Evaluation and Demonstration Boards and Kits

Image Part Number Description / PDF Quantity Rfq
MAX1667EVKIT

MAX1667EVKIT

Maxim Integrated

EVAL KIT/SYSTEM MAX1667 (CHEMIST

9

MAX20463EVKIT#

MAX20463EVKIT#

Maxim Integrated

USB TYPE-C DFP PORT PROTECTOR

219

MAX9646EVKIT#

MAX9646EVKIT#

Maxim Integrated

KIT EVAL FOR MAX9644/45/46

6

MAX4754AEVKIT+

MAX4754AEVKIT+

Maxim Integrated

KIT EVAL FOR MAX4754

19

MAX2990EVKITF#

MAX2990EVKITF#

Maxim Integrated

EVAL BOARD FOR MAX2990/1

8

MAX9248EVKIT+

MAX9248EVKIT+

Maxim Integrated

EVAL KIT FOR MAX9248

8

MAX147XXEVKIT#

MAX147XXEVKIT#

Maxim Integrated

EVAL KIT MAX14759, MAX14760X61X6

9

MAX14585EVKIT#

MAX14585EVKIT#

Maxim Integrated

EVAL KIT MAX14585 (HI-SPEED USB

5

MAX17049EVKIT#

MAX17049EVKIT#

Maxim Integrated

EVAL KIT MAX17049 (HOST-SIDE MOD

7

MAX7315EVKIT+

MAX7315EVKIT+

Maxim Integrated

EVAL KIT MAX7315 (8-PORT I/O EXP

18

MAX17320X2EVKIT#

MAX17320X2EVKIT#

Maxim Integrated

EVKIT FOR WLP MODELGAUGE M5 2S-4

711

MAX5474EVKIT+

MAX5474EVKIT+

Maxim Integrated

KIT EVAL FOR MAX5474

9

DS1070K

DS1070K

Maxim Integrated

EVAL/OSCILLATOR PROGRAMMING KIT

17

MAX9293COAXEVKIT#

MAX9293COAXEVKIT#

Maxim Integrated

EVKIT GMSL SERIALIZER FOR COAX A

5

MAXREFDES165#

MAXREFDES165#

Maxim Integrated

4-CHANNEL IO-LINK MASTER

813

MAX14636/7EVKIT#

MAX14636/7EVKIT#

Maxim Integrated

EVAL KIT FOR MAX14636(USB CHARGE

8

MAX96709COAXEVKIT#

MAX96709COAXEVKIT#

Maxim Integrated

14-BIT GMSL SERIALIZER WITH HIM

224

DS28E10EVKIT+

DS28E10EVKIT+

Maxim Integrated

EVAL KIT DS28E10 (1-WIRE SHA-1 A

17

MAX20069EVKIT#

MAX20069EVKIT#

Maxim Integrated

EVAL KIT FOR PWR SUPPLY

111

MAX34460AA00EVKIT#

MAX34460AA00EVKIT#

Maxim Integrated

EVAL KIT FOR MAX34460 PMBUS

0

Evaluation and Demonstration Boards and Kits

Evaluation and Demonstration Boards and Kits are hardware platforms designed to facilitate the development, testing, and demonstration of electronic systems. They serve as critical tools for engineers and developers to prototype applications, validate designs, and accelerate time-to-market. These boards integrate processors, sensors, communication interfaces, and software ecosystems, enabling rapid experimentation across diverse industries such as IoT, automotive, and industrial automation.

TypeFunctional FeaturesApplication Examples
Microcontroller Development BoardsEmbedded CPUs, GPIOs, integrated peripheralsIoT devices, robotics
FPGA Evaluation BoardsReconfigurable logic, high-speed interfacesCommunication systems, AI accelerators
Sensor Expansion KitsMulti-sensor integration (temperature, motion, etc.)Smart agriculture, environmental monitoring
Wireless Communication ModulesBluetooth/Wi-Fi/LoRa protocols, antenna interfacesConnected healthcare, smart cities

Typical architecture includes: - Processing Units: Microcontrollers, FPGAs, or SoCs - Memory: RAM, Flash, EEPROM - Interfaces: USB, UART, SPI, I2C, Ethernet - Power Management: Regulators, battery connectors - Software Stack: SDKs, device drivers, IDEs Physical designs often feature standardized form factors (e.g., Arduino Uno, Raspberry Pi HATs) for modular expansion.

ParameterDescription
Processor Performance (MHz/GHz)Determines computational capability
Memory Capacity (RAM/Flash)Affects program complexity and data storage
Interface TypesDictates peripheral compatibility
Power Consumption (mW/MHz)Critical for battery-operated devices
Operating Temperature (-40 C to +85 C)Defines environmental durability

- Internet of Things (IoT): Smart home controllers, edge AI nodes - Automotive: ADAS sensor fusion platforms - Industrial Automation: PLC controllers, predictive maintenance systems - Consumer Electronics: Wearables, AR/VR prototypes

ManufacturerRepresentative Products
STMicroelectronicsSTM32 Nucleo Series, SensorTile Kit
IntelIntel Edison, Movidius Neural Compute Stick
XilinxZynq UltraScale+ MPSoC Evaluation Kit
ArduinoArduino MKR Series, Nano 33 IoT

Key considerations: 1. Match processor capabilities to application complexity 2. Verify interface compatibility with target peripherals 3. Assess software ecosystem maturity (e.g., ROS support) 4. Evaluate power budget requirements 5. Consider long-term availability and community support

- Growing adoption of RISC-V-based evaluation platforms - Integration of AI/ML accelerators in edge computing boards - Expansion of open-source hardware ecosystems - Increased focus on energy-efficient architectures for IoT - Standardization of form factors (e.g., SparkFun's Qwiic system)

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