PCX8-12-F2-2525-TA-RT-W6

The PCX8-12-F2-2525-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 68.9 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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PCX7-159-F1-1466-TA-RT-W6

The PCX7-159-F1-1466-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 78.6 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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PCX7-156-F2-1672-TA-RT-W6

The PCX7-156-F2-1672-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 76.5 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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PCX4-6-F1-2040-TA-RT-W6

The PCX4-6-F1-2040-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 16.8 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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PCX4-139-F1-1850-TA-RT-W6

The PCX4-139-F1-1850-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 37.9 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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PCX10-223-F1-3172-TA-RT-W6

The PCX10-223-F1-3172-TA-RT-W6 is a high-performance thermoelectric cooler designed for thermal cycling between multiple temperature set points and is ideal for applications in healthcare among others, where fast temperature changes are required. The thermoelectric module is specially constructed to reduce the amount of stress induced on the thermoelectric elements during operation. It has a maximum Qc of 155.7 Watts when ΔT = 0 and a maximum ΔT of 73.6 °C at Qc = 0.


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Laird Thermal Systems’ new chiller ensures quality resolution for digital microscopes


The advanced design of Laird Thermal Systems’ new thermoelectric-based Nextreme NRC400 Performance Chiller provides a reliable cooling solution for digital light microscope applications. This next generation recirculating chiller achieves 400 W of cooling capacity and a temperature control stability to within ±0.05° C under steady-state conditions to ensure high resolution images and long-life operation with zero global warming potential.





OEM Perspectives: Nextreme™ Value Chiller for Mass Spectrometry






Mass Spectrometers generate large amounts of heat during operation that must be quickly dissipated. The Nextreme™ Value Chiller offers high reliability, precise temperature control, low maintenance features at a low cost for mass spectrometry OEMs.



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OEM Perspectives: Recirculating Chillers for Industrial Lasers

Introduction

Industrial lasers are used for a wide range of applications including cutting, welding, micro-machining, additive manufacturing and drilling. No matter the application, industrial laser systems generate a significant amount of heat. There are several different types of industrial laser technologies, ultimately distinguished by the power density of the laser and its use. For all laser technologies, OEMs seek advanced cooling of the power source and the laser optics.




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OEM Perspectives: Thermal Management of Electron Microscopes

Introduction

Electron microscopes are powerful laboratory tools used to observe samples across many scientific disciplines. These advanced analytical instruments enable researchers to qualitatively and quantitatively analyze samples in fields like metallography, metrology, anthropology, zoology, epidemiology and more. Temperature control plays a dynamic role in ensuring the proper operation of electron microscopes.




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