EP1S40F780I7
EP1S40F780I7
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rohs

Altera Corporation

EP1S40F780I7


EP1S40F780I7
F53-EP1S40F780I7
Active
FIELD PROGRAMMABLE GATE ARRAY, CMOS, BGA, BGA780,28X28,40
BGA, BGA780,28X28,40

EP1S40F780I7 ECAD Model


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EP1S40F780I7 Attributes


Type Description Select
Pbfree Code No
Rohs Code No
Part Life Cycle Code Transferred
Supply Voltage-Nom 1.5 V
Number of Inputs 822
Number of Outputs 822
Number of Logic Cells 41250
Programmable Logic Type FIELD PROGRAMMABLE GATE ARRAY
Package Shape SQUARE
Technology CMOS
Power Supplies 1.5,1.5/3.3 V
Supply Voltage-Max 1.575 V
Supply Voltage-Min 1.425 V
JESD-30 Code S-PBGA-B780
Qualification Status Not Qualified
JESD-609 Code e0
Moisture Sensitivity Level 3
Peak Reflow Temperature (Cel) 220
Number of Terminals 780
Package Body Material PLASTIC/EPOXY
Package Code BGA
Package Equivalence Code BGA780,28X28,40
Package Shape SQUARE
Package Style GRID ARRAY
Surface Mount YES
Terminal Finish TIN LEAD
Terminal Form BALL
Terminal Pitch 1 mm
Terminal Position BOTTOM
Ihs Manufacturer ALTERA CORP
Part Package Code BGA
Package Description BGA, BGA780,28X28,40
Pin Count 780
Reach Compliance Code compliant
HTS Code 8542.39.00.01

EP1S40F780I7 Datasheet Download


EP1S40F780I7 Overview



The chip model EP1S40F780I7 is a high-performance, low-power field programmable gate array (FPGA) device from Altera. It is suitable for a wide range of applications such as high-performance digital signal processing, embedded processing, image processing, and so on. It is designed to be used with the HDL (Hardware Description Language) for programming and developing FPGA devices.


The EP1S40F780I7 chip model is equipped with a rich set of features and capabilities. It has a high-speed transceiver capability with a maximum data rate of up to 10.3125 Gbps, and can support up to 1,024 logic elements. It also features low-power operation, with a power consumption of only 1.2 W. Moreover, it has a small form factor, making it suitable for a variety of applications.


In terms of product description and design requirements, the EP1S40F780I7 chip model is a highly configurable device that can be used to design and implement a wide range of applications. It has an integrated memory controller, which can be used to control external memory devices. It also has a wide range of I/O interfaces, which can be used to connect to various peripherals. Additionally, it has a built-in phase-locked loop (PLL) and clock management circuitry, which can be used to generate and manage clock signals.


In terms of actual case studies and precautions, the EP1S40F780I7 chip model has been successfully used in a variety of applications. For example, it has been used in digital signal processing applications such as image processing, audio processing, and video processing. It has also been used in embedded processing applications such as motor control, embedded controllers, and industrial automation. In addition, it has been used in a variety of other applications such as medical imaging and communication systems.


As for the application of the EP1S40F780I7 chip model to the development and popularization of future intelligent robots, it is certainly possible. The chip model has the necessary features and capabilities to be used in the development of robots. For example, it has a high-speed transceiver capability, which can be used to send and receive data from the robot. It also has a wide range of I/O interfaces, which can be used to connect the robot to various peripherals. In addition, it has a built-in PLL and clock management circuitry, which can be used to generate and manage clock signals for the robot’s operations.


In order to use the EP1S40F780I7 chip model effectively, certain technical talents are needed. For example, the user should have a good understanding of HDL programming and the FPGA development process. Additionally, the user should have knowledge of the chip model’s features and capabilities, and be familiar with the various I/O interfaces and memory controllers. Finally, the user should also have knowledge of the various applications that the chip model can be used for, such as digital signal processing, embedded processing, and image processing.



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