P1016NXN5BFB Allicdata Electronics
Allicdata Part #:

P1016NXN5BFB-ND

Manufacturer Part#:

P1016NXN5BFB

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: P1016NXN5BFB datasheetP1016NXN5BFB Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Ethernet: 10/100/1000 Mbps (3)
Base Part Number: P1016
Additional Interfaces: DUART, I²C, MMC/SD, SPI
Supplier Device Package: 561-TEPBGA1 (23x23)
Package / Case: 561-FBGA
Security Features: --
Operating Temperature: -40°C ~ 125°C (TA)
Voltage - I/O: --
USB: USB 2.0 + PHY (2)
SATA: --
Series: QorIQ P1
Display & Interface Controllers: --
Graphics Acceleration: No
RAM Controllers: DDR2, DDR3
Co-Processors/DSP: Communications; QUICC Engine
Speed: 667MHz
Number of Cores/Bus Width: 1 Core, 32-Bit
Core Processor: PowerPC e500v2
Part Status: Obsolete
Packaging: Tray 
Description

Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us:   sales@allicdata.com

Embedded technology has been around for decades, and one of the most commonly used technologies is the microprocessor. The P1016NXN5BFB is an example of an embedded microprocessor that is used for a variety of industrial, scientific, and military applications. In this article, we will discuss the application field and working principle of the P1016NXN5BFB.

The P1016NXN5BFB is a high performance 8-bit microcontroller with a 32-bit ARM Cortex-M3 processor core. It has an integrated memory management unit, an embedded vectorized floating-point coprocessor, a peripheral bridge, an integrated temperature sensor, and an enhanced capacitive touch sensing capability. The microcontroller is designed to provide high performance and efficient system solutions for embedded applications in low-power energy-restricted environments. It is well suited for industrial automation, robotics, avionics, and automotive applications.

Due to its power efficiency, the P1016NXN5BFB is ideal for embedded applications in portable and mobile devices. It is also suitable for applications that require low latency, real-time control and computing performance. Additionally, the device is used in low-end computational tasks such as audio processing and image recognition.

As for its working principle, the P1016NXN5BFB is based on the Harvard architecture, which consists of separate instruction and data memories. The instruction memory contains instructions that are required to be executed by the processor, while the data memory stores data received from or to be sent to external systems. The processor needs to read both the instruction and data memories to complete an instruction cycle. This can be done by means of interrupted read and write instructions.

The ARM Cortex-M3 processor core at the heart of the P1016NXN5BFB enables it to achieve high speed, low power consumption, and reduced system size. The integrated memory management unit and the embedded vectorized floating-point coprocessor are responsible for providing the necessary computing power. Furthermore, the peripheral bridge allows the microcontroller to communicate with various external systems and the integrated temperature sensor enables it to detect the temperature of its environment.

The P1016NXN5BFB can also be used for capacitive touch sensing. Its enhanced capacitive touchalgorithm allows the microcontroller to accurately detect near touch inputs with high reliability. This makes it perfect for applications where users input commands through a touch panel or touch screen.

The P1016NXN5BFB is suitable for use in industrial, scientific, and military applications thanks to its high performance and low power consumption. Its embedded vectorized floating-point coprocessor, integrated memory management unit, peripheral bridge, and enhanced capacitive touch sensing capability make it ideal for real-time applications in low-power energy-restricted environments, as well as for capacitive touch sensing in consumer electronics devices. The microcontroller’s Harvard architecture makes it an efficient choice for instruction and data processing.

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

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