Comparison nJoy Echo Pro 1000 1000 VA vs NetPRO 11 1K 1000 VA
Add to comparison | ![]() | ![]() |
|---|---|---|
| nJoy Echo Pro 1000 1000 VA | NetPRO 11 1K 1000 VA | |
| Outdated Product | Outdated Product | |
| TOP sellers | ||
| Type | inverter (online) | inverter (online) |
| Form factor | standard (Tower) | standard (Tower) |
| Full load operating time | 1 min | |
| Half load operating time | 6 min | |
Input | ||
| Input voltage | 1 phase (230V) | 1 phase (230V) |
| Input voltage range | 80 – 300 В | 110 – 288 В |
| Max. current | 5 А | |
| Bypass (direct connection) | auto | manual/automatic |
Output | ||
| Output voltage | 1 phase (230V) | 1 phase (230V) |
| Peak output power | 1000 VA | 1000 VA |
| Rated output power | 800 W | 900 W |
| Output voltage accuracy | 5 % | 5.5 % |
| Efficiency | 96 % | 94 % |
| Output waveform | pure sine wave (PSW) | pure sine wave (PSW) |
| Output frequency | 50/60 Hz | 50/60 Hz |
| Redundant sockets | 3 | 2 |
| Socket type | type F (Schuko) | type F (Schuko) |
Battery | ||
| Battery(ies) connection to UPS | 36 В | |
| Total battery capacity | 7 Ah | 7 Ah |
| Number of batteries | 2 | 3 |
| Battery type | AGM (Absorbent Glass Mat) | |
| Full charge time | 240 min | 480 min |
| External battery connection | ||
Protection | ||
| Protection | short circuit protection overload protection noise filtering emergency cut-off socket sound alarm | short circuit protection overload protection noise filtering data line protection emergency cut-off socket sound alarm |
| Fuse | auto | auto |
| Surge protection | 220 J | |
| Control interfaces | RS-232 USB type B SmartSlot | RS-232 USB type B SmartSlot |
General | ||
| Screen | ||
| Operating temperature | 0 – 40 °C | 0 – 40 °C |
| Noise level | 40 dB | 47 dB |
| Dimensions (HxWxD) | 190x140x327 mm | 228x144x353 mm |
| Weight | 9.13 kg | 12 kg |
| Added to E-Catalog | february 2021 | december 2020 |
Compare nJoy Echo Pro 1000 and NetPRO 11 1K
You may be interested in
My comparisons
nJoy Echo Pro 1000 often compared
NetPRO 11 1K often compared
Glossary
Full load operating time
UPS continuous operation time from a fully charged battery when connected to a load with a power equal to the UPS output power (maximum or effective, depending on the type of load, see the relevant paragraphs for details). For a UPS designed to work with a home or office PC, a time of about 10-15 minutes is considered sufficient, this is enough to save data and complete work. To power servers, it is worth using devices with an operating time of 20 minutes or more.
Half load operating time
UPS continuous operation time from a fully charged battery when connected to a load with a power equal to half the output power of the UPS (maximum or effective, depending on the type of load, see below for details). The operating time with such a load is much longer than for a full load, and even in the simplest models it can reach 20-30 minutes.
Input voltage range
In this case, the input voltage range is implied, in which the UPS is able to supply a stable voltage to the load only due to its own regulators, without switching to the battery. For redundant UPSs (see "Type") this range is quite small, approximately 190 to 260 V; for interactive and especially inverter ones, it is much wider. Some UPS models allow you to manually set the input voltage range.
Max. current
The maximum current drawn by the UPS. In fact, the current reaches its maximum value only when the UPS is operating from the mains with maximum load power and a completely discharged battery. However, when calculating the load on the power grid, this parameter should be taken into account.
Bypass (direct connection)
Bypass(by-pass) means such a mode of operation of the UPS, in which power is supplied to the load directly from an external source — the mains, diesel generator, etc. — practically without processing in the UPS itself. This mode can be activated either automatically or manually.
— The automatic bypass is a kind of safety measure. It turns on when the UPS in normal mode cannot supply power to the load — for example, when the UPS is overloaded due to a sharp increase in the power consumption of the load.
