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 3145–3168 of 3346

Baltimore Aircoil VRC-0768B-1224N-LA evaporative condenser (4.7 MW rejection) — modelled

Baltimore Aircoil's VRC-0768B-1224N-LA — a Vertex VRC evaporative condenser rejecting 4662 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 76.9 m³/s of the maker's own printed air, with a 44.7 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 · 3496–5827 kW · EU

Baltimore Aircoil VRC-0824B-1224N-MA evaporative condenser (5.0 MW rejection) — modelled

Baltimore Aircoil's VRC-0824B-1224N-MA — a Vertex VRC evaporative condenser rejecting 4997 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 84.7 m³/s of the maker's own printed air, with a 59.7 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 · 3748–6247 kW · EU

Baltimore Aircoil VRC-0763B-1224N-KA evaporative condenser (4.6 MW rejection) — modelled

Baltimore Aircoil's VRC-0763B-1224N-KA — a Vertex VRC evaporative condenser rejecting 4627 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 63.5 m³/s of the maker's own printed air, with a 29.8 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 · 3470–5784 kW · EU

Baltimore Aircoil VRC-0831B-1224N-LA evaporative condenser (5.0 MW rejection) — modelled

Baltimore Aircoil's VRC-0831B-1224N-LA — a Vertex VRC evaporative condenser rejecting 5041 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 72.7 m³/s of the maker's own printed air, with a 44.7 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 · 3781–6301 kW · EU

Baltimore Aircoil VRC-0889B-1224N-MA evaporative condenser (5.4 MW rejection) — modelled

Baltimore Aircoil's VRC-0889B-1224N-MA — a Vertex VRC evaporative condenser rejecting 5394 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 80.4 m³/s of the maker's own printed air, with a 59.7 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 · 4045–6742 kW · EU

Baltimore Aircoil VRC-0939B-1224N-NA evaporative condenser (5.7 MW rejection) — modelled

Baltimore Aircoil's VRC-0939B-1224N-NA — a Vertex VRC evaporative condenser rejecting 5696 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 86.7 m³/s of the maker's own printed air, with a 74.6 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 · 4272–7119 kW · EU

Baltimore Aircoil VRC-0934B-1236N-HB evaporative condenser (5.7 MW rejection) — modelled

Baltimore Aircoil's VRC-0934B-1236N-HB — a Vertex VRC evaporative condenser rejecting 5658 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 113.2 m³/s of the maker's own printed air, with a 51.3 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 · 4243–7072 kW · EU

Baltimore Aircoil VRC-1032B-1236N-JB evaporative condenser (6.3 MW rejection) — modelled

Baltimore Aircoil's VRC-1032B-1236N-JB — a Vertex VRC evaporative condenser rejecting 6253 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 131.3 m³/s of the maker's own printed air, with a 79.9 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 · 4690–7816 kW · EU

Baltimore Aircoil VRC-1020B-1236N-HB evaporative condenser (6.2 MW rejection) — modelled

Baltimore Aircoil's VRC-1020B-1236N-HB — a Vertex VRC evaporative condenser rejecting 6186 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 108.5 m³/s of the maker's own printed air, with a 51.3 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 · 4640–7733 kW · EU

Baltimore Aircoil VRC-1127B-1236N-JB evaporative condenser (6.8 MW rejection) — modelled

Baltimore Aircoil's VRC-1127B-1236N-JB — a Vertex VRC evaporative condenser rejecting 6837 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 126.0 m³/s of the maker's own printed air, with a 79.9 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 · 5128–8546 kW · EU

Baltimore Aircoil VRC-1111B-1236N-HB evaporative condenser (6.7 MW rejection) — modelled

Baltimore Aircoil's VRC-1111B-1236N-HB — a Vertex VRC evaporative condenser rejecting 6737 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 102.6 m³/s of the maker's own printed air, with a 51.3 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 · 5053–8422 kW · EU

Baltimore Aircoil VRC-1227B-1236N-JB evaporative condenser (7.4 MW rejection) — modelled

Baltimore Aircoil's VRC-1227B-1236N-JB — a Vertex VRC evaporative condenser rejecting 7446 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 119.1 m³/s of the maker's own printed air, with a 79.9 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 · 5585–9308 kW · EU

