Published systems

Complete machines published by their suppliers — each with a public spec page whose design-point performance is solved live from the actual model, not copied from a brochure. Open one in the builder to run it against your own climate, or request a quote right here.

Suppliers 26Systems 3346Components 10248
All categoriesCooling tower / heat rejection 3307VRF / multi-split 8Air handler 7Plant / central 5Fan coil / terminal 4Condensing unit 3Rooftop / packaged 3Split system 3Chiller 2Heat recovery / DOAS 2Evaporative air cooler 1Unit cooler / refrigeration 1
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All seriesAT 992ATWB 416PFi 359PCC 214Series 3000 189Series 1500 173Series V closed circuit 173Vertex VRC 157VCA 151Series V 122CXVB 118FXV 100PT2 46CXVT 40Series V EC 26FXT 20Nexus 12DVM S 1GMV5 1Set Free FSXN 1V4+ 1V6 1
Any capacity500 kW and up 3088100–500 kW 39125–100 kW 76up to 25 kW 25
Any certificationCTI STD-201 (validation C13A-99R28) 822CTI STD-201 (validation C13F-09R12) 416CTI STD-201 (validation C11F-92R20) 362CTI STD-201 (validation C11K-00R03) 153CTI STD-201 (validation C11J-98R12) 100CTI STD-201 (validation C11B-92R07) 90CTI STD-201 (validation C11L-07R05) 46CTI STD-201 (validation C11Q-18R02) 2
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All tagsexample 3346
All suppliersHVAC Builder 3345Aeronim Systems (fictional) 1
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Showing 1489–1512 of 3346

EVAPCO AT 19-4G8 cooling tower (158 tons, 697 kW) — modelled

EVAPCO's 19-4G8 — a AT cooling tower, 158 nominal tons (697 kW): rated to cool 477 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 14.3 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 522–871 kW · EU

EVAPCO AT 19-4G9 cooling tower (164 tons, 723 kW) — modelled

EVAPCO's 19-4G9 — a AT cooling tower, 164 nominal tons (723 kW): rated to cool 495 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 16.4 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 542–904 kW · EU

EVAPCO AT 19-4H11 cooling tower (219 tons, 964 kW) — modelled

EVAPCO's 19-4H11 — a AT cooling tower, 219 nominal tons (964 kW): rated to cool 660 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 20.9 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 723–1205 kW · EU

EVAPCO AT 19-4H12 cooling tower (242 tons, 1.1 MW) — modelled

EVAPCO's 19-4H12 — a AT cooling tower, 242 nominal tons (1065 kW): rated to cool 729 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 23.1 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 799–1331 kW · EU

EVAPCO AT 19-4H14 cooling tower (265 tons, 1.2 MW) — modelled

EVAPCO's 19-4H14 — a AT cooling tower, 265 nominal tons (1165 kW): rated to cool 798 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 25.6 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 874–1457 kW · EU

EVAPCO AT 19-4H6 cooling tower (143 tons, 627 kW) — modelled

EVAPCO's 19-4H6 — a AT cooling tower, 143 nominal tons (627 kW): rated to cool 429 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 13.8 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 470–783 kW · EU

EVAPCO AT 19-4H8 cooling tower (172 tons, 758 kW) — modelled

EVAPCO's 19-4H8 — a AT cooling tower, 172 nominal tons (758 kW): rated to cool 519 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 16.3 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 568–947 kW · EU

EVAPCO AT 19-4H9 cooling tower (190 tons, 837 kW) — modelled

EVAPCO's 19-4H9 — a AT cooling tower, 190 nominal tons (837 kW): rated to cool 573 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 18.6 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 628–1046 kW · EU

EVAPCO AT 19-4I11 cooling tower (237 tons, 1.0 MW) — modelled

EVAPCO's 19-4I11 — a AT cooling tower, 237 nominal tons (1043 kW): rated to cool 714 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 22.9 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 782–1303 kW · EU

EVAPCO AT 19-4I12 cooling tower (267 tons, 1.2 MW) — modelled

EVAPCO's 19-4I12 — a AT cooling tower, 267 nominal tons (1174 kW): rated to cool 804 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 25.3 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 881–1468 kW · EU

