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    binder Supports Miniaturization of Power Supplies with M12 Compact Connectors

    Switched Capacitor Converter Explained

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    Samsung Electro-Mechanics Releases Molded MLCC Capacitors

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TT Electronics Expands its High-Power Chip Resistors to Increase Power Density Designs

2.11.2021
Reading Time: 2 mins read
A A

New inverse format thick film chips offer two to three times the standard power rating in a smaller PCB footprint to provide advanced options for power circuit designs.

TT Electronics, a global provider of engineered technologies for performance critical applications, announced the WHPC0508X, WHPC0612X, and WHPC1020X, adding extra-high-power range options to its WHPC resistor series. Ideal for compact power supply and motion control applications, these resistors feature inverse geometry with the terminations on the long sides. This gives the new WHPC chip resistors very high thermal contact with the PCB and low thermal impedance. As a result, it is possible to support two to three times conventional power ratings for the same footprint without relying on excessive PCB copper heatsink areas. For example, the WHPC1020 with terminal heatsinking copper areas of 80mm2 runs at 2W continuous dissipation.

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“Our expansion of the WHPC resistor series taps into TT’s extensive expertise and ingenuity in high power density designs,” said Barry Peters, VP Product Management and Engineering, TT Electronics. “By using a high-power density component, we’ve been able to reduce the required PCB footprint, giving designers greater flexibility and higher reliability for their own power conversion and motion control product designs.”

The three new WHPC chip resistors are fully AEC-Q200 qualified and offer a wide range of values from 1R0 to 1M0 and tolerances down to 0.5%. Building on TT’s expertise in specialist chip resistors for use in demanding conditions, the new products are available in 1W (WHPC0508), 1.5W (WHPC0612), and 2W (WHPC1020 chip) sizes. Such high power density components save PCB area and boost reliability by restricting the temperature rise in the component hotspot.

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Source: TT Electronics

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