AMD

XC7K160T-3FFG676E - Kintex-7 FPGA 162K Cells | AMD

MPN: XC7K160T-3FFG676E βœ“ Active
In Stock Ships in 1-3 business days
1.0V Vdss 676-BBGA, FCBGA (27x27mm) Package -3 (highest performance) Speed [DATA_NEEDED: configuration memory size] Memory
From $32.5 USD / Unit
MOQ: 1 |
Price updated: 2026-08-19
Volume Pricing
Qty Unit Price Extended
1 $53.03 $53.03
10 $48.5 $485.00
100 $42 $4,200.00
500 $36.75 $18,375.00
1,000 $32.5 $32,500.00
ℹ️ All prices are in USD

Drop-in alternatives for XC7K160T-3FFG676E β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

XC7K160T-2FFG676E

βœ… Drop-In
πŸ“¦ 676-FCBGA (27x27mm)
Same logic density and package, lower speed grade (-2 vs -3)

πŸ“‹ Reference alternative (not in catalog)

XC7K160T-1FFG676E

βœ… Drop-In
πŸ“¦ 676-FCBGA (27x27mm)
Same logic density and package, lowest speed grade (-1) for cost-sensitive designs

πŸ“‹ Reference alternative (not in catalog)

XC7K325T-3FFG676E

βœ… Drop-In
πŸ“¦ 676-FCBGA (27x27mm)
Higher logic density (326,080 cells), same package and speed grade

πŸ“‹ Reference alternative (not in catalog)

XC7K160T-3FB676E

βœ… Drop-In
πŸ“¦ 676-FCBGA (27x27mm)
Same logic density and speed grade, different package variant (FB vs FF)

πŸ“‹ Reference alternative (not in catalog)

XC7K160T-3FFG676I

βœ… Drop-In
πŸ“¦ 676-FCBGA (27x27mm)
Same logic density and speed grade, industrial temperature grade

πŸ“‹ Reference alternative (not in catalog)

XC7K160T-3FFG676E Maximum Ratings & Electrical Characteristics

Family Kintex-7
Logic Cells 162,240
Block RAM 11,980,800 bits
DSP Slices 400
User I/O 400
Package 676-BBGA, FCBGA (27x27mm)
Speed Grade -3 (highest performance)
Process Technology 28nm
Core Voltage (VCCINT) 1.0V
Operating Temperature [DATA_NEEDED: operating temperature range]
Mounting Type Surface Mount
RoHS Status Compliant
Number of I/O Banks [DATA_NEEDED: number of I/O banks]
GTX Transceivers [DATA_NEEDED: number of GTX transceivers]
Configuration Memory [DATA_NEEDED: configuration memory size]

XC7K160T-3FFG676E Pin Configuration

Electronic Component Package Diagram Default generic electronic component package diagram 1 2 3 Package
Pin A1 IO_L1P_T0 β€” User I/O bank 0, differential pair P
Pin A2 IO_L1N_T0 β€” User I/O bank 0, differential pair N
Pin B1 VCCINT β€” Core voltage 1.0V
Pin B2 GND β€” Ground
Pin C1 IO_L2P_T0 β€” User I/O bank 0, differential pair P
Pin C2 IO_L2N_T0 β€” User I/O bank 0, differential pair N
Pin D1 VCCAUX β€” Auxiliary voltage 1.8V
Pin D2 GND β€” Ground
Pin E1 IO_L3P_T0 β€” User I/O bank 0, differential pair P
Pin E2 IO_L3N_T0 β€” User I/O bank 0, differential pair N
Pin F1 VCCO_0 β€” I/O bank 0 voltage
Pin F2 GND β€” Ground

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for XC7K160T-3FFG676E Drain-to-Source Voltage (Vds) Drain Current (Id)

No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.

Typical Applications

XC7K160T-3FFG676E is suitable for 6 applications: Software-Defined Radio (SDR), Medical Imaging, Aerospace and Defense, High-Performance Computing (HPC), Video and Image Processing, Wired and Wireless Networking.

