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Comparison Cooper&Hunter Alpha NG CH-S09FTXE2-NG 25 m² vs Cooper&Hunter Alpha NG CH-S09FTXE-NG 26 m²

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Cooper&Hunter Alpha NG CH-S09FTXE2-NG 25 m²
Cooper&Hunter Alpha NG CH-S09FTXE-NG 26 m²
Cooper&Hunter Alpha NG CH-S09FTXE2-NG 25 m²Cooper&Hunter Alpha NG CH-S09FTXE-NG 26 m²
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Double Self-clean technology for self-cleaning of dust, fungi, viruses and bacteria by instant freezing and sudden heating of the heat exchanger surface. Filtration system CH 7-SKY of 7 filters for complex air purification.
Typesplit systemsplit system
Installationwallwall
Nominal capacity BTU90009000
In box
indoor unit
outdoor unit
indoor unit
outdoor unit
Performance
Operating modescooling/heating/dehumidification/ventilationcooling/heating/dehumidification/ventilation
Recommended room area25 m²26 m²
Power consumption (cooling/heating)720/710 W720/721 W
Cooling capacity2600 W2600 W
Heating capacity2800 W2800 W
Air flow560 m³/h560 m³/h
Dehumidification0.8 L/h0.8 L/h
Noise level (max/min)36/23 dB36/23 dB
Noise level (outdoor unit)49
Efficiency
Cooling EER3.62
Heating COP3.93
Seasonal cooling SEER6.16.1
Seasonal heating SCOP44.6
Energy efficiency EER (cooling)A
Energy efficiency COP (heating)A
Energy efficiency SEER (cooling)A++A++
Energy efficiency SCOP (heating)A+A++
Features
Functions
inverter
automode
timer
night mode
auto restart
ionizer /CH SMART-ION/
emergency heating /+8ºС/
self-cleaning
self-diagnosis
control via smartphone
I Feel (remote with temperature sensor)
inverter
automode
timer
night mode
auto restart
 
emergency heating
 
self-diagnosis
control via smartphone
I Feel (remote with temperature sensor)
Specs
Displayhiddenhidden
Refrigerant typeR32R32
Maximum height difference between units10 m10 m
Maximum pipe length15 m19 m
Min. T for cooling mode-15 °C-15 °C
Maximum T for cooling mode48 °C48 °C
Min. T for heating mode-15 °C-15 °C
Filters
plasma (electrostatic)
catechin
 
 
anti-allergic /anti-mite filter/
formaldehyde
with vitamin C
with silver ions
chitinous
plasma (electrostatic)
catechin
antibacterial
antifungal
 
formaldehyde
with vitamin C
 
 
General specs
Indoor unit dimensions (WxHxD)790x275x200 mm790x275x200 mm
Dimensions of window/outdoor unit (WxHxD)782x540x320 mm776x540x320 mm
Indoor unit weight9 kg9 kg
Outdoor unit weight29.5 kg29.5 kg
Color
Added to E-Catalogmay 2023may 2018

Recommended room area

The area of the room recommended for using the air conditioner in the main mode is for cooling.

Most often, this parameter is indicated by a simplified formula: about 100 W of effective air conditioner power is required per 1 m2 of room area. Thus, for example, for a model with a cooling capacity of 2200 W, the recommended area will be 2200/100=22 m2. However, these results are relevant only for standard conditions in residential and office premises: ceiling height of about 2.5-3 m, no strong heat gain, etc. For more specific situations, there are more detailed calculation formulas, that can be found in special sources. Anyway, choosing an air conditioner according to the recommended area, it's ok to take a margin of at least 15-20%: this will give an additional guarantee that the device will be effective.

The recommended area up to 15 m2 for a modern air conditioner is considered very low; such units are designed to serve single rooms of a small area. For an average living room like a bedroom or living room, a 20 m2 or even 25 m2 model is better suited. Models of 30 m2 and above are already intended for at least studio apartments, and more often for office and industrial premises. And in the most powerful modern units, the recommended area can be 150 – 175 m2 or even more.

Note that the same general formula is used for the heating mode — “100 W per 1 m2”. At the same time, the effective power of most air conditioners in this mode is noticeably higher than in the cooling mode. So this item can also be used to select a unit with a heating function: an air conditioner capable of cooling a room of a certain area is almost guaranteed to be able to heat it (taking into account the relevant restrictions on the use — see "Operating modes").

Power consumption (cooling/heating)

Power consumption of the air conditioner in cooling and heating mode; for models without a heating mode, only one number is given. This parameter should not be confused with the effective capacity of the air conditioner. Effective capacity is the amount of heat that the unit can "pump" into the environment or the room. This item also indicates the amount of electricity consumed by the device from the network.

In all air conditioners, the power consumption is several times lower than the effective capacity. It is due to the peculiarities of the operation of such units. At the same time, devices with the same efficiency may differ in power consumption. In such cases, the more economical models usually cost more, but with continued use, the difference can quickly pay off with less electricity consumption.

