| EWHQ100G-SS | EWHQ120G-SS | EWHQ130G-SS | EWHQ150G-SS | EWHQ160G-SS | EWHQ190G-SS | EWHQ210G-SS | EWHQ240G-SS | EWHQ270G-SS | EWHQ340G-SS | EWHQ400G-SS | |||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Cooling capacity | Nom. | kW | 87.3 | 100.0 | 111 | 127 | 141 | 160 | 181 | 208 | 232 | 291 | 352 | ||
| Heating capacity | Nom. | kW | 112 | 128 | 144 | 162 | 179 | 205 | 233 | 266 | 299 | 375 | 454 | ||
| Capacity control | Method | Step | Step | Step | Step | Step | Step | Step | Step | Step | Step | Step | |||
| Minimum capacity | % | 50.0 | 43.0 | 50.0 | 44.0 | 50.0 | 45.0 | 50.0 | 43.0 | 50.0 | 40.0 | 50.0 | |||
| Power input | Cooling | Nom. | kW | 22.4 | 25.3 | 28.5 | 32.0 | 35.6 | 41.1 | 46.0 | 53.3 | 59.1 | 73.7 | 88.4 | |
| Heating | Nom. | kW | 27.0 | 30.9 | 35.2 | 39.3 | 43.6 | 50.4 | 56.6 | 64.7 | 72.2 | 90.3 | 109 | ||
| EER | 3.90 | 3.95 | 3.91 | 3.96 | 3.95 | 3.90 | 3.93 | 3.90 | 3.92 | 3.95 | 3.98 | ||||
| COP | 4.15 | 4.16 | 4.09 | 4.12 | 4.11 | 4.07 | 4.11 | 4.10 | 4.14 | 4.16 | 4.18 | ||||
| ESEER | 4.70 | 4.84 | 4.65 | 4.86 | 4.80 | 4.89 | 4.86 | 4.83 | 4.79 | 4.90 | 4.83 | ||||
| Dimensions | Unit | Depth | mm | 2432 | 2432 | 2264 | 2264 | 2264 | 2432 | 2432 | 2432 | 2432 | 2432 | 2432 | |
| Height | mm | 1066 | 1066 | 1066 | 1066 | 1066 | 1066 | 1066 | 1066 | 1066 | 1186 | 1186 | |||
| Width | mm | 928 | 928 | 928 | 928 | 928 | 928 | 928 | 928 | 928 | 928 | 928 | |||
| Weight | Unit | kg | 519 | 608 | 728 | 770 | 808 | 838 | 880 | 930 | 941 | 1090 | 1203 | ||
| Operation weight | kg | 558 | 654 | 782 | 830 | 873 | 908 | 995 | 1019 | 1031 | 1202 | 1334 | |||
| Water heat exchanger - evaporator | Type | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | |||
| Water volume | l | 6 | 8 | 8 | 10 | 12 | 13 | 15 | 17 | 17 | 27 | 34 | |||
| Water heat exchanger - condenser | Type | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | Plate heat exchanger | |||
| Compressor | Type | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | Scroll compressor | |||
| Quantity | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | ||||
| Sound power level | Cooling | Nom. | dBA | 80 | 83 | 85 | 87 | 88 | 88 | 88 | 90 | 92 | 93 | 93 | |
| Sound pressure level | Cooling | Nom. | dBA | 64 | 67 | 69 | 70 | 72 | 72 | 72 | 74 | 76 | 76 | 77 | |
| Operation range | Evaporator | Cooling | Min. | °CDB | -8 | -8 | -8 | -8 | -8 | -8 | -8 | -8 | -8 | -8 | -8 |
| Max. | °CDB | 15 | 15 | 15 | 15 | 15 | 15 | 15 | 15 | 15 | 15 | 15 | |||
| Condenser | Cooling | Min. | °CDB | 25 | 25 | 25 | 25 | 25 | 25 | 25 | 25 | 25 | 25 | 25 | |
| Max. | °CDB | 55 | 55 | 55 | 55 | 55 | 55 | 55 | 55 | 55 | 55 | 55 | |||
| Refrigerant | Type | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | R-410A | |||
| Circuits | Quantity | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | |||
| GWP | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | 2,087.5 | ||||
| Refrigerant charge | Per circuit | kg | 9.0 | 9.0 | 10.0 | 10.0 | 13.0 | 11.0 | 13.0 | 15.0 | 15.0 | 19.0 | 19.0 | ||
| Per circuit | tCO2Eq | 18.8 | 18.8 | 20.9 | 20.9 | 27.1 | 23.0 | 27.1 | 31.3 | 31.3 | 39.7 | 39.7 | |||
| Space heating | Average climate water outlet 35°C | General | SCOP | 4.08 | 4.08 | 4.14 | 4.24 | 4.23 | 4.23 | 4.22 | 4.37 | 4.35 | 4.16 | ||
| Energy Efficiency Range | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | Space Heating A+++ ~ D, Water Heating A+ ~ F | ||||
| Power supply | Phase | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | 3~ | |||
| Frequency | Hz | 50 | 50 | 50 | 50 | 50 | 50 | 50 | 50 | 50 | 50 | 50 | |||
| Voltage | V | 400 | 400 | 400 | 400 | 400 | 400 | 400 | 400 | 400 | 400 | 400 | |||
| Notes | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | (1) - Cooling: entering evaporator water temp. 12°C; leaving evaporator water temp. 7°C; entering condenser water temp. 30°C; leaving condenser water temp. 35°C; full load operation. | ||||
| (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | (2) - Heating capacity, unit power input and COP are based on the following conditions: evaporator 5/10°C; condensor 40/45°C, unit at full load operation | |||||
| (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | (3) - Sound power level (at standard conditions) is measured in accordance with ISO9614 and Eurovent 8/1 for Eurovent certified units | |||||
| (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | (4) - Fluid: Water | |||||
| (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | (5) - For more details on the operating limits please refer to the Chiller Selection Software (CSS). | |||||
| (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | (6) - Equipment contains fluorinated greenhouse gases. Actual refrigerant charge depends on the final unit construction, details can be found on the unit labels. | |||||
| (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | (7) - Allowed voltage tolerance ± 10%. Voltage unbalance between phases must be within ± 3%. | |||||
| (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | (8) - Maximum starting current: starting current of biggest compressor + current of the compressor at 75% maximum load | |||||
| (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | (9) - Nominal current cooling mode is referred to the following conditions: evaporator 12/7°C; condenser 30/35°C; compressors current | |||||
| (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | (10) - Maximum running current is based on max compressor absorbed current in its envelope | |||||
| (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | (11) - Maximum unit current for wires sizing is based on minimum allowed voltage. | |||||
| (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | (12) - Maximum current for wires sizing: compressor full load ampere x 1.1 | |||||