P1015NXN5BFB Allicdata Electronics
Allicdata Part #:

P1015NXN5BFB-ND

Manufacturer Part#:

P1015NXN5BFB

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: NXP USA Inc
Short Description: IC MPU Q OR IQ 667MHZ 561TEBGA1
More Detail: PowerPC e500v2 Microprocessor IC QorIQ P1 1 Core, ...
DataSheet: P1015NXN5BFB datasheetP1015NXN5BFB Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: QorIQ P1
Packaging: Tray 
Part Status: Obsolete
Core Processor: PowerPC e500v2
Number of Cores/Bus Width: 1 Core, 32-Bit
Speed: 667MHz
Co-Processors/DSP: --
RAM Controllers: DDR3
Graphics Acceleration: No
Display & Interface Controllers: --
Ethernet: 10/100/1000 Mbps (3)
SATA: --
USB: USB 2.0 + PHY (2)
Voltage - I/O: --
Operating Temperature: -40°C ~ 125°C (TA)
Security Features: --
Package / Case: 561-FBGA
Supplier Device Package: 561-TEPBGA1 (23x23)
Additional Interfaces: DUART, I²C, MMC/SD, SPI
Base Part Number: P1015
Description

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Embedded - Microprocessors

P1015NXN5BFB is a high-performance microcontroller specially designed for embedded applications. It is based on a RISC-architecture with a wide-range feature set and low power consumption. This microcontroller is used in a large variety of applications, such as home and industrial automation, medical, automotive and consumer electronics.

Features

The P1015NXN5BFB microcontroller has 16kb of Flash memory, 1kb of RAM and 256 bytes of EEPROM. It is capable of running at up to 60MHz and can operate at temperatures ranging from -40°C to +85°C. It also has a 10-bit Analog to Digital Converter (ADC), UART, SPI and I2C peripherals. In addition, the microcontroller has several power management features such as low power sleep mode, clock gating and power-down mode. In the sleep mode, the core voltage is reduced to conserve power. In the power-down mode, the core voltage is completely shut down. The clock gating feature reduces the frequency of unused peripherals to further conserve power.

Application Field

The P1015NXN5BFB is suitable for embedded system design and its applications are quite diverse. It is used in a variety of home and industrial automation applications such as automated lighting, air conditioning, security systems, factory automation and hydraulic control systems. It is also used in automotive applications such as engine control, airbag deployment systems, passive restraint systems and car-radio control systems. It is also widely used in medical applications such as MRI and cardiac pacemaker systems. Furthermore, it is used in consumer electronic applications such as gaming consoles, LCD and plasma display devices.

Working Principle

The working principle of the P1015NXN5BFB microcontroller is based on its RISC-architecture. It is an 8-bit microcontroller which can execute instructions in single-cycle mode. This means that it can execute a set of instructions in a single clock cycle. The instruction set includes basic arithmetic and logical operations, as well as memory access and interrupt control. The microcontroller is driven by an external clock signal. The clock signal is provided by an external clock source, such as a quartz crystal or ceramic resonator. The clock signal is then divided down to a frequency that is suitable for the microcontroller. The microcontroller is interfaced with other external devices and peripherals using input and output pins. The input pins are used to read data from external devices and the output pins are used to control them. Furthermore, the microcontroller is programmed using an assembly language or a high-level programming language, such as C or C++. To program the microcontroller, an editor is used to write the source code which then the converted into an object code. This object code is then loaded into the microcontroller and executed.

Conclusion

The P1015NXN5BFB microcontroller is a high-performance, low power microcontroller specially designed for embedded applications. It is used in a wide variety of applications, such as home and industrial automation, automotive, medical and consumer electronics. Its wide-ranged feature set and low power consumption make it an ideal choice for embedded system design. Its working principle is based on its RISC-architecture and it is programmed using an assembly language or a high-level programming language.

The specific data is subject to PDF, and the above content is for reference

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