EP20K160EQC240-2N
EP20K160EQC240-2N
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rohs

Altera Corporation

EP20K160EQC240-2N


EP20K160EQC240-2N
F53-EP20K160EQC240-2N
Active
LOADABLE PLD, 1.93 ns, CMOS, FQFP, QFP240,1.3SQ,20
FQFP, QFP240,1.3SQ,20

EP20K160EQC240-2N ECAD Model


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EP20K160EQC240-2N Attributes


Type Description Select
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Transferred
Supply Voltage-Nom 1.8 V
Propagation Delay 1.93 ns
Number of Inputs 167
Number of Outputs 167
Number of Logic Cells 6400
Number of Dedicated Inputs 4
Number of I/O Lines 175
Programmable Logic Type LOADABLE PLD
Temperature Grade OTHER
Package Shape SQUARE
Technology CMOS
Organization 4 DEDICATED INPUTS, 175 I/O
Clock Frequency-Max 160 MHz
Output Function MACROCELL
Power Supplies 1.8,1.8/3.3 V
Supply Voltage-Max 1.89 V
Supply Voltage-Min 1.71 V
JESD-30 Code S-PQFP-G240
Qualification Status Not Qualified
JESD-609 Code e3
Moisture Sensitivity Level 3
Operating Temperature-Max 85 °C
Number of Terminals 240
Package Body Material PLASTIC/EPOXY
Package Code FQFP
Package Equivalence Code QFP240,1.3SQ,20
Package Shape SQUARE
Package Style FLATPACK, FINE PITCH
Surface Mount YES
Terminal Finish MATTE TIN
Terminal Form GULL WING
Terminal Pitch 500 µm
Terminal Position QUAD
Width 32 mm
Length 32 mm
Seated Height-Max 4.1 mm
Ihs Manufacturer ALTERA CORP
Part Package Code QFP
Package Description FQFP, QFP240,1.3SQ,20
Pin Count 240
Reach Compliance Code compliant
HTS Code 8542.39.00.01

EP20K160EQC240-2N Datasheet Download


EP20K160EQC240-2N Overview



The chip model EP20K160EQC240-2N is an advanced Field Programmable Gate Array (FPGA) device developed by Altera Corporation. It is designed to provide a high-performance, low-cost solution for a variety of embedded applications. This model is based on the Stratix II GX family of FPGAs and features a high-density architecture with up to 160,000 logic elements and up to 240 I/O pins. It also offers a wide range of features such as high-speed transceivers, embedded memory blocks, and high-performance DSP blocks.


The original design intention of the chip model EP20K160EQC240-2N is to provide a cost-effective solution for embedded applications. It is suitable for a wide range of applications such as industrial automation, automotive, aerospace, medical, and consumer electronics. The model is also suitable for developing advanced communication systems, as it provides high-speed transceivers and embedded memory blocks for data processing.


In terms of future upgrades, the chip model EP20K160EQC240-2N can be further enhanced by adding additional logic elements and I/O pins. This will enable higher performance and increased flexibility for the device. In addition, the model can be used in combination with other Altera products to provide a comprehensive solution for embedded applications.


When it comes to the product description and specific design requirements of the chip model EP20K160EQC240-2N, it is important to consider the power consumption, temperature range, and other parameters that are necessary for the device to operate correctly. In addition, the user should also take into account the actual case studies and precautions when using the model. This includes understanding the device’s limitations and the potential risks associated with its use.


In terms of its application to the development and popularization of future intelligent robots, the chip model EP20K160EQC240-2N can be used to provide the necessary hardware for the robots. It can be used to control the robot’s movements and provide the necessary processing power for data processing. However, it is important to note that using this model effectively requires technical expertise in embedded systems and digital signal processing.


In conclusion, the chip model EP20K160EQC240-2N is a powerful and cost-effective solution for embedded applications. It can be used to develop advanced communication systems and can be further enhanced with additional logic elements and I/O pins. The product description and specific design requirements of the model should be taken into consideration, along with actual case studies and precautions. Finally, the model can be used to develop and popularize future intelligent robots, although it requires technical expertise to use it effectively.



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