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    Bourns Extends Current Sense Resistors for High-Current Power Designs with 0.1 mΩ, 15 W

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    Current-Dependent Inductors: Using Non-Linear Inductance in Buck Converters and PFC Stages

    Current Sense Transformers: Ferrite vs Nanocrystalline Cores for Accurate Current Measurement

    EMC Design Fundamentals: Safe Use of Varistors and Common Mode Chokes in Mains and Data-Line Filters

    Ferrite versus Nanocrystalline Power Inductor Cores: Turns, Gap and Size

    KYOCERA AVX Presents Antenna Integrator Studio Tutorial for Antenna Placement and RF Design

    Power Design Simulation Tools for Faster Inductor Selection and Loss Optimization

    EMC‑Compliant PCB and Connector Design Guidelines

    Why Isolated DC/DC Power Supplies Fail Late, Würth Elektronik Podcast

    Designing 800 V DC EMC Filters: Calculation, Simulation and Measurement

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    Bourns Extends Current Sense Resistors for High-Current Power Designs with 0.1 mΩ, 15 W

    KYOCERA AVX Releases Vibration-Proof SMD Aluminum Electrolytic Capacitors for Harsh Industrial Designs

    Vishay Introduces Automotive Low Loss SMD Common-Mode Chokes

    YAGEO Adds X8 Flexible-Termination Automotive MLCCs for 150°C Designs

    Current-Dependent Inductors: Using Non-Linear Inductance in Buck Converters and PFC Stages

    Vishay Releases High-Power Thick Film Resistors for Compact Power Modules

    Wk 32 Electronics Supply Chain Digest

    Passive Components for Industrial Automation and Robotics (Dossier Report 08/26)

    Advanced Electronics Markets Reshape Capacitor Demand for 2026/2027

    Trending Tags

    • Ripple Current
    • RF
    • Leakage Current
    • Tantalum vs Ceramic
    • Snubber
    • Low ESR
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    Current-Dependent Inductors: Using Non-Linear Inductance in Buck Converters and PFC Stages

    Current Sense Transformers: Ferrite vs Nanocrystalline Cores for Accurate Current Measurement

    EMC Design Fundamentals: Safe Use of Varistors and Common Mode Chokes in Mains and Data-Line Filters

    Ferrite versus Nanocrystalline Power Inductor Cores: Turns, Gap and Size

    KYOCERA AVX Presents Antenna Integrator Studio Tutorial for Antenna Placement and RF Design

    Power Design Simulation Tools for Faster Inductor Selection and Loss Optimization

    EMC‑Compliant PCB and Connector Design Guidelines

    Why Isolated DC/DC Power Supplies Fail Late, Würth Elektronik Podcast

    Designing 800 V DC EMC Filters: Calculation, Simulation and Measurement

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Samtec Releases 800-Position High-Performance Array Connectors  

28.8.2025
Reading Time: 2 mins read
A A

Samtec is excited to introduce the newest members of its AcceleRate HP® high-performance array family: 800-position APM6, APF6 at a 5 mm stack height.  

The AcceleRate HP® connector set delivers exceptional signal integrity performance and density (112 Gbps PAM4, 0.635 mm pitch). It’s an ideal solution for any system requiring extremely high data throughput in less space.

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Applications include HPC (high-performance computing), AI (artificial intelligence), storage and networking.  

Data rates are compatible with PCIe® 6.0, CXL® 3.2, and 100 GbE protocols. Protocol capability of Samtec connectors is calculated from a comparison of the protocol channel data rate and the Samtec Channel Performance Metric(CPM) per product.  

The high 800-position pin count version of AcceleRate® HP has an 8-row x 100-position configuration, yet still manages to achieve a fairly compact footprint and an extremely low profile: 

  • Footprint: 68.62 mm x 18.20 mm (2.701″ x 0.717″)
  • Profile: 5 mm stack height

A 10 mm stack height version at 800-positions is on the roadmap, with plans for release in Q2 2026. 

Additional ADM6, ADF6 features include an impedance of 92.5 Ohm, a maximum current rating of 1.2 A (4 pins powered), maximum voltage rating of 150 VAC (212 VDC) and an open pin field array design allowing maximum grounding and routing flexibility. 

Designed with performance and reliability in mind, APM6 and APF6 use Samtec’s solder column board termination technique (identified as -0 in the part callout). As interconnects continue to get smaller and redefine micro, solder joint reliability can become more challenging making solder application and processes part of the overall SI conversation. The solder column termination method enhances structural integrity and supports reliable electrical performance. 

Solder Column Termination:

  • Ideal for extremely dense, high-speed connectors  
  • Advanced structural integrity due to the column-like shape after reflow 
  • Efficient distribution of thermal stress, absorbs deflections 
  • IPC Class 3 compliant post solder joint 
  • SJR Tested per IPC-9701 with thermal exposure to -55 ˚C to 125 ˚C  
  • Excellent electrical performance  

Related

Source: Samtec

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