XC7VX690T-2FFG1927I - Virtex-7 XT FPGA 693K Logic Cells | AMD
MPN: XC7VX690T-2FFG1927I ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $12995 | $12,995.00 |
| 10 | $12450 | $124,500.00 |
| 100 | $11800 | $1,180,000.00 |
| 500 | $11200 | $5,600,000.00 |
| 1,000 | $10500 | $10,500,000.00 |
Drop-in alternatives for XC7VX690T-2FFG1927I — same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
Quick Comparison Tool — Select alternative parts for side-by-side comparison:
XC7VX690T-1FFG1927I
✅ Drop-In📋 Reference alternative (not in catalog)
XC7VX690T-2FFG1927C
✅ Drop-In📋 Reference alternative (not in catalog)
XC7VX690T-3FFG1927I
✅ Drop-In📋 Reference alternative (not in catalog)
XC7VX690T-2FFG1927I
✅ Drop-In✓ In Stock
$10500 / Unit
View Datasheet →XC7VX690T-2FFG1927I Maximum Ratings & Electrical Characteristics
| Number of Logic Cells | 693120 |
| Number of LABs/CLBs | 54150 |
| Total RAM Bits | 54190080 |
| Number of I/O | 600 |
| Number of DSP Slices | 3600 |
| Number of Transceivers | 80 GTX |
| Transceiver Speed | 12.5 Gbps |
| Supply Voltage - Core | 1.0 V |
| Supply Voltage - Min | 970 mV |
| Supply Voltage - Max | 1.03 V |
| Operating Temperature | -40°C to +100°C |
| Package | 1924-BBGA, FCBGA (FFG1927) |
| Mounting Type | Surface Mount |
| Speed Grade | -2 |
| Series | Virtex-7 XT |
| RoHS Status | Compliant |
XC7VX690T-2FFG1927I Pin Configuration
| Pin A1 | GND — Ground |
| Pin A2 | VCCO_0 — I/O supply voltage bank 0 |
| Pin B1 | IO_L1P_T0_0 — User I/O differential pair |
| Pin B2 | IO_L1N_T0_0 — User I/O differential pair |
| Pin C1 | VCCINT — Core supply voltage |
| Pin C2 | GND — Ground |
| Pin D1 | IO_L2P_T0_0 — User I/O differential pair |
| Pin D2 | IO_L2N_T0_0 — User I/O differential pair |
| Pin E1 | VCCAUX — Auxiliary supply voltage |
| Pin E2 | GND — Ground |
| Pin F1 | IO_L3P_T0_0 — User I/O differential pair |
| Pin F2 | IO_L3N_T0_0 — User I/O differential pair |
Safe Operating Area (SOA) & Thermal Characteristics
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
XC7VX690T-2FFG1927I is suitable for 6 applications: High-Performance Computing Acceleration, Aerospace and Defense Systems, Wired Communications Infrastructure, Medical Imaging Systems, Test and Measurement Equipment, Data Center Networking.
High-Performance Computing Acceleration
The XC7VX690T-2FFG1927I is ideal for high-performance computing (HPC) acceleration due to its 693K logic cells and 3,600 DSP slices. It can implement complex algorithms for scientific simulations, financial modeling, and data analytics. The 80 GTX transceivers enable high-speed data movement between FPGAs and CPUs, while the large block RAM supports on-chip data caching. In HPC systems, this FPGA can offload compute-intensive tasks from the CPU, improving overall throughput and energy efficiency. The industrial temperature range allows deployment in data center environments with varying thermal conditions.
Recommended
Aerospace and Defense Systems
The XC7VX690T-2FFG1927I is well-suited for aerospace and defense applications such as radar signal processing, electronic warfare, and secure communications. Its industrial temperature range (-40°C to +100°C) ensures reliable operation in harsh environments. The high logic density and DSP slices enable real-time processing of radar returns, while the GTX transceivers support high-speed data links to sensors and processors. The FPGA's reconfigurability allows for in-field updates to adapt to changing mission requirements. Its robust design meets the stringent reliability standards of military systems.
Recommended
Wired Communications Infrastructure
The XC7VX690T-2FFG1927I is ideal for wired communications infrastructure, including core routers, switches, and base stations. Its 80 GTX transceivers support 10G/40G/100G Ethernet, OTN, and CPRI protocols, enabling high-bandwidth data plane processing. The large logic capacity allows implementation of complex packet processing, traffic management, and encryption engines. The FPGA's high-speed serial capabilities and low latency make it suitable for network function virtualization (NFV) and software-defined networking (SDN). The industrial temperature range ensures reliable operation in central office environments.
