C2 * Magnified, not to scale U1 V- A A B B C C V+ SABMB2 V+ V- TO NEXT BOARD V+ C1 C2 VC VB VA U1 V- A A B B C C V+ SABMB2 V+ TO NEXT BOARD V- V- TO NEXT BOARD V+ C1 C2 VC VB VA U1 V A A B B C C V+ SABMB2 V+ TO NEXT BOARD V- C1 C2 VC VB VA |
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