• 0.5-30kVA Solar Inverter Wifi Power Inverter with Charger Fully Automatic AC Stabilized Power Supply System 1
  • 0.5-30kVA Solar Inverter Wifi Power Inverter with Charger Fully Automatic AC Stabilized Power Supply System 2
  • 0.5-30kVA Solar Inverter Wifi Power Inverter with Charger Fully Automatic AC Stabilized Power Supply System 3
0.5-30kVA Solar Inverter Wifi Power Inverter with Charger Fully Automatic AC Stabilized Power Supply

0.5-30kVA Solar Inverter Wifi Power Inverter with Charger Fully Automatic AC Stabilized Power Supply

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Loading Port:
China main port
Payment Terms:
TT or LC
Min Order Qty:
1 pc
Supply Capability:
1000 pc/month

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ZTY series high accuracy fully automatic AC stabilized Power Supply is a key series of our stabilizing products. It mainly consists of auto-transformer, servo motor, automatic control circuit. When the utility is not stable or the load fluctuates, the automatic control circuit modifies the control output according to the input voltage change of power supply, with driving the servo motor, and then the servo motor adjusting the carbon brush of auto-transformer to regulate the output voltage at its rating and remain stable.

   

Single Phase

VA Rating

0.5KVA

1KVA

2KVA

3KVA

5KVA

10KVA

15KVA

20KVA

30KVA

INPUT

Phase

Single Phase+N+GND

Voltage Range

160Vac-250Vac

OUTPUT

Voltage

220V

Voltage Precision

≤±3%

Frequency

50/60Hz

Over-Voltage Protection

Output Voltage 250V±5V

Low-Voltage Protection

Output Voltage 183V±5V

Efficiency

≥96%

OTHERS

Display Mode

LED / METER

Input/Output Device

Optional Plug; Socket / Terminal

Waveform Distortion

No affixation Waveform Distortion

Response Time

(±10% Varies) <1s

Insulation Resistance

≥2MΩ

Anti-Electricy Intension

Low frequency sine voltage 1500V take 1 minute no rout and camber phenomena

Ambient Temperature

0℃-40℃

Relative Humidity

≤95%

Working

Continue

Dimension(WxDxH)mm

150x247x144

150x247x200

150x285x260

175x360x305

220x485x430

330x370x612

530x400x732

Net Weight(kg)

4.3

4.8

8.2

9.5

15.2

31

53

59

91

Packing(WxDxH)mm

235x360x235

235x360x290

230x395x350

278x470x415

280x555x495

430x500x690

635x500x830

Gross Weight(kg)

4.8

5.3

8.8

10.1

15.9

32

56

61.3

94.5


MODEL

ZTY Three Phase

VA Rating

3KVA

6KVA

10KVA

15KVA

20KVA

30KVA

INPUT

Phase

Three Phase+N+GND

Voltage Range

Line Voltage 277Vac-433Vac

OUTPUT

Voltage

380V

Voltage Precision

≤±3%

Frequency

50/60Hz

Over-Voltage Protection

Output Voltage 250V±5V

Low-Voltage Protection

Output Voltage 183V±5V

Efficiency

≥96%

OTHERS

Display Model

LED / METER

Input/Output Device

Terminal

Waveform Distortion

No Affixation Waveform Distortion

Response Time

(±10% Varies) <1s

Insulation Resistance

≥2MΩ

Anti-Electricy Intension

Low Frequency Sine Voltage 1500V Take 1 minute No Rout and Camber phenomena

Ambient Temperature

0℃-40℃

Relative Humidity

≤95%

Working

Continue

Dimension(WxDxH)mm

200x480x395

330x350x702

330x380x752

530x400x732

Net Weight(kg)

14.5

35

37

51

58

95

Packing(WxDxH)mm

260x555x505

460x435x790

555x420x840

635x500x830

Gross Weight(kg)

16.8

37.6

40

54.2

61.6

105

·         Q. What is an UPS and What it is for ?

An uninterruptible power supply (UPS) is a device that allows your computer or telephone switch or critical equipement to keep running for at least a short time or longer time when the primary power source is lost. It also provides protection from power surges, spikes, brownouts, interference and other unwanted problems on the supported equipment.

·         Q. How long the UPS to run when power goes?

