Skip to main content

Thermal Management

Thermal management ICs monitor and control temperature in electronic systems using on-chip or remote diode temperature sensors, fan speed controllers, and thermal shutdown circuits. Available from TI, ADI (MAX), Microchip, and onsemi for server, networking, and automotive applications.

Request Quote
307+Products
7+Manufacturers
100%Original & New
GlobalDelivery

Product Series & Base Models

Navigate by model series to compare ordering variants and technical specifications within the Thermal Management family.

Browse Thermal Management Products

Showing 21–30 of 307 products
PART NUMBERMANUFACTURERDESCRIPTIONSTOCKQTY / ACTION
LM64CILQ-FTexas Instruments2,702
LM63DIMAXTexas Instruments21,000
LM63DIMATexas Instruments14,400
LM63CIMAXTexas Instruments1,606
AMC6821SDBQG4Texas Instruments883
AMC6821SDBQRTexas Instruments10,620
STTS2002B2DN3FSTMicroelectronicsTemp Monitoring System (Sensor) -40°C ~ 125°C Internal Sensor I2C/SMBus Output 8-TDFN (2x3)31,560
STTS2004B2DN3FSTMicroelectronicsTemp Monitoring System (Sensor), DIMM DDR Memory -20°C ~ 125°C Internal Sensor 2-Wire Serial, I2C Output 8-TDFN (2x3)24,960
STTS424BDN3FSTMicroelectronicsTemp Monitoring System (Sensor) -40°C ~ 125°C Internal Sensor I2C/SMBus Output 8-TDFN (2x3)2,479
STTS3000B2DN3FSTMicroelectronicsTemp Monitoring System (Sensor), DIMM DDR Memory -40°C ~ 125°C Internal Sensor 2-Wire Serial, I2C/SMBUS Output 8-TDFN (2x3)2,970

About Thermal Management

Thermal Management ICs are specialized monitoring and control devices designed to measure temperature, manage cooling fan speeds, and trigger overtemperature shutdown interrupts, ensuring electronic boards operate within safe thermal limits. By offloading thermal tracking from the main host CPU, thermal management chips prevent thermal runaway and extend the operating life of high-power ASICs, CPUs, and power converter stages.

This category includes digital temperature sensor chips (interfaced via I2C, SPI, or 1-Wire), remote diode temperature monitors (which read temperature from integrated diodes in CPUs or FPGAs), fan controllers with closed-loop RPM regulation, and hardware thermal switches. Key parameters focus on temperature accuracy (+/-0.5C or better), operating temperature range (-40C to 125C+), channel count, interface, and standby current.

Browse Octatronics to search and compare thermal management ICs from industry giants including Analog Devices (Maxim), Texas Instruments, Microchip Technology, and onsemi. Filter by sensor type, accuracy, package style, and submit bulk RFQs online for competitive pricing.

Frequently Asked Questions

Octatronics can help source a wide range of Thermal Management from major manufacturers worldwide, including active production parts, long-lead-time items, and hard-to-find components.

Yes. You can submit a single part number or upload a BOM with multiple parts. Our team will check stock, date code, lead time, and pricing for each item.

Availability depends on the specific part number and supplier source. For important orders, buyers can request packaging photos, labels, date code information, and traceability documents.

Yes. Octatronics supports sourcing for active, end-of-life, obsolete, and hard-to-find components through our global supplier network.

Please provide the part number, manufacturer, quantity, required date code, target price, delivery country, and whether original packaging or COC is required.

Articles & Technology

View All →

Top Semiconductor Companies in 2026: Manufacturers, Foundries, Fabless Firms and IDMs

NVIDIA led semiconductor vendor revenue in 2025, while TSMC dominated pure-play foundry sales. This guide explains why those rankings measure different things—and gives engineers and buyers a practical framework for selecting manufacturers by component category, lifecycle, qualification, and supply risk.