Baltimore Aircoil VRC-1198B-1236N-HB evaporative condenser (7.3 MW rejection) — modelled

Baltimore Aircoil's VRC-1198B-1236N-HB — a Vertex VRC evaporative condenser rejecting 7266 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 94.2 m³/s of the maker's own printed air, with a 51.3 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 · 5450–9083 kW · EU

Baltimore Aircoil VRC-1324B-1236N-JB evaporative condenser (8.0 MW rejection) — modelled

Baltimore Aircoil's VRC-1324B-1236N-JB — a Vertex VRC evaporative condenser rejecting 8031 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 109.2 m³/s of the maker's own printed air, with a 79.9 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 · 6023–10038 kW · EU

Baltimore Aircoil VRC-0661B-1236N-GA evaporative condenser (4.0 MW rejection) — modelled

Baltimore Aircoil's VRC-0661B-1236N-GA — a Vertex VRC evaporative condenser rejecting 4008 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 71.5 m³/s of the maker's own printed air, with a 13.4 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 · 3006–5010 kW · EU

Baltimore Aircoil VRC-0747B-1236N-HA evaporative condenser (4.5 MW rejection) — modelled

Baltimore Aircoil's VRC-0747B-1236N-HA — a Vertex VRC evaporative condenser rejecting 4532 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 84.7 m³/s of the maker's own printed air, with a 22.4 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 · 3399–5665 kW · EU

Baltimore Aircoil VRC-0825B-1236N-JA evaporative condenser (5.0 MW rejection) — modelled

Baltimore Aircoil's VRC-0825B-1236N-JA — a Vertex VRC evaporative condenser rejecting 5006 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 96.9 m³/s of the maker's own printed air, with a 33.6 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 · 3755–6258 kW · EU

Baltimore Aircoil VRC-0885B-1236N-KA evaporative condenser (5.4 MW rejection) — modelled

Baltimore Aircoil's VRC-0885B-1236N-KA — a Vertex VRC evaporative condenser rejecting 5368 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 106.7 m³/s of the maker's own printed air, with a 44.7 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 · 4026–6710 kW · EU

Baltimore Aircoil VRC-0912B-1236N-JA evaporative condenser (5.5 MW rejection) — modelled

Baltimore Aircoil's VRC-0912B-1236N-JA — a Vertex VRC evaporative condenser rejecting 5531 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 94.0 m³/s of the maker's own printed air, with a 33.6 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 · 4149–6914 kW · EU

Baltimore Aircoil VRC-0977B-1236N-KA evaporative condenser (5.9 MW rejection) — modelled

Baltimore Aircoil's VRC-0977B-1236N-KA — a Vertex VRC evaporative condenser rejecting 5928 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 103.5 m³/s of the maker's own printed air, with a 44.7 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 · 4446–7410 kW · EU

Baltimore Aircoil VRC-1065B-1236N-KA evaporative condenser (6.5 MW rejection) — modelled

Baltimore Aircoil's VRC-1065B-1236N-KA — a Vertex VRC evaporative condenser rejecting 6462 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 100.8 m³/s of the maker's own printed air, with a 44.7 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 · 4847–8078 kW · EU

Baltimore Aircoil VRC-1175B-1236N-LA evaporative condenser (7.1 MW rejection) — modelled

Baltimore Aircoil's VRC-1175B-1236N-LA — a Vertex VRC evaporative condenser rejecting 7126 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 115.3 m³/s of the maker's own printed air, with a 67.1 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 · 5344–8907 kW · EU

Baltimore Aircoil VRC-1260B-1236N-MA evaporative condenser (7.6 MW rejection) — modelled

Baltimore Aircoil's VRC-1260B-1236N-MA — a Vertex VRC evaporative condenser rejecting 7643 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 127.0 m³/s of the maker's own printed air, with a 89.5 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 · 5732–9553 kW · EU

Baltimore Aircoil VRC-1271B-1236N-LA evaporative condenser (7.7 MW rejection) — modelled

Baltimore Aircoil's VRC-1271B-1236N-LA — a Vertex VRC evaporative condenser rejecting 7712 kW at a 40.6 °C condensing temperature and a 25.6 °C entering wet bulb, on 108.5 m³/s of the maker's own printed air, with a 67.1 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 · 5784–9640 kW · EU
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