Allicdata Part #: | S9S12XS256J0VAE-ND |
Manufacturer Part#: |
S9S12XS256J0VAE |
Price: | $ 4.43 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | NXP USA Inc |
Short Description: | IC MCU 16BIT 256KB FLASH 64LQFP |
More Detail: | HCS12X HCS12X Microcontroller IC 16-Bit 40MHz 256K... |
DataSheet: | S9S12XS256J0VAE Datasheet/PDF |
Quantity: | 1000 |
800 +: | $ 4.02318 |
Program Memory Type: | FLASH |
Base Part Number: | S9S12XS256 |
Supplier Device Package: | 64-LQFP (10x10) |
Package / Case: | 64-LQFP |
Operating Temperature: | -40°C ~ 105°C (TA) |
Oscillator Type: | External |
Data Converters: | A/D 8x12b |
Voltage - Supply (Vcc/Vdd): | 1.72 V ~ 5.5 V |
RAM Size: | 12K x 8 |
EEPROM Size: | -- |
Series: | HCS12X |
Program Memory Size: | 256KB (256K x 8) |
Number of I/O: | 44 |
Peripherals: | LVD, POR, PWM, WDT |
Connectivity: | CANbus, SCI, SPI |
Speed: | 40MHz |
Core Size: | 16-Bit |
Core Processor: | HCS12X |
Part Status: | Active |
Packaging: | Tray |
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Embedded - Microcontrollers
The S9S12XS256J0VAE microcontroller is a low-power, 32-bit enhanced microcontroller from NXP. It is a highly efficient, versatile, and cost-effective CPU with advanced programming techniques. Its properties make it an ideal choice for applications in consumer, industrial, automotive and medical markets.
The microcontroller integrates a Cortex-M4 core with an additional DSP core for Analog-to-Digital Converter, Direct Memory Access, and other off-CPU processor tasks. The Cortex-M4 core operates at a maximum frequency of 24.5MHz and has a 256-byte maximum instruction length. It also features several hardware peripherals, including a 10-bit ADC, four-channel Direct Memory Access, single-wire debug, and hardware crypto acceleration. Additionally, it has four communication interface groups – USB, CAN, Ethernet and SPI – and up to a maximum of 512KB Flash and 96KB RAM. It also supports up to 24 external interrupt sources.
Applications
The S9S12XS256J0VAE is well suited for a wide range of applications, including portable and embedded systems, medical equipment, home appliances, instrumentation, automotive applications and digital systems. It is capable of controlling high-speed, low-power devices, including servo motors, touch screens, barcode scanners, Wi-Fi modules and Bluetooth technology.
For more advanced applications, it can be used to control high-frequency devices such as laser printers and color scanners. Additionally, this powerful processor can also function as a low-power co-processor in larger scale embedded systems, providing higher-level control and performance optimization. In medical applications, this processor can be used to provide intricate control over remote patient monitoring systems and medical equipment.
Working Principle
The S9S12XS256J0VAE is a low-power, 32-bit enhanced microcontroller with advanced programming techniques. Its operating principle is based on the Cortex-M4 core, which executes instructions at a maximum clock frequency that can reach up to 24.5MHz. It provides two integrated buses – a data bus and an instruction bus. The microcontroller has up to 512KB Flash and 96KB RAM, which can operate from a power supply of 0.9V to 1.87V.
The S9S12XS256J0VAE features several hardware peripherals, including a 10-bit ADC, four-channel Direct Memory Access, and single-wire debug. The processor integrates four communication interface groups – USB, CAN, Ethernet and SPI – so that the microcontroller can be connected to various digital and analog peripherals. It also supports a maximum of 24 external interrupt sources, which allow the processor to respond to various events in real-time, such as low-power operations, data transmission, and hardware monitoring.
The S9S12XS256J0VAE microcontroller is an efficient and cost-effective CPU that can be used in a wide range of embedded applications, such as portable and embedded systems, medical equipment, home appliances, instrumentation, automotive applications, and digital systems. It can provide intricate control over high-speed and low-power devices, as well as high-frequency devices. Additionally, it can also act as a low-power coprocessor in larger scale embedded systems.
The specific data is subject to PDF, and the above content is for reference
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