Fans & Cooling
Axial fans, blowers, filter fans, heat sinks and thermoelectric.
Also searched as: axial fanblowerheat sinkcabinet fanpeltier
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Silicone Heat Sink
Power Rating: 24W
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Silver Diamond Mesh Thermal Management Heat Sink
Hole Shape: Diamond, Square, HexagonalThickness: 0.05mm - 5.0mm
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Solid State Relay Heat Sink
For Use With: Schneider SSP1
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Solid State Relay Heat Sink
For Use With: Schneider SSP1, SSP3 Solid State Relays
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Solid State Relay Heat Sink
Rated Current: 10 Amp
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Square Axial Fan
CFM: 115 CFMDepth: 1-1/2 inHeight: 4-11/16 inVoltage: 115V ACWatts: 20/22 W
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Square Axial Fan
CFM: 55 cfmDepth: 1-1/2 inHeight: 4-11/16 inRPM: 2150/1750 RPMWidth: 4-11/16 in
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TEC1-04902 Thermoelectric Cooler
Voltage: 3.7V
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TEC1-12706 Peltier Cooler Module
Size: 40x40 mmVoltage: 12 V
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TEC1-12706 Peltier Module, 12V 6A 60W Heatsink Thermoelectric Cooler Cooling Peltier Plate Module Peltier Cooler 40x40MM
Current: 6APower: 60WSize: 40x40MMVoltage: 12V
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TEC1-24104/24106/24108//24110 Peltier cooling module
Size: 60x60 mmVoltage: 29 V
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Tec Thermoelectric Cooler
Delta Tmax: 67ºCDimension: 40*40mm
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Tec1-07115 Powerful Semiconductor Peltier
Size: 30*30mm
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Tec1-13920 Thermoelectric Semiconductor
Power: 194.6W
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Tes1-04905 High Delta T 65℃ Thermoelectric Peltier
Delta T: 65℃
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Thermoelectric Peltier Module CP10-63-06-L1-W4.5
Dimensions: 30 x 15 x 3.6 mm
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Thermoelectric Peltier Module, High Temperature Thermoelectric Power Generator Peltier TEG 150℃, White 40x40mm
Size: 40x40mmTemperature: 150℃
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Thermoelectric Peltier Refrigeration Cooler
Power: 200 WVoltage: 24 V
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Thermoelectric Semiconductor Peltier Cooling Tec Module
Max Temperature Difference: 66℃
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Tower Cooling Fan
Airflow: 27ft/s
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Tube Axial Fan PF-2 Pac Fan, 4.65"
Size: 4.65"
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Tube Axial Fan, 18" Dia, 2Hp, 3Ph
Diameter: 18"Horsepower: 2HpPhase: 3Ph
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Tube Axial Fan, 24" Dia, 220V
Diameter: 24"Voltage: 220V
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Tube Axial Fan, 42" Dia, 5Hp, 3Ph
Diameter: 42"Horsepower: 5HpPhase: 3Ph
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USB Brushless Cooling Fan
Fan Dimensions: 40x40x10mm
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USB Quiet Cabinet Fan for AV Cabinets
Airflow: 44 CFMCable Length: 110 cmControl: 0-40℃ thermostatCurrent: 1AVoltage: 5V
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Vector Duty Motor
Diameter: 2.1250 inEnclosure: TEBC (Totally Enclosed Blower Cooled)Frequency: 60 HzHorsepower: 25 hp
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Wall-Mounted Axial Fan
Speed: 2350rpmVoltage: 120 V, 230 V
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Wire Chrome Fan Guard
Size: 80 mm (3.15")
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About fans & cooling
Fans and cooling components manage thermal loads in electronic systems and enclosures. This category includes axial fans, which move air parallel to the fan's axis; blowers, which generate higher static pressure and move air centrifugally; filter fans, which integrate a fan with a filtration medium for dust protection; heat sinks, passive devices that dissipate heat through conduction and convection; and thermoelectric coolers (Peltier devices), which create a temperature differential using the Peltier effect. Key selection parameters for fans include airflow (CFM or m³/h), static pressure (in. H₂O or Pa), noise level (dBA), operating voltage (VDC or VAC), and physical dimensions (mm). Heat sinks are characterized by thermal resistance (°C/W), fin geometry, and material, typically aluminum alloys (e.g., 6063-T5) or copper. Thermoelectric coolers are specified by maximum heat pump capacity (Qmax in W), maximum temperature differential (ΔTmax in °C), and current/voltage ratings. Common fan bearing types include sleeve, ball, and fluid dynamic. Materials for fan impellers and housings are often thermoplastics like PBT or ABS, sometimes with flame retardant additives.
How to choose
Selecting fans and cooling components begins with determining the required thermal dissipation. First, define the heat load (W) and the maximum allowable component or enclosure temperature. For fans, establish the necessary airflow (CFM or m³/h) and static pressure (in. H₂O or Pa) to maintain the desired temperature, considering system impedance. Next, consider the available space and mounting constraints to narrow down physical dimensions. Evaluate power requirements (VDC/VAC) and noise limitations (dBA). For heat sinks, calculate the required thermal resistance (°C/W) based on the heat source and ambient conditions, then choose a material and fin geometry that fits the space. For thermoelectric coolers, specify Qmax and ΔTmax based on the application's cooling needs and temperature difference requirements, then match to available power.