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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 |
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Codice | KN MAX | I | F | H |
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Codice | KN MAX | I | F | H |
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Codice | KN MAX | I | F | H |
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Codice | KN MAX | I | F | H |
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Codice | KN MAX | I | F | H |
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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
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.