This can take 3 paths.
1.You can pick a UPS that is rated for pretty much the full VA you need so it will be running at 100% of capability and will thus last 'n' minutes.
2.You can pick a UPS that is rated at a much higher VA value than you really need so, for example, is running at 50% of capability and will thus last for longer than the UPS from option 1.
3You can use extra external battery packs to run for longer. If charging capability allows, the more and the bigger batteries you take with, the longer time UPS runs. 
or using a generator after about 6 hours, it will be more cost-effective, with a short runtime UPS to bridge the generator start-up gap.

Q: How do you connect a solar inverter to a data monitoring system?
To connect a solar inverter to a data monitoring system, you need to follow a few steps. First, ensure that your solar inverter is compatible with a data monitoring system. Next, connect the inverter to a local network, either wired or wireless, depending on the available options. Then, configure the inverter's settings to enable data transmission. Finally, install the required software or app provided by the data monitoring system and use the provided instructions to link the inverter to the monitoring system.
Q: How does a solar inverter affect the overall system cost?
A solar inverter can increase the overall system cost as it is a crucial component responsible for converting the DC electricity generated by solar panels into AC electricity for use in homes and businesses. The efficiency, capacity, and quality of the inverter can influence the system's performance and reliability. Higher-quality inverters with advanced features tend to be more expensive, but they can maximize energy production and improve system durability, potentially offsetting the initial cost through increased energy savings over time.
Q: Can a solar inverter be used in areas with unstable power grids?
Yes, a solar inverter can be used in areas with unstable power grids. Solar inverters are designed to convert the direct current (DC) produced by solar panels into alternating current (AC) that can be used to power homes or businesses. In areas with unstable power grids, the solar inverter can help stabilize the electricity supply by converting the solar energy into usable AC power, independent of the grid's stability. Additionally, some advanced solar inverters come with features like grid-tie functionality, battery storage, or grid support functions that further enhance their ability to adapt to unstable power grids.
Q: What is the maximum power capacity that a solar inverter can handle?
The maximum power capacity that a solar inverter can handle depends on its specific model and specifications. In general, solar inverters can handle power capacities ranging from a few hundred watts to several megawatts, catering to various residential, commercial, and utility-scale solar installations.
Q: Can a solar inverter be used in systems with different module tilts?
Yes, a solar inverter can be used in systems with different module tilts. Solar inverters are designed to convert the DC power generated by solar panels into AC power for use in the electrical grid or in the building. The module tilt refers to the angle at which the solar panels are installed, which can vary depending on factors like geographical location and specific installation requirements. Solar inverters are typically designed to be adaptable and can accommodate a wide range of module tilts, allowing for flexibility and optimization of solar energy generation.
Q: Can a solar inverter provide power during a blackout?
No, a solar inverter cannot provide power during a blackout.
Q: What is the role of a solar inverter in a microgrid system?
The role of a solar inverter in a microgrid system is to convert the direct current (DC) electricity generated by solar panels into alternating current (AC) electricity that can be used to power the various loads within the microgrid. It also manages the flow of electricity between the microgrid and the utility grid, allowing for bidirectional power flow and enabling the system to operate in both grid-connected and islanded modes. Additionally, the solar inverter ensures the stability and quality of the electricity supply, regulating voltage and frequency levels to match the requirements of the microgrid.
Q: How does a solar inverter affect the overall system efficiency at different temperatures?
A solar inverter can affect the overall system efficiency at different temperatures by adjusting its operations to optimize performance. At higher temperatures, the efficiency of the inverter may decrease due to increased internal losses and reduced power output. To mitigate this, modern inverters utilize advanced technologies such as maximum power point tracking (MPPT) algorithms to adapt to the changing temperature conditions. These algorithms adjust the operating parameters of the inverter to maximize energy production by maintaining the optimal voltage and current levels. By dynamically responding to temperature changes, a solar inverter can help maintain higher overall system efficiency across a range of temperatures.
Q: Are there any maintenance requirements for a solar inverter?
Yes, solar inverters require regular maintenance to ensure optimal performance and longevity. This typically includes cleaning the unit and its surroundings to prevent dust buildup, checking for any loose connections or wiring issues, inspecting for physical damage, and monitoring the inverter's performance through regular system checks. Additionally, firmware updates and software upgrades may be necessary to enhance efficiency and address any potential issues.
Q: What is the role of isolation in a solar inverter?
The role of isolation in a solar inverter is to provide safety and protection by electrically separating the DC input side (solar panels) from the AC output side (grid or load) to prevent any potential hazards such as electrical shocks, short circuits, or ground faults. It also helps in reducing noise interference and improving the overall performance and efficiency of the inverter.

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