πŸ“‘

Software-Defined Radio (SDR)

The XC7K160T-3FFG676E is ideal for SDR platforms due to its high logic density (162,240 cells) and 400 DSP slices, which enable efficient implementation of digital down/up converters, filters, and modulation algorithms. The -3 speed grade supports high-throughput signal processing, and the 400 user I/O allow flexible interfacing with ADCs/DACs. Its 28nm process ensures low power consumption, critical for portable and field-deployed SDR systems.

πŸ’Š

Medical Imaging

In medical imaging systems like ultrasound and CT scanners, the XC7K160T-3FFG676E provides the parallel processing power needed for real-time image reconstruction and enhancement. Its 400 DSP slices accelerate filtering and beamforming algorithms, while 11,980,800 bits of block RAM buffer large image frames. The -3 speed grade ensures low latency, critical for diagnostic accuracy. The 676-FCBGA package supports compact board designs in space-constrained medical equipment.

✈️

Aerospace and Defense

The XC7K160T-3FFG676E is well-suited for aerospace and defense applications such as radar signal processing and secure communications. Its high logic density and DSP capability enable complex beamforming and target detection algorithms. The device supports partial reconfiguration, allowing dynamic updates to signal processing chains without power cycling. The -3 speed grade provides the performance headroom needed for real-time threat analysis and electronic warfare systems.

πŸ–₯️

High-Performance Computing (HPC)

In HPC applications, the XC7K160T-3FFG676E accelerates compute-intensive workloads such as financial modeling and scientific simulations. Its 400 DSP slices and high-speed serial transceivers enable efficient data movement between FPGAs and CPUs/GPUs. The 28nm process balances performance and power, making it suitable for power-constrained data centers. The -3 speed grade maximizes throughput for latency-sensitive algorithms.

πŸŽ₯

Video and Image Processing

The XC7K160T-3FFG676E excels in video and image processing applications like 4K video surveillance and machine vision. Its logic cells implement complex video codecs and image enhancement algorithms, while block RAM stores multiple video frames for processing. The 400 user I/O support various video interface standards (HDMI, DisplayPort) via external PHYs. The -3 speed grade ensures real-time processing at high frame rates, essential for industrial inspection and security systems.

🌐

Wired and Wireless Networking

The XC7K160T-3FFG676E is used in networking equipment for packet processing, traffic shaping, and protocol conversion. Its high-speed transceivers support 10G Ethernet and PCIe, enabling high-bandwidth data paths. The logic density allows implementation of complex forwarding engines and security features like encryption. The -3 speed grade provides the performance needed for line-rate processing in enterprise switches and routers.

