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Heatsinks

Heat sinks are important components that help electronics, such as computers, function normally. Without heat sinks, modern computers would not be able to operate at normal speeds as it does with these components. This is because the Heatsink increases the heat flow away from the hot device. It achieves this by increasing the functional surface area of the device and the amount of low-temperature liquid that moves across the enlarged portion. Different types, designs, and aesthetics are available based on the configurations of the specific device you will use it for.

How Does a Heatsink Work?

As mentioned before, a heat sink functions by moving the air away from the heating component. Almost all of them accomplish these tasks in Four steps:

Source Generating Heat

In the first step, the source generates heat. This source could be any system that generates heat and needs to eliminate it to function normally, such as:

  • Mechanical
  • Electrical
  • Chemical
  • Nuclear
  • Solar
  • Friction

Transfer Heat Away from the Source

Heat pipes can likewise help with this cycle. In direct heat sink-contact applications, heat moves into the intensity sink and away from the source through normal conduction. The heat sink material's warm conductivity straightforwardly influences this cycle. That is why high warm conductivity materials, such as copper and aluminum, are most normal in the development of heat sinks.

Heat Distributes Through the Heat Sink

Heat will automatically move through the next heat sink through natural conduction, passing across the thermal gradient from a high to a low-temperature environment. This indicates that the heat sink's thermal status will not be consistent. Such types of sinks will be hotter towards the and cooler towards the sink's extremities. 

Heat Moves Away from the Heat Sink

This mechanism heavily depends on the heat sink's temperature gradient and operating fluid, most commonly air or a non-conductive fluid. This interaction depends on the intensity sink's temperature slope and working fluid―most generally air or a non-electrically-conductive fluid. The functioning liquid passes across the outer layer of the heat sink and uses warm dispersion and convection to eliminate heat from the surface and into the surrounding climate. 

This stage depends on, once more, a temperature gradient to eliminate heat from the sink. Consequently, no convection and ensuing heat evacuation will happen if the surrounding temperature isn't cooler than the heat sink. This progression is likewise where the whole surface region of the heat sink turns out to be generally beneficial. An enormous surface region gives an expanded region for thermal diffusion and convection to happen.

How To Choose the Right Heat Sink?

Selecting the right type of heat sink depends upon the specifics of your setup and the cooling needs. Therefore, it is crucial to identify the details of your intended application to choose the right heat sink. Some key consideration for the selection includes the following:

  • You must first consider the kind of power source from which the component will draw power.
  • Consider the amount the component needs to be kept cool for it to function normally.
  • The amount of space available to install a cooler or heat sink. You will find them in various sizes, ranging from tiny module sinks to larger installations. 
  • The type of heat sink design will offer the best thermal performance for your system specs. 
  • Choose between active or passive radiators. 
  • The amount that you are willing to spend on a cooler.

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Fischer Elektronik
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SK58-100-SA, Fischer Elektronik
19 In Stock
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£ 28.45
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£ 26.17
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£ 25.04
Fischer Elektronik
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ICKPGA 21X21, Fischer Elektronik
20 In Stock
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Fischer Elektronik
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LA 7 100 24 V, Fischer Elektronik
5 In Stock
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£ 287.44
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£ 278.82
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£ 273.07
Fischer Elektronik
SK42-100-SA, Fischer Elektronik
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AAVID THERMALLOY
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241409B91200G, AAVID THERMALLOY
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Fischer Elektronik
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FK224SA218-1, Fischer Elektronik
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AAVID THERMALLOY
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241402B92200G, AAVID THERMALLOY
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EM/B/150, AAVID THERMALLOY
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OS461/B/150, AAVID THERMALLOY
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WA 627.003, Schaffner
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KL176 SW, Seifert
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S586/B/250, AAVID THERMALLOY
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Fischer Elektronik
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SK68-75-SA, Fischer Elektronik
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LA 9 150 24 V, Fischer Elektronik
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WA 628.002, Schaffner
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TDEX3132/100, Thermo Electric Devices
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Fischer Elektronik
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SK508-100SA, Fischer Elektronik
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£ 15.85
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CMBA054949, Malico
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ICK BGA 27x27x10, Fischer Elektronik
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SK08-37,5-SA, Fischer Elektronik
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SK100-75-SA, Fischer Elektronik
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SK44-100-SA, Fischer Elektronik
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SK454 -50SA, Fischer Elektronik
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SK 574/84 SA, Fischer Elektronik
136 In Stock
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£ 5.83
Fischer Elektronik
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SK434/75SA, Fischer Elektronik
46 In Stock
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New Items
New items
122AB2000B, ABL Components

