OPERATION

INVERTER/CHARGER MODE

UTILITY GRID

AC

AC

GENERATOR

INVERTER/ CHARGER

DC

AC

 

AC LOADS

 

BATTERY

IN BRIEF

The SW Series Inverter/Charger is capable of automatically transferring AC loads from the inverter to a utility grid or generator. Once transferred, the inverter can recharge the battery. The inverter/charger can transfer upon the availability of AC power (FLT mode), either at a specific time each day (using the GRID USAGE TIMER (18) menu heading), or upon a low battery condition (LBX mode).

TRANSFERRING UPON AVAILABILITY OF AC POWER

When AC power is supplied to the AC HOT IN 1 or AC HOT IN 2 input, the inverter automatically transfers from inverter mode to battery charger mode. Before transferring, the inverter verifies that both the AC input voltage and frequency are within tolerance. It then synchronizes waveforms and connects to the inverter’s AC output without interruption of power.

The FLT mode is the default mode (see the GRID USAGE menu item under the INVERTER SETUP (9) menu heading) and may be used with AC power supplied to either the AC HOT IN 1 or AC HOT IN 2 input. This is the proper mode for most utility connected applications or for use with a back-up generator that is being manually or automatically started.

The SLT mode is used only with AC power supplied to the AC HOT IN 1 input. The SLT mode is selected from the GRID USAGE menu item under the INVERTER SETUP (9) menu heading. In this mode, the only operational difference is that the battery charger will only be engaged for a single period of time each day, set by the BULK CHARGE TRIGGER TIMER (15) menu heading setting. This reduces the power consumption of the inverter over the period of a day. It is also used in applications where the slight noise of the inverter might be undesirable, such as at night. AC power continues to be passed through the inverter’s transfer relay while the charger is not engaged. If the AC source fails, the inverter will turn on automatically and power the connected AC loads. When utility power returns, the AC loads will be reconnected to the utility and the battery charger will complete a bulk charge cycle. Once this has been completed the battery charger will turn off, but the loads will remain connected to the utility.

TRANSFERRING BASED ON BATTERY VOLTAGE

The LBX mode is used only with AC power supplied to the AC HOT IN 1 input. The LBX mode is selected from the GRID USAGE menu item under the INVERTER SETUP (9) menu heading. In this mode, the decision to transfer to and from charger mode will be based upon the battery voltage. With LBX enabled, the SET LOW BATTERY CUT IN VDC setting and the SET LOW BATTERY TRANSFER VDC setting determine the DC transfer voltages. When the battery voltage reaches the LOW BATTERY TRANSFER VDC setting for more then 20 seconds, the AC loads are transferred from the inverter to the utility. If the battery voltage reaches the LOW BATTERY CUT IN VDC setting, the AC loads are transferred from the utility to the inverter. The low battery transfer system includes a 20 second delay so that large loads are less likely to cause a transfer to the utility grid during motor startup, etc.

2001 Xantrex Technology, Inc.

Telephone: 360/435-8826

SW Series Inverter/Charger

5916 - 195th Street N. E.

Fax: 360/435-2229

Part No. 2031-5

Arlington, WA 98223

www.traceengineering.com

Rev. C: February 2001

Page

69

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Image 77
Xantrex Technology SW Series owner manual INVERTER/CHARGER Mode, Utility Grid Generator INVERTER/ Charger AC Loads Battery

SW Series specifications

Xantrex Technology has established itself as a leader in innovative power solutions, and its SW Series inverters epitomizes this commitment to quality and efficiency. Designed for both standalone and grid-tied applications, the SW Series offers versatile power management for a range of residential and commercial needs.

At the heart of the SW Series is its advanced pure sine wave output, ensuring clean and reliable electricity suitable for sensitive electronics. This feature makes it an excellent choice for applications such as solar energy systems, where it provides high-quality power for a variety of devices, from household appliances to complex machinery.

One of the key characteristics of the SW Series is its modular design, which allows for easy installation and scalability. This modularity enables users to expand their power system as their energy needs grow, making it an ideal choice for both small and large installations. The inverters come equipped with a user-friendly interface, providing clear information on system performance, battery status, and more, ensuring that users can effectively monitor and manage their energy consumption.

The SW Series inverters also incorporate cutting-edge technology, such as the patented Power Factor Correction (PFC) feature, which optimizes energy efficiency by reducing harmonic distortion. This translates into less wasted electricity and lower energy costs, making it an environmentally friendly option for users looking to reduce their carbon footprint.

Another notable feature of the SW Series is its ability to operate in extreme conditions. Built with robust components and advanced thermal management systems, these inverters can withstand a wide range of temperatures and environmental challenges, ensuring reliable performance in various settings. This durability makes them suitable for off-grid applications, including remote cabins, RVs, and boats.

Furthermore, the SW Series supports a variety of battery types, including lithium-ion, AGM, and gel batteries, offering flexibility for users to choose the best energy storage solution for their needs. The sophisticated battery management system ensures optimal charging and discharging, prolonging the lifespan of the batteries and enhancing the overall efficiency of the power system.

In summary, Xantrex Technology's SW Series inverters stand out for their pure sine wave output, modular design, energy efficiency features, and robust performance in challenging conditions. With their versatility and advanced technology, they cater to the evolving needs of today’s power consumers, making them a compelling choice in the modern energy landscape.