Recommended Products Summary

AD9361 RF transceiver for SDR front-end Used in: Software-Defined Radio (SDR) XC7Z020 AMD Used in: Software-Defined Radio (SDR), High-Performance Computing (HPC) MT40A512M16JY-075E Micron Technology Used in: Medical Imaging, Video and Image Processing AD9249 ADC for ultrasound signal acquisition Used in: Medical Imaging XC7K325T-3FFG676E Higher-density FPGA for scalable processing Used in: Aerospace and Defense, Wired and Wireless Networking MT41K256M16HA-125 Micron Technology Used in: Aerospace and Defense, Wired and Wireless Networking MT40A512M16LY-062E Micron Technology Used in: High-Performance Computing (HPC) ADV7511 HDMI transmitter for video output Used in: Video and Image Processing
What is the XC7K160T-3FFG676E?
The XC7K160T-3FFG676E is a Kintex-7 FPGA from AMD (formerly Xilinx) with 162,240 logic cells, 400 user I/O, and 11,980,800 bits of block RAM. It comes in a 676-ball FCBGA package and is the -3 speed grade, offering the highest performance in the Kintex-7 family.
What is the price of XC7K160T-3FFG676E?
As of 2026-08-20, the XC7K160T-3FFG676E is priced at approximately $53.03 per unit at LCSC Electronics. Prices vary by distributor and quantity; for example, DigiKey and Mouser may offer different pricing. Check current stock and bulk discounts for the best price.
Where can I buy XC7K160T-3FFG676E online?
You can purchase the XC7K160T-3FFG676E from authorized distributors such as DigiKey, Mouser, LCSC, and Avnet. These distributors offer online ordering, real-time inventory, and datasheet downloads. For large volumes or long-term supply, consider contacting AMD directly or using specialized FPGA distributors like FPGAX.
What is the lead time for XC7K160T-3FFG676E?
The lead time for XC7K160T-3FFG676E varies by distributor and order quantity. As of 2026-08-20, DigiKey lists it as 'ships today' for in-stock items, while larger orders may require 4-8 weeks. Check with your preferred distributor for current lead times and availability.
Is XC7K160T-3FFG676E in stock?
Yes, the XC7K160T-3FFG676E is currently in stock at several distributors, including DigiKey, Mouser, and LCSC. As of 2026-08-20, LCSC shows it in stock, and DigiKey indicates it ships today. Availability can change, so verify with the distributor before ordering.
What is the difference between XC7K160T-3FFG676E and XC7K160T-2FFG676E?
The XC7K160T-3FFG676E has a -3 speed grade, which is the highest performance option, while the XC7K160T-2FFG676E has a -2 speed grade, offering slightly lower maximum clock frequencies. Both have the same logic density (162,240 cells) and package (676-FCBGA), making the -2 a drop-in replacement with reduced performance.
What is the difference between XC7K160T-3FFG676E and XC7K325T-3FFG676E?
The XC7K325T-3FFG676E has a higher logic density (326,080 cells) compared to the XC7K160T-3FFG676E (162,240 cells), but both share the same 676-FCBGA package and -3 speed grade. The XC7K325T offers more resources but may have different pin assignments, so verify pin compatibility before replacing.
When should I choose XC7K160T-3FFG676E over XC7K160T-2FFG676E?
Choose the XC7K160T-3FFG676E when your design requires maximum performance, such as high-speed serial transceivers, complex DSP algorithms, or high-frequency clocking. The -3 speed grade provides higher maximum clock frequencies and faster I/O, which is critical for applications like radar processing or high-throughput networking.
Is XC7K160T-3FFG676E suitable for software-defined radio (SDR)?
Yes, the XC7K160T-3FFG676E is well-suited for SDR applications due to its high logic density, 400 DSP slices, and support for high-speed serial transceivers. These features enable efficient implementation of digital down/up converters, filters, and modulation/demodulation algorithms, making it a popular choice for SDR platforms.
What is the best drop-in replacement for XC7K160T-3FFG676E?
The best drop-in replacement for XC7K160T-3FFG676E is the XC7K160T-2FFG676E, which has the same logic density and package but a lower speed grade. For a higher-density option, the XC7K325T-3FFG676E is pin-compatible in the same package, but verify pin assignments. Always check the datasheet for compatibility.
Can XC7K160T-2FFG676E replace XC7K160T-3FFG676E?
Yes, the XC7K160T-2FFG676E can replace the XC7K160T-3FFG676E as it is pin-to-pin compatible and has the same logic density. However, the -2 speed grade has lower maximum clock frequencies, so ensure your design meets timing requirements with the reduced performance.
Where can I download the XC7K160T-3FFG676E datasheet PDF?
You can download the XC7K160T-3FFG676E datasheet PDF from multiple sources, including the AMD website, Alldatasheet, and Octopart. The official AMD datasheet provides comprehensive specifications, pinout diagrams, and design guidelines. Search for 'XC7K160T datasheet' on these platforms to access the latest version.
What are the key specifications of XC7K160T-3FFG676E that engineers should know?
Engineers should know that the XC7K160T-3FFG676E has 162,240 logic cells, 400 user I/O, 11,980,800 bits of block RAM, and 400 DSP slices. It operates on a 1.0V core voltage, uses a 28nm process, and comes in a 676-FCBGA package. The -3 speed grade offers the highest performance in the Kintex-7 family.
What is the best AMD equivalent for XC7K160T-3FFG676E?
The best AMD equivalent for XC7K160T-3FFG676E is the XC7K160T-2FFG676E, which has the same logic density and package but a lower speed grade. For higher density, the XC7K325T-3FFG676E is also an option, but verify pin compatibility. Both are from the same Kintex-7 family.
Hey Google, what can replace XC7K160T-3FFG676E?
The XC7K160T-3FFG676E can be replaced by the XC7K160T-2FFG676E, which has the same logic density and package but a lower speed grade. For higher density, the XC7K325T-3FFG676E is pin-compatible in the same package. Always verify pin assignments and timing requirements before replacement.

