4.Operation and Charging

4.1Determine Charging Voltages

To determine the appropriate equalization (freshening) charge voltage and float charge voltage, multiply the number of batteries connected in series in the battery cabinet by the recommended charging voltage per unit.

For example:

A +/- 240 VDC cabinet containing 40 each of the UPS12-400MR batteries in series would use the following charging voltages:

Freshening/Equalization Charge Voltage = 20 x 14.4 VDC/unit average= +/- 288 VDC

Float Charge Voltage = 20 x (13.5 to 13.8 VDC/unit average) = +/- 270 to 276 VDC

Note: Some battery cabinets may contain more than one series string connected in parallel within the cabinet. The calculation for properly charging the battery cabinet should follow the procedure above, considering the number of batteries in a single series string.

4.2 Initial Charge

After the correct charging voltages have been calculated, follow these steps:

1.Adjust the charger/rectifier equalization and float voltage outputs to the appropriate level.

2.Place the charger/rectifier in equalization mode,

3.Close the disconnect switch/circuit breaker connection from the charger/rectifier to the battery cabinet(s) and start a 24-hour freshening charge at the equalization charge.

4.After a few minutes on charge, monitor the voltage across several of the individual batteries to assure they are charging at the proper value.

5.Following completion of the freshening charge, place the charger/rectifier in float charge mode.

6.After the battery cabinet has been on float for 1 to 24 hours, complete the operational check (Section 4-3).

4.3Operational Check

1.Measure and record the total system float voltage. Measure at the battery terminals.

2.Measure and record the system float current using a clamp-on ammeter.

3.Measure and record the float voltage of individual battery units.

4.Measure and record the temperature of several of the batteries. (Measure battery temperature with a digital thermometer by placing the surface thermocouple on the flat surface of the negative terminal—not the “L” connection surface. An infrared temperature monitor can also be used.)

5.Optional: Perform impedance and conductance tests on individual battery units. These tests require special equipment, but the data can be useful in trending the system over time or identifying suspect units during later periodic checks. It may be necessary to disconnect the battery system from the charger/load during these checks.

6.If the acceptance test is being performed, proceed to Section 4-4. If the acceptance test is not being performed, reinstall the cabinet’s access panels. The battery cabinet is now in operation.

4.4Acceptance Test (Optional)

1.Remove the battery cabinet’s access panels to access internal components. Use a digital voltmeter when voltage measurements are required.

2.Determine the discharge rate (e.g. 15 seconds, 5 minutes, 15 minutes) at which the battery is to be tested.

3.Select a battery from the center of the battery cabinet and measure the temperature at the flat surface of the negative terminal.

If the temperature is below 74° F or above 80° F, the test load should be temperature compensated accordingly.

4.Review the final check data and assure that all unit float voltages are acceptable.

5.During the acceptance discharge test, monitor the cabinet system output voltage at the cabinet, the output current and discharge time as a back-up to monitoring at the critical load.

6.Run the test in accordance with the IEEE standard.

7.Reinstall the cabinet’s access panels. The battery cabinet is now in operation.

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Tripp Lite Extended-Run Single-Phase Battery Cabinet Operation and Charging, Determine Charging Voltages, Initial Charge

Extended-Run Single-Phase Battery Cabinet specifications

The Tripp Lite Extended-Run Single-Phase Battery Cabinet serves as an essential backup power solution, designed for environments where prolonged uptime is critical. This compact and efficient battery cabinet is tailored primarily for use with Tripp Lite's SmartPro line of UPS systems, delivering reliable power protection and extended runtime capabilities for critical equipment.

One of the main features of the Tripp Lite Extended-Run Battery Cabinet is its impressive scalability. This unit is designed to expand the runtime of UPS systems significantly, enabling users to keep their systems operational during extended power outages. With the ability to house additional batteries, it allows organizations to customize their backup power based on specific needs. The cabinet can accommodate multiple battery packs, providing flexibility and ease of use.

In terms of design, the battery cabinet is engineered for optimal performance. Its robust construction ensures durability and the ability to withstand the rigors of various industrial settings. The cabinet also features a compact footprint, enabling seamless integration into server rooms, data centers, and other critical environments without consuming excessive space.

Advanced technologies are evident in the cabinet's smart charging capabilities. The integrated management features enable precise monitoring and control, ensuring that batteries are efficiently charged and maintained. The intelligent battery management system maximizes battery life while minimizing maintenance requirements, making it suitable for organizations that rely on continuous operation.

Moreover, the Tripp Lite Extended-Run Battery Cabinet is equipped with a user-friendly interface, allowing for straightforward installation and configuration. Visual indicators provide clear status updates, ensuring users can monitor battery health and performance with ease. The seamless communication with the UPS systems further enhances the overall user experience, providing real-time updates and alerts.

In conclusion, the Tripp Lite Extended-Run Single-Phase Battery Cabinet represents a dependable and scalable power solution for businesses that demand lasting performance. Its combination of advanced technology, rugged design, and user-friendly features makes it an ideal choice for safeguarding critical equipment against power interruptions. This battery cabinet not only enhances the reliability of UPS systems but also provides peace of mind knowing that essential operations can continue uninterrupted during extended outages.