ATS-H1-167-C3-R0 Allicdata Electronics
Allicdata Part #:

ATS-H1-167-C3-R0-ND

Manufacturer Part#:

ATS-H1-167-C3-R0

Price: $ 5.47
Product Category:

Fans, Thermal Management

Manufacturer: Advanced Thermal Solutions Inc.
Short Description: HEATSINK 25X25X20MM R-TAB T412
More Detail: Heat Sink Assorted (BGA, LGA, CPU, ASIC...) Alumin...
DataSheet: ATS-H1-167-C3-R0 datasheetATS-H1-167-C3-R0 Datasheet/PDF
Quantity: 1000
10 +: $ 4.92723
30 +: $ 4.65381
50 +: $ 4.38001
100 +: $ 4.10621
250 +: $ 3.83246
500 +: $ 3.55872
1000 +: $ 3.49028
Stock 1000Can Ship Immediately
$ 5.47
Specifications
Series: pushPIN™
Part Status: Active
Type: Top Mount
Package Cooled: Assorted (BGA, LGA, CPU, ASIC...)
Attachment Method: Push Pin
Shape: Square, Fins
Length: 0.984" (25.00mm)
Width: 0.984" (25.00mm)
Diameter: --
Height Off Base (Height of Fin): 0.790" (20.00mm)
Power Dissipation @ Temperature Rise: --
Thermal Resistance @ Forced Air Flow: 9.37°C/W @ 100 LFM
Thermal Resistance @ Natural: --
Material: Aluminum
Material Finish: Blue Anodized
Description

Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us:   sales@allicdata.com

Thermal management has long been a challenge for many applications as technology advances and the need for higher heatsink performance increases. The ATS-H1-167-C3-R0 heat sink is the latest in thermal management technology and is designed to provide optimal performance in high-heat applications. This heat sink is designed for application in space, aerospace, military and industrial environments.

This heat sink is made up of four distinct components, each with its own unique purpose and design feature. At the core of the ATS-H1-167-C3-R0 is a cast aluminum shell, which acts as the heat conducting medium and offers strength, durability and superior thermal performance. Inside this shell is a thermally conductive V-section that helps to evenly spread the heat away from the core. Two rectangular fins spread the heat efficiently to the outside surfaces. The entire heat sink is then sealed in a metal frame to protect it from harsh environment elements.

The ATS-H1-167-C3-R0’s application field centers around high heat situations, which often include large systems that require better thermal management. These systems include aerospace, military, and industrial. This heat sink’s specialty is in its ability to perform efficiently in high-heat environments such as these, and it is designed to withstand the high temperatures and pressures of these conditions.

To be effective in such environments, the ATS-H1-167-C3-R0 features some of the latest thermal management technology, such as its specially designed V-section. The V-section works to spread the heat away from the core more efficiently and evenly, resulting in better overall performance. The two rectangular fins also help spread the heat away from the main body of the heat sink and allow for maximum efficiency. Furthermore, the frame of the heat sink is designed to withstand the extreme temperatures and pressures found in these situations, ensuring the longevity and performance of the product.

The working principle of the ATS-H1-167-C3-R0 is relatively straight-forward. The heat generated by a system is absorbed through the aluminum shell and spread evenly throughout the width of the V-section. From there, the heat is spread even further by the two rectangular fins, and eventually releases into the ambient air. This action results in a cooler operating temperature located at the core, ensuring maximum performance and reliability.

All in all, this particular heat sink has been engineered to tackle the toughest of high-heat applications. It’s designed to provide optimal thermal performance in aerospace, military, and industrial environments, as well as in many other applications. The cast shell, V-section, and fin design offer efficient heat dissipation, while the sealed metal frame provides additional protection from the elements. All of this combines to provide a dependable and long-lasting heat sink that can handle extremely high temperatures and pressures.

The specific data is subject to PDF, and the above content is for reference

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