EVAPCO AT 19-4I14 cooling tower (294 tons, 1.3 MW) — modelled

EVAPCO's 19-4I14 — a AT cooling tower, 294 nominal tons (1293 kW): rated to cool 885 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 28.0 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 969–1616 kW · EU

EVAPCO AT 19-4I6 cooling tower (156 tons, 688 kW) — modelled

EVAPCO's 19-4I6 — a AT cooling tower, 156 nominal tons (688 kW): rated to cool 471 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 15.1 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 516–860 kW · EU

EVAPCO AT 19-4I8 cooling tower (186 tons, 819 kW) — modelled

EVAPCO's 19-4I8 — a AT cooling tower, 186 nominal tons (819 kW): rated to cool 561 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 17.8 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 614–1024 kW · EU

EVAPCO AT 19-4I9 cooling tower (208 tons, 916 kW) — modelled

EVAPCO's 19-4I9 — a AT cooling tower, 208 nominal tons (916 kW): rated to cool 627 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 20.4 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 687–1145 kW · EU

EVAPCO AT 19-4J11 cooling tower (269 tons, 1.2 MW) — modelled

EVAPCO's 19-4J11 — a AT cooling tower, 269 nominal tons (1183 kW): rated to cool 810 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 26.0 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 887–1479 kW · EU

EVAPCO AT 19-4J12 cooling tower (298 tons, 1.3 MW) — modelled

EVAPCO's 19-4J12 — a AT cooling tower, 298 nominal tons (1310 kW): rated to cool 897 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 28.8 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 983–1638 kW · EU

EVAPCO AT 19-4J14 cooling tower (328 tons, 1.4 MW) — modelled

EVAPCO's 19-4J14 — a AT cooling tower, 328 nominal tons (1441 kW): rated to cool 987 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 31.9 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 1081–1802 kW · EU

EVAPCO AT 19-4J6 cooling tower (170 tons, 749 kW) — modelled

EVAPCO's 19-4J6 — a AT cooling tower, 170 nominal tons (749 kW): rated to cool 513 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 17.2 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 562–937 kW · EU

EVAPCO AT 19-4J8 cooling tower (206 tons, 907 kW) — modelled

EVAPCO's 19-4J8 — a AT cooling tower, 206 nominal tons (907 kW): rated to cool 621 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 20.3 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 680–1134 kW · EU

EVAPCO AT 19-4J9 cooling tower (241 tons, 1.1 MW) — modelled

EVAPCO's 19-4J9 — a AT cooling tower, 241 nominal tons (1060 kW): rated to cool 726 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 23.1 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 795–1325 kW · EU

EVAPCO AT 19-4K11 cooling tower (297 tons, 1.3 MW) — modelled

EVAPCO's 19-4K11 — a AT cooling tower, 297 nominal tons (1306 kW): rated to cool 894 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 28.5 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 979–1632 kW · EU

EVAPCO AT 19-4K12 cooling tower (329 tons, 1.4 MW) — modelled

EVAPCO's 19-4K12 — a AT cooling tower, 329 nominal tons (1446 kW): rated to cool 990 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 31.5 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 1084–1807 kW · EU

EVAPCO AT 19-4K14 cooling tower (360 tons, 1.6 MW) — modelled

EVAPCO's 19-4K14 — a AT cooling tower, 360 nominal tons (1582 kW): rated to cool 1083 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 34.8 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 1186–1977 kW · EU

EVAPCO AT 19-4K9 cooling tower (264 tons, 1.2 MW) — modelled

EVAPCO's 19-4K9 — a AT cooling tower, 264 nominal tons (1161 kW): rated to cool 795 USGPM of water from 95 to 85 °F at a 78 °F entering wet bulb on 25.3 m³/s of air, the maker's own printed airflow, and drawn at those flows with an induced-draft fan on the leaving air, pulling through the fill. Open fill: the water meets the air directly — Braun's enthalpy-basis tower model. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving water exactly and predicts nothing else — one point per model is an input, not a validation. Modelled from the manufacturer's published data — not verified by EVAPCO. Published as an example; the figures below are solved from this model.

Examplemodelled from published dataCTI STD-201 (validation C13A-99R28) ✓
Cooling tower / heat rejection · 871–1451 kW · EU
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