Heat Sinks since 1991

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Tubo quadro - Standard Profiles
Tubo quadro - Standard Profiles

Code: Tubo quadro
Standard Profiles

Lega BxS Dimensione Peso al metro
6060 10x1 0,097
6060 15x1,5 0,219
6060 15x2 0,281
6060 20x1,5 0,295
6060 20x2 0,389
6060 25x1,5 0,382
6060 25x2 0,497
6060 30x1,5 0,462
6060 30x2 0,605
6060 30x3 0,875
6060 35x1,5 0,543
6060 35x2 0,715
6060 40x1,5 0,624
6060 40x2 0,82
6060 40x3 1,2
6060 40x4 1,56
6060 45x2 0,919
6060 50x1,5 0,785
6060 50x2 1,04
6060 50x3 1,523
6060 50x4 1,988
6060 50x5 2,43
6060 60x2 1,252
6060 60x3 1,847
6060 60x4 2,419
6060 70x2 1,47
6060 80x2 1,685
6060 80x4 3,283
6060 100x2 2,117
6060 100x4 4,148
6060 120x2,5 3,172
6060 120x4 5,011
6060 150x5 7,83
Codice KN MAX I F H
Codice KN MAX I F H
Codice KN MAX I F H
Codice KN MAX I F H
Codice KN MAX I F H
Codice KN MAX I F H

Length: 0.00 mm

Weight: 0.00 kg/m

Weight A: 0.00 kg/m

Weight B: 0.00 kg/m

Height: 0.00 mm


Forced ventilation:

Rt:

Sample length: 0.00mm

Applied power: 0.00W

Vel. Fan: 0.00m/s

Natural ventilation:

Rt

Sample width: 0.00mm

Applied power: 0.00W

Tubo quadro - Standard Profiles


Within this catalog, heat sinks are organized based on their shape and dimensions expressed in millimeters. Each profile is characterized by the following parameters:

  • Weight: expressed in kilograms per meter of profile length (Kg/m).
  • Length: indicated in millimeters and used for calculating thermal resistance (L).
  • Width: also in millimeters, considered for calculating thermal resistance (°C/W), applicable only to high-efficiency heat sinks.
  • Thermal Resistance in Natural Convection: expressed in °C/W with a temperature difference of 70°C (compared to an ambient temperature of 25°C).
  • Thermal Resistance in Forced Convection: also expressed in °C/W, with an air velocity of 3 m/s and a temperature difference of 50°C.

The values of thermal resistance have been determined through a thermal simulation program designed to replicate realistic conditions. In particular:

  • The heat source is uniformly distributed over approximately 50% of the dissipation surface, with central positioning on the heat sink.
  • To maximize natural convection heat dissipation efficiency, the heat sink is designed with vertical fins. For horizontal installations, it is advisable to consider an increase of approximately 20% in thermal resistance.
  • The surface of the heat sink is not subject to additional treatments.

Regarding black anodized heat sinks in natural convection, the thermal resistance is reduced by approximately 10%.

As the length of the heat sink increases, the thermal resistance decreases following a nonlinear law. The indicated values refer to the specified lengths; for different lengths, consult the “Length Correction Factor” graph to calculate the multiplication factor to be applied to the thermal resistance, both in natural and forced convection.

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