Also, two points related to electrical engineering depend on this nuance. Firstly, power consumption affects power requirements: models up to 3 – 3.5 kW can be connected to a regular outlet, while higher power consumption requires a three-phase connection (see below). Secondly, the power consumption is needed to calculate the load on the mains and the necessary parameters of additional equipment: stabilizers, emergency generators, uninterruptible power supplies, etc.

Noise level (outdoor unit)

The maximum noise level in decibels (dB) produced by the outdoor (outdoor) air conditioner unit during normal operation.

In household split systems, the noise level from the external unit is usually in the range from 40 to 55 dB. The lower this indicator, the quieter the unit operates and the more comfortable it is to use. Sanitary standards require the noise level for residential buildings from permanent sources to be no higher than 40 dB during the day and 30 dB at night, and in offices background noise of up to 60 dB is completely acceptable. The easiest way to estimate specific noise levels is using comparative tables. So, 40 dB is the level of a quiet conversation or TV at medium volume, 50 dB is approximately the normal tone of human speech, and 60 dB is the level of a loud voice. More detailed data can be found in special sources.

It is important to note that indoors the background noise level from the outdoor unit will be significantly less than outdoors. However, if the noise does not bother you when the air conditioner is running, this does not mean that it does not bother your neighbors. With open windows, the external unit can become a fairly strong source of noise. Therefore, for apartment housing stock it is advisable to give preference to low-noise models of climate control equipment.

Cooling EER

Cooling factor EER provided by the air conditioner. It is calculated as the ratio of the useful operating power of the air conditioner in cooling mode to the electricity consumption. For example, a device that delivers 6 kW of operating power in cooling mode and consumes 2 kW will have an EER 6/2 = 3.

The higher this indicator, the more economical the air conditioner is and the higher its cooling energy efficiency class (see below). Each class has its clear requirements for EER.

It is worth noting that this indicator is considered not very reliable, and in the European Union another coefficient has been introduced that is closer to practice — SEER. See Energy efficiency SEER (cooling) for more details.

Heating COP

The heating coefficient COP provided by the air conditioner. It is calculated as the ratio of the heat output of the air conditioner in heating mode to the electricity consumption. For example, if a device consumes 2 kW and produces 5 kW of thermal power, then the COP will be 5/2 = 2.5.

The higher this indicator, the more economical the air conditioner is and the higher its energy efficiency class when heating (see below). Each class has its own clear COP requirements.

Note that COP values are usually higher than the values of another important coefficient — EER (see above). It is due to the technical features of the air conditioners.

It is also worth mentioning that since 2013, a more advanced and closer-to-practice coefficient, SCOP, has been put into use in Europe. See "Energy efficiency SCOP (heating)" for more details.

Seasonal heating SCOP

Seasonal heating coefficient SCOP provided by the air conditioner.

Like the COP (see above), this parameter describes the overall efficiency of the air conditioner in heating operation and is calculated by the formula: thermal (useful) power divided by electricity consumption. The higher the coefficient, the more efficient the device, respectively. And the difference between COP and SCOP is that COP is measured under strictly standard conditions (outside temperature +7 °C, full workload), and SCOP takes into account seasonal temperature fluctuations (for Europe), changes in air conditioner operating modes, the presence of an inverter and some other options. Thanks to this, SCOP is closer to real indicators, and since 2013 this coefficient has been taken as the main one in the territory of the European Union. However, this parameter is also used for air conditioners supplied to other countries with a similar climate.

Energy efficiency EER (cooling)

The general energy efficiency class that the air conditioner complies with in cooling mode.

This parameter is indicated by letters from A (highest efficiency) and beyond. It is directly related to the value of the EER factor (see "Cooling EER"): each energy efficiency class corresponds to a certain range of factors (for example, B — from 3.0 to 3.2). Specific coefficient values for each class can be found in special tables; here we note that more efficient air conditioners are more expensive, but this difference can pay off due to less electricity consumption.

Energy efficiency COP (heating)

The general energy efficiency class that the air conditioner corresponds to when operating in heating.

This parameter is indicated by letters from A (highest efficiency) and beyond. It is directly related to the value of the COP coefficient (see "Heating COP"): each energy efficiency class corresponds to a certain range of coefficients (for example, C — from 3.2 to 3.4). Specific coefficient values for each class can be found in special tables; here we note that more efficient air conditioners are more expensive, but this difference can pay off due to less electricity consumption.

Energy efficiency SCOP (heating)

The seasonal energy efficiency class that the air conditioner complies with when operating for heating. Initially, this parameter was designated in letters from A(the most economical indicator) to G (the most expensive); however, more efficient classes than A appeared later — A+, A++ and A+++(the more pluses, the higher the energy efficiency).

This indicator is directly related to the value of the SCOP coefficient. For more information about this coefficient and how it differs from the COP, see "Seasonal heating SCOP". Here we note that each class has its range of SCOP values; detailed tables can be found in special sources.

Other things being equal, more energy-efficient air conditioners are more expensive, but the difference can be recouped as it uses less electricity.
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