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
All manufacturersBaltimore Aircoil 1900EVAPCO 1408Midea 2Gree 1Hitachi 1Samsung 1
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
All marketsEU 3346
All tagsexample 3346
All suppliersHVAC Builder 3345Aeronim Systems (fictional) 1
SortNewestName A–ZSupplier A–ZCapacity ↑Capacity ↓

Showing 2641–2664 of 3346

EVAPCO ATWB 9-7M14 closed-circuit cooler (335 tons, 1.5 MW) — modelled

EVAPCO's 9-7M14 — a ATWB closed-circuit cooler, 335 nominal tons (1473 kW): rated to cool 841 USGPM of process fluid from 102 to 90 °F at a 75 °F entering wet bulb on 32.5 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. The process fluid runs inside a coil under the spray — the evaporative wet-coil model, its two conductances split as the range's own coil volumes say. The model derives the machine's NTU from that one certified point, so it reproduces the rated leaving process fluid 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 C13F-09R12) ✓
Cooling tower / heat rejection · 1105–1842 kW · EU

Baltimore Aircoil -75-0806-3 evaporative condenser (454 kW rejection) — modelled

Baltimore Aircoil's -75-0806-3 — a CXVB evaporative condenser rejecting 454 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 10.5 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 341–568 kW · EU

Baltimore Aircoil -87-0806-3 evaporative condenser (527 kW rejection) — modelled

Baltimore Aircoil's -87-0806-3 — a CXVB evaporative condenser rejecting 527 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 11.5 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 395–659 kW · EU

Baltimore Aircoil -94-0806-3 evaporative condenser (569 kW rejection) — modelled

Baltimore Aircoil's -94-0806-3 — a CXVB evaporative condenser rejecting 569 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 9.6 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 427–712 kW · EU

Baltimore Aircoil -95-0806-5 evaporative condenser (576 kW rejection) — modelled

Baltimore Aircoil's -95-0806-5 — a CXVB evaporative condenser rejecting 576 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 13.6 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 432–719 kW · EU

Baltimore Aircoil -102-0806-7.5 evaporative condenser (618 kW rejection) — modelled

Baltimore Aircoil's -102-0806-7.5 — a CXVB evaporative condenser rejecting 618 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 15.5 m³/s of the maker's own printed air, with a 5.6 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 464–773 kW · EU

Baltimore Aircoil -106-0806-3 evaporative condenser (642 kW rejection) — modelled

Baltimore Aircoil's -106-0806-3 — a CXVB evaporative condenser rejecting 642 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 11.0 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 482–803 kW · EU

Baltimore Aircoil -111-0806-10 evaporative condenser (673 kW rejection) — modelled

Baltimore Aircoil's -111-0806-10 — a CXVB evaporative condenser rejecting 673 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 16.9 m³/s of the maker's own printed air, with a 7.5 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 504–841 kW · EU

Baltimore Aircoil -117-0806-5 evaporative condenser (709 kW rejection) — modelled

Baltimore Aircoil's -117-0806-5 — a CXVB evaporative condenser rejecting 709 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 13.1 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 532–886 kW · EU

Baltimore Aircoil -123-0806-10 evaporative condenser (745 kW rejection) — modelled

Baltimore Aircoil's -123-0806-10 — a CXVB evaporative condenser rejecting 745 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 16.8 m³/s of the maker's own printed air, with a 7.5 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 559–932 kW · EU

Baltimore Aircoil -137-0806-15 evaporative condenser (830 kW rejection) — modelled

Baltimore Aircoil's -137-0806-15 — a CXVB evaporative condenser rejecting 830 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 18.8 m³/s of the maker's own printed air, with a 11.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 622–1037 kW · EU

Baltimore Aircoil -113-0809-3 evaporative condenser (685 kW rejection) — modelled

Baltimore Aircoil's -113-0809-3 — a CXVB evaporative condenser rejecting 685 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 14.7 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 513–856 kW · EU

