Thermal - Liquid Cooling, Heating

Image Part Number Description / PDF Quantity Rfq
9620100

9620100

JULABO

F1000 CHILLER, 1KW, 115V

2

ATS-HE25-C6-R0

ATS-HE25-C6-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH TWO 48V DC F

2

120964

120964

Wakefield-Vette

COLD PLATE HEAT SINK BURIED

11

180-12-12SS

180-12-12SS

Wakefield-Vette

COLD PLATE HEAT SINK 0.018C/W

16

ATS-HE21-C3-R0

ATS-HE21-C3-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH TWO 12V DC F

0

ATS-HE20-C3-R0

ATS-HE20-C3-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH ONE 12V DC F

4

9661017

9661017

JULABO

FL1701 CHILLER, 1.7KW, 115V

1

ATS-HE20-C6-R0

ATS-HE20-C6-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH ONE 48V DC F

2

9661012

9661012

JULABO

FL1201 CHILLER, 1.2KW, 115V

5

ATS-HE25-C4-R0

ATS-HE25-C4-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH TWO 24V DC F

4

ATS-HE22-C4-R0

ATS-HE22-C4-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH ONE 24V DC F

4

ATS-HE24-C2-R0

ATS-HE24-C2-R0

Advanced Thermal Solutions, Inc.

HEAT EXCHANGER WITH ONE 12V DC F

2

1994.00

1994.00

Laird Thermal Systems

PUMP WITH COUPLING PART

1

1155.00

1155.00

Laird Thermal Systems

LIQUID TO LIQUID HEAT EXCHANGER

1

1530.01

1530.01

Laird Thermal Systems

HEAT EXCHANGER 230V 6LPM 3000W

0

1520.00

1520.00

Laird Thermal Systems

HEAT EXCHANGER 230V 4.4LPM 2000W

0

385912-015

385912-015

Laird Thermal Systems

NRC5000-A1-20-SC2

0

385912-001

385912-001

Laird Thermal Systems

NRC5000-A1-20-SC1

0

1505.00

1505.00

Laird Thermal Systems

HEAT EXCHANGER 230V 2.3LPM 500W

0

1550.00

1550.00

Laird Thermal Systems

HEAT EXCHANGER 230V 6.5LPM 5000W

0

Thermal - Liquid Cooling, Heating

1. Overview

Liquid cooling and heating systems are thermal management solutions that use liquid media to transfer heat in electronic, industrial, and mechanical systems. These systems maintain optimal operating temperatures for components by absorbing, transporting, and dissipating heat (cooling) or providing controlled thermal energy (heating). Their importance has grown with increasing power densities in data centers, electric vehicles, and high-performance computing, where traditional air cooling reaches limitations.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Direct-to-Chip Liquid CoolingTargets specific heat sources with cold plates or microchannelsCPU/GPU cooling in servers
Immersion CoolingSubmerges components in dielectric coolantDatacenter server racks
Chiller-Based SystemsUses refrigeration cycles with heat exchangersIndustrial machinery cooling
Heating CirculatorsProvides precise temperature control through liquid heatingMedical device thermal calibration

3. Structure and Components

Typical systems include: - Heat exchangers (cold plates, radiators) - Circulation pumps for liquid movement - Fluid reservoirs with level/pressure monitoring - Thermal interface materials (TIMs) - Temperature sensors and control valves - Corrosion-resistant tubing with quick-disconnect fittings Modern designs often integrate smart controllers for dynamic performance adjustment.

4. Key Technical Specifications

ParameterImportanceTypical Range
Cooling CapacityDetermines maximum heat load removal1-150 kW
Temperature StabilityCritical for sensitive electronics 0.5 C
Flow RateAffects thermal response speed1-20 L/min
Pressure DropImpacts pump selection and efficiency0.5-5 bar
Material CompatibilityPrevents corrosion and leaksCopper, stainless steel, plastics

5. Application Areas

Key industries include: - Data Centers: Liquid-cooled server racks - Automotive: EV battery thermal management - Industrial: Laser cutting machine cooling - Healthcare: MRI scanner temperature control - Renewables: Solar inverter cooling systems

6. Leading Manufacturers

ManufacturerRepresentative ProductUnique Features
AsetekRapid Rack CDUModular datacenter cooling
CoolIT SystemsDLC Direct-to-ChipSealed cold plate technology
DanfossORC TurbostackHigh-efficiency heat recovery
Parker HannifinThermal LoopSpacecraft thermal control

7. Selection Recommendations

Key considerations: - Heat load profile and peak thermal requirements - Space constraints (footprint and height limitations) - Fluid compatibility with existing systems - Maintenance accessibility and service intervals - Energy efficiency (PUE for data centers) - Redundancy requirements for critical systems - Total cost of ownership (TCO) over 5-10 years

8. Industry Trends

Emerging developments include: - Adoption of two-phase immersion cooling in hyperscale data centers - Integration of AI-driven thermal optimization algorithms - Development of nanofluids for enhanced heat transfer - Standardization of liquid cooling interfaces (e.g., OCP standards) - Increased use in EV charging stations (350kW+ fast chargers) - Growth of liquid cooling in 5G base stations and edge computing

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