Engineering reference data for XC7K160T-3FFG676E β€” comparison, design guidance, and compliance information.

Selection Guide

Choose the XC7K160T-3FFG676E when you need the highest performance from the Kintex-7 160T device, such as in SDR, medical imaging, or aerospace applications where maximum clock speed and low latency are critical. If your design can tolerate lower clock frequencies, the XC7K160T-2FFG676E offers a cost-effective drop-in alternative. For designs requiring more logic density, the XC7K325T-3FFG676E provides 2x the logic cells in the same package, but verify pin compatibility. The XC7K160T-1FFG676E is suitable for cost-sensitive applications with relaxed performance requirements. All alternatives share the same 676-FCBGA package, enabling PCB layout reuse.

Comparison with Alternatives

Parameter This Product XC7K160T-2FFG676E XC7K160T-1FFG676E XC7K325T-3FFG676E
Package 676-FCBGA (27x27mm) 676-FCBGA (27x27mm) - same 676-FCBGA (27x27mm) - same 676-FCBGA (27x27mm) - same
Brand AMD AMD AMD AMD
Logic Cells 162,240 162,240 162,240 326,080
Speed Grade -3 -2 -1 -3
Block RAM 11,980,800 bits 11,980,800 bits 11,980,800 bits 16,502,400 bits
DSP Slices 400 400 400 840
User I/O 400 400 400 500
Core Voltage 1.0V 1.0V 1.0V 1.0V

Key Differentiators

  • Highest speed grade (-3) in Kintex-7 family (vs XC7K160T-2FFG676E)
  • Optimized for best price-performance (vs XC7K325T-3FFG676E)
  • Balanced logic density and I/O count (vs XC7K160T-1FFG676E)

Design Notes

The XC7K160T-3FFG676E requires a 1.0V core voltage (VCCINT) and 1.8V auxiliary voltage (VCCAUX). Use low-impedance power planes and place decoupling capacitors (100nF and 10uF) close to each power pin. Follow AMD's power distribution network (PDN) guidelines in UG475 to minimize voltage ripple and ensure reliable operation.

For high-speed serial transceivers, use controlled impedance traces (e.g., 100 ohm differential) and minimize via stubs. Follow AMD's PCB design guidelines for the 676-FCBGA package, including proper ground plane stitching and signal integrity practices. Refer to UG475 for detailed layout recommendations.

The 676-FCBGA package has a thermal resistance that requires adequate cooling for high-power designs. Use a heatsink or forced airflow if the device dissipates more than 5W. Calculate junction temperature using the device's theta-JA and ensure it stays within the operating range. Refer to the datasheet for thermal specifications.

Compliance Information

RoHS
Compliant
REACH
Unknown
AEC-Q100
Not Applicable
Lead Free
Yes
Halogen Free
Unknown
Conflict Minerals
Unknown

RoHS compliant per distributor listings. AEC-Q100 not applicable for FPGA devices.

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