Baltimore Aircoil -124-0809-5 evaporative condenser (751 kW rejection) — modelled

Baltimore Aircoil's -124-0809-5 — a CXVB evaporative condenser rejecting 751 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 17.5 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 563–939 kW · EU

Baltimore Aircoil -126-0809-3 evaporative condenser (763 kW rejection) — modelled

Baltimore Aircoil's -126-0809-3 — a CXVB evaporative condenser rejecting 763 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 12.6 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 573–954 kW · EU

Baltimore Aircoil -134-0809-7.5 evaporative condenser (812 kW rejection) — modelled

Baltimore Aircoil's -134-0809-7.5 — a CXVB evaporative condenser rejecting 812 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 20.0 m³/s of the maker's own printed air, with a 5.6 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 609–1015 kW · EU

Baltimore Aircoil -138-0809-3 evaporative condenser (836 kW rejection) — modelled

Baltimore Aircoil's -138-0809-3 — a CXVB evaporative condenser rejecting 836 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 14.3 m³/s of the maker's own printed air, with a 2.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 627–1045 kW · EU

Baltimore Aircoil -138-0809-5 evaporative condenser (836 kW rejection) — modelled

Baltimore Aircoil's -138-0809-5 — a CXVB evaporative condenser rejecting 836 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 17.1 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 627–1045 kW · EU

Baltimore Aircoil -144-0809-7.5 evaporative condenser (872 kW rejection) — modelled

Baltimore Aircoil's -144-0809-7.5 — a CXVB evaporative condenser rejecting 872 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 19.8 m³/s of the maker's own printed air, with a 5.6 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 654–1091 kW · EU

Baltimore Aircoil -152-0809-5 evaporative condenser (921 kW rejection) — modelled

Baltimore Aircoil's -152-0809-5 — a CXVB evaporative condenser rejecting 921 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 16.8 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 691–1151 kW · EU

Baltimore Aircoil -158-0809-5 evaporative condenser (957 kW rejection) — modelled

Baltimore Aircoil's -158-0809-5 — a CXVB evaporative condenser rejecting 957 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 16.7 m³/s of the maker's own printed air, with a 3.7 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 718–1196 kW · EU

Baltimore Aircoil -163-0809-7.5 evaporative condenser (988 kW rejection) — modelled

Baltimore Aircoil's -163-0809-7.5 — a CXVB evaporative condenser rejecting 988 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 19.4 m³/s of the maker's own printed air, with a 5.6 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 741–1235 kW · EU

Baltimore Aircoil -190-0809-15 evaporative condenser (1.2 MW rejection) — modelled

Baltimore Aircoil's -190-0809-15 — a CXVB evaporative condenser rejecting 1151 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 24.3 m³/s of the maker's own printed air, with a 11.2 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 863–1439 kW · EU

Baltimore Aircoil -207-0809-20 evaporative condenser (1.3 MW rejection) — modelled

Baltimore Aircoil's -207-0809-20 — a CXVB evaporative condenser rejecting 1254 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 26.4 m³/s of the maker's own printed air, with a 14.9 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 941–1568 kW · EU

Baltimore Aircoil -172-0812-7.5 evaporative condenser (1.0 MW rejection) — modelled

Baltimore Aircoil's -172-0812-7.5 — a CXVB evaporative condenser rejecting 1042 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 25.2 m³/s of the maker's own printed air, with a 5.6 kW fan. The heat comes from outside the drawing, because that is what this machine is: heat rejection, and the plant that sends it the heat is the customer's. Given exactly the rejection BAC certify, the model solves the condensing temperature the machine settles at — which is the reading, and the only figure here that is ours rather than theirs. The rating condition is an inference and the listing says so: BAC's sheets never define the condition of their Base Heat Rejection.

Examplemodelled from published data
Cooling tower / heat rejection · 782–1303 kW · EU
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