2026-08-11
Circuit Board Component Identification: How to Identify PCB Components by Markings, Shape, and Codes

Circuit Board Component Identification: How to Identify PCB Components by Markings, Shape, and Codes

Circuit board component identification means recognizing PCB parts by their reference designators, physical appearance, body markings, polarity marks, package type, and electrical function. The fastest way to identify a component is to start with the PCB silkscreen, match the reference letter to a component type, inspect its shape and package, read any value or top marking, then confirm the result with a datasheet, schematic, BOM, or measurement tool. This guide explains how to identify common PCB components such as resistors, capacitors, inductors, diodes, transistors, MOSFETs, ICs, connectors, fuses, relays, crystals, and test points. It also includes practical examples, common marking codes, polarity clues, mistakes to avoid, and a replacement sourcing checklist.

2026-06-28
LDO vs Buck Converter: How to Choose the Right Voltage Regulator for Your Circuit

LDO vs Buck Converter: How to Choose the Right Voltage Regulator for Your Circuit

An LDO regulator is simple, compact, and low-noise, making it a good choice for low-current circuits, small voltage drops, and noise-sensitive rails such as ADCs, sensors, RF blocks, and analog circuits. A buck converter is usually more efficient when stepping down from a much higher input voltage or supplying moderate to high current, making it better for main power rails, battery-powered systems, industrial inputs, and digital loads. In many designs, the best solution is a buck converter followed by an LDO, combining high efficiency with cleaner output power.

2026-06-26
Thermal Resistance Explained: thetaJA, thetaJC, psiJT, Power Dissipation, and Derating

Thermal Resistance Explained: thetaJA, thetaJC, psiJT, Power Dissipation, and Derating

Thermal resistance metrics such as thetaJA, thetaJC, and psiJT help estimate semiconductor junction temperature, but each metric has a different purpose. thetaJA is useful for standardized package comparison, thetaJC applies to controlled case or heat-sink paths, and psiJT is often used with measured package-top temperature. Buyers should review thermal data before approving power ICs, regulators, MOSFETs, and package substitutions because identical electrical ratings do not guarantee the same thermal margin.

2026-06-24
IC Top Marking Codes Explained: How to Identify SMD Chips from Package Markings

IC Top Marking Codes Explained: How to Identify SMD Chips from Package Markings

IC top marking codes are abbreviated package markings used to identify semiconductor devices, especially small SMD chips that cannot fit a full part number. Buyers should use the marking as a starting point, then verify manufacturer logo, package, pin count, date code, lot code, datasheet, packing label, and supplier documentation. Official manufacturer marking tools and datasheets should be used before relying on third-party SMD code databases.

2026-06-24
How to Find Pin-Compatible Alternatives for Obsolete ICs

How to Find Pin-Compatible Alternatives for Obsolete ICs

Finding a pin-compatible alternative for an obsolete IC is not just about matching the package. It requires a structured review of pinout, footprint, electrical parameters, functional behavior, lifecycle status, sourcing reliability, and sample validation.

2026-06-08
Pin-to-Pin Replacement Parts: How to Check Compatibility Before Sourcing

Pin-to-Pin Replacement Parts: How to Check Compatibility Before Sourcing

When an original electronic component becomes obsolete, unavailable, or too expensive, a pin-to-pin replacement part can help avoid PCB redesign and keep production or repair projects moving. However, pin-to-pin compatibility does not automatically mean the part is a safe drop-in replacement. This guide explains how to check package, footprint, pinout, electrical ratings, thermal performance, timing behavior, firmware requirements, compliance status, and lifecycle risk before sourcing replacement parts. It also provides a practical checklist to help engineers, buyers, and maintenance teams reduce sourcing mistakes and verify compatibility before purchase.

2026-06-02
How to Choose Electronic Components for Reliable Hardware Design

How to Choose Electronic Components for Reliable Hardware Design

Learn how to choose electronic components for reliable hardware design, including specifications, lifecycle status, sourcing risks, quality checks, and BOM optimization.

2026-04-30