Recommended
Medical Imaging Systems
The XC7VX690T-2FFG1927I is used in medical imaging systems such as CT scanners, MRI, and ultrasound machines. Its high DSP throughput enables real-time image reconstruction and processing. The large block RAM supports storing image frames, while the GTX transceivers interface with high-speed ADCs and display controllers. The FPGA's reconfigurability allows for algorithm updates without hardware changes, extending the life of medical equipment. The industrial temperature range ensures reliable operation in clinical environments. The device's high reliability is critical for patient safety.
Recommended
Test and Measurement Equipment
The XC7VX690T-2FFG1927I is ideal for test and measurement equipment such as oscilloscopes, logic analyzers, and signal generators. Its high-speed transceivers enable acquisition of high-bandwidth signals, while the DSP slices perform real-time signal processing. The large logic capacity allows implementation of complex triggering and analysis functions. The FPGA's reconfigurability enables firmware updates to add new measurement capabilities. The industrial temperature range ensures stable operation in lab and field environments. The device's high I/O count supports interfacing with multiple analog front-ends.
Recommended
Data Center Networking
The XC7VX690T-2FFG1927I is used in data center networking equipment such as smart NICs, load balancers, and security appliances. Its 80 GTX transceivers support 10G/25G/40G/100G Ethernet, enabling high-throughput packet processing. The large logic capacity allows implementation of custom packet parsing, flow classification, and encryption. The FPGA's low latency and high bandwidth make it ideal for accelerating network functions. The industrial temperature range ensures reliable operation in data center environments. The device's reconfigurability allows for in-field updates to support new protocols.
Recommended
Recommended Products Summary
Engineering reference data for XC7VX690T-2FFG1927I — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | XC7VX690T-1FFG1927I | XC7VX690T-2FFG1927C | XC7VX690T-3FFG1927I | XC7VX690T-2FFG1761I |
|---|---|---|---|---|---|
| Package | 1924-BBGA, FCBGA (FFG1927) | 1924-BBGA, FCBGA (FFG1927) - same | 1924-BBGA, FCBGA (FFG1927) - same | 1924-BBGA, FCBGA (FFG1927) - same | 1924-BBGA, FCBGA (FFG1761) - different |
| Brand | AMD | AMD | AMD | AMD | AMD |
| Speed Grade | -2 | -1 | -2 | -3 | -2 |
| Temperature Range | -40°C to +100°C | -40°C to +100°C | 0°C to +85°C | -40°C to +100°C | -40°C to +100°C |
| Number of I/Os | 600 | 600 | 600 | 600 | 850 |
| Supply Voltage - Min | 970 mV | 970 mV | 1.2 V | 970 mV | 970 mV |
| Logic Cells | 693120 | 693120 | 693120 | 693120 | 693120 |
| Block RAM Bits | 54190080 | 54190080 | 54190080 | 54190080 | 54190080 |
Key Differentiators
- Industrial temperature range (vs XC7VX690T-2FFG1927C)
- Higher speed grade (vs XC7VX690T-1FFG1927I)
- More I/Os (vs XC7VX690T-2FFG1761I)
Design Notes
The XC7VX690T-2FFG1927I requires multiple power rails: VCCINT (1.0V), VCCAUX (1.8V), and VCCO (1.5V/1.8V/2.5V/3.3V depending on I/O bank). Use a dedicated power management IC with proper sequencing to avoid latch-up. Decouple each rail with 100nF and 10uF capacitors placed close to the FPGA pins. Refer to the Virtex-7 PCB Design Guide for detailed recommendations.
The XC7VX690T-2FFG1927I can dissipate up to 60W under high utilization. The FCBGA package requires a heatsink and forced airflow for reliable operation. Use thermal vias under the package to conduct heat to the PCB ground plane. Monitor junction temperature with the on-chip temperature sensor and implement thermal throttling if necessary. For industrial environments, ensure ambient temperature does not exceed 100°C.
For high-speed transceivers, use controlled impedance traces (e.g., 100 ohm differential) and minimize via stubs. Place transceiver power supply filters close to the FPGA. Follow the Virtex-7 PCB design guidelines for signal integrity, including ground plane continuity and decoupling. Use high-quality connectors for high-speed signals to avoid reflections.
Compliance Information
RoHS compliant per AMD product page. Not AEC-Q100 qualified as it is not an automotive part.