122AB2000B, ABL Components

Heat Sink 122AB Series, 200mm Wide x 15mm High ABL design their heat sinks to increase the surface area and therefore dissipate heat over a greater area which leads to quicker cooling of the component. Designed using tempered alloys with greater thermal conductivity to maximise cooling performance. Heat sinks can be used to cool high power semiconductors, optoelectric devices and light emitting diodes. The high powered Heat sink range pressed fin technology to achieve fin ratios and performance way beyond what is achievable from a single piece extrusion.
New items
350AB1500B, ABL Components

350AB1500B, ABL Components

Flatback 125mm Wide x 50mm High With Channel ABL design their heat sinks to increase the surface area and therefore dissipate heat over a greater area which leads to quicker cooling of the component. Designed using tempered alloys with greater thermal conductivity to maximise cooling performance. Heat sinks can be used to cool high power semiconductors, optoelectric devices and light emitting diodes. Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
PPC0200BP, ABL Components

PPC0200BP, ABL Components

T0220 Clip-On, 9°C/W, 11°C/W It is recommended that the effectiveness of any heatsink is tested in the specific operating environment in which it will be subjected
New items
193AB2500B, ABL Components

193AB2500B, ABL Components

Flatback 240mm Wide x 46mm High With Mounting Feet Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
350AB1000B, ABL Components

350AB1000B, ABL Components

Flatback 125mm Wide x 50mm High With Channel ABL design their heat sinks to increase the surface area and therefore dissipate heat over a greater area which leads to quicker cooling of the component. Designed using tempered alloys with greater thermal conductivity to maximise cooling performance. Heat sinks can be used to cool high power semiconductors, optoelectric devices and light emitting diodes. Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
122AB1000B, ABL Components

122AB1000B, ABL Components

Heat Sink 122AB Series, 200mm Wide x 15mm High ABL design their heat sinks to increase the surface area and therefore dissipate heat over a greater area which leads to quicker cooling of the component. Designed using tempered alloys with greater thermal conductivity to maximise cooling performance. Heat sinks can be used to cool high power semiconductors, optoelectric devices and light emitting diodes. The high powered Heat sink range pressed fin technology to achieve fin ratios and performance way beyond what is achievable from a single piece extrusion.
New items
520AB1000MB, ABL Components

520AB1000MB, ABL Components

Non Standard Extrusion 88mm Wide x 35mm High With Channel ABL design their heat sinks to increase the surface area and therefore dissipate heat over a greater area which leads to quicker cooling of the component. Designed using tempered alloys with greater thermal conductivity to maximise cooling performance. Heat sinks can be used to cool high power semiconductors, optoelectric devices and light emitting diodes. Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
125AB2500B, ABL Components

125AB2500B, ABL Components

Flatback 200mm Wide x 25mm High It is recommended that the effectiveness of any heatsink is tested in the specific operating environment in which it will be subjected Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
159AB1500B, ABL Components

159AB1500B, ABL Components

Flatback 160mm Wide x 40mm High Note Thermal resistance quoted is with fins vertical in free air. Length dimension refers to extrusion length along fins.
New items
BGA STD 090, ABL Components

BGA STD 090, ABL Components

BGA Heatsink, Standard Standard type BGA heatsink suitable for a variety of applications. BGA Heatsinks
New items
PPN0750B, ABL Components

PPN0750B, ABL Components

PPN Series, TO220 Board Mount, Clip-On ABL heatsinks suitable for a wide range of applications.
New items
ILA-HSINK-STAR-50X80MM-RED-K, Intelligent LED Solutions

ILA-HSINK-STAR-50X80MM-RED-K, Intelligent LED Solutions

Heat Sink Kits for Intelligent LED Solutions’ PowerStar and PowerCluster LED Arrays The ILA-HEATSINK-XXX series of aluminium alloy heat sink kits are for use with Intelligent LED Solutions’ standard range of PowerStar and PowerCluster LED arrays. These anodised extruded heat sinks are supplied with Thermal Interface Material (TIM) attached to the top surface and fixing screws for the LED array and for fixing to a base plate. They are available in a range of colours: black, red, silver and blue. Anodised extruded aluminium heatsink kits Supplied with: Thermal Interface Material (TIM) and fixing screws
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