— Manual bypass allows you to enable this mode at the request of the user, regardless of the operating parameters. This may be necessary, for example, to hot-swap a battery (see below for details) or to start equipment that has a starting capacity greater than that of the UPS. Technically, it can also play the role of a security measure, but automatic systems are more reliable in this sense.
Some UPSs provide both options for enabling the bypass.
— The automatic bypass is a kind of safety measure. It turns on when the UPS in normal mode cannot supply power to the load — for example, when the UPS is overloaded due to a sharp increase in the power consumption of the load.
— Manual bypass allows you to enable this mode at the request of the user, regardless of the operating parameters. This may be necessary, for example, to hot-swap a battery (see below for details) or to start equipment that has a starting capacity greater than that of the UPS. Technically, it can also play the role of a security measure, but automatic systems are more reliable in this sense.
Some UPSs provide both options for enabling the bypass.
Rated output power
The effective output power of the UPS is, in fact, the maximum active power of the load that can be connected to the device.
Active power is consumed directly for the operation of the device; it is expressed in watts. In addition to it, most AC devices also consume reactive power, which is "wasted" (relatively speaking) is spent by coils and capacitors. Apparent power (denoted in volt-amperes) is precisely the sum of active and reactive power; it is this characteristic that should be used in accurate electrical calculations. See "Maximum output power" for details; here we note that when selecting a UPS for a relatively simple application, it is quite possible to use only effective power. This is at least easier than converting the watts claimed in the characteristics of the connected devices into full power volt-amps.
The most modest modern "uninterruptibles" give out less than 500 watts. 501 – 1000 W can be considered an average value, 1.1 – 2 kW is above average, and in the most powerful models this figure exceeds 2 kW and can reach very impressive values (up to 1000 kW or more in some industrial class UPS).
Active power is consumed directly for the operation of the device; it is expressed in watts. In addition to it, most AC devices also consume reactive power, which is "wasted" (relatively speaking) is spent by coils and capacitors. Apparent power (denoted in volt-amperes) is precisely the sum of active and reactive power; it is this characteristic that should be used in accurate electrical calculations. See "Maximum output power" for details; here we note that when selecting a UPS for a relatively simple application, it is quite possible to use only effective power. This is at least easier than converting the watts claimed in the characteristics of the connected devices into full power volt-amps.
The most modest modern "uninterruptibles" give out less than 500 watts. 501 – 1000 W can be considered an average value, 1.1 – 2 kW is above average, and in the most powerful models this figure exceeds 2 kW and can reach very impressive values (up to 1000 kW or more in some industrial class UPS).
Output voltage accuracy
This parameter characterizes the degree of difference between the AC voltage at the output of the UPS and the perfect voltage, the graph of which has the shape of a regular sinusoid. The perfect voltage is so named because it is the most uniform and creates the least unnecessary load on the connected devices. Thus, the distortion of the output voltage is one of the most important parameters that determine the quality of the power received by the load. A distortion level of 0% means that the UPS produces a perfect sine wave, up to 5% — slight sine wave distortion, up to 18% — strong distortion, from 18% to 40% — a trapezoidal signal, more than 40% — a square wave.
Efficiency
Efficiency (coefficient of performance) in the case of a UPS is the ratio of its output power to the power consumed from the network. This is one of the main parameters that determine the overall efficiency of the device: the higher the efficiency, the less energy the UPS wastes (due to heating parts, electromagnetic radiation, etc.). In modern models, the efficiency value can reach 99%.
Redundant sockets
The number of outlets connected to the power reserve(battery) provided in the design of the UPS. In order for the UPS to fulfill its main role (providing a backup power in case of power outages), the corresponding electrical appliances must be connected to these outlets. The sockets have a standard shape and are compatible with the vast majority of popular 230 V plugs.
At a minimum, the UPS has 1 or 2 outlets and, in more advanced ones, there may be 3 or more.
At a minimum, the UPS has 1 or 2 outlets and, in more advanced ones, there may be 3 or more.









