XC7VX415T-1FFG1158I - 412K Logic Virtex-7 XT FPGA | AMD
MPN: XC7VX415T-1FFG1158I β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $0 | $0.00 |
| 10 | $0 | $0.00 |
| 100 | $0 | $0.00 |
| 500 | $0 | $0.00 |
| 1,000 | $0 | $0.00 |
Drop-in alternatives for XC7VX415T-1FFG1158I 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:
XC7VX415T-2FFG1158I
β Drop-Inβ In Stock
$8300 / Unit
View Datasheet βXC7VX415T-1FFG1158C
β Drop-Inπ Reference alternative (not in catalog)
XC7VX415T-2FFG1158C
β Drop-Inπ Reference alternative (not in catalog)
XC7VX415T-1FFG1158E
β Drop-Inπ Reference alternative (not in catalog)
XC7VX415T-1FFG1158
β Drop-Inπ Reference alternative (not in catalog)
XC7VX415T-3FFG1158I
β Drop-Inπ Reference alternative (not in catalog)
XC7VX415T-1FFG1158I Maximum Ratings & Electrical Characteristics
| Product Family | Virtex-7 XT |
| Logic Cells | 412160 |
| Number of User I/O | 350 |
| Total Block RAM Bits | 32440320 |
| Supply Voltage Range | 0.97 V to 1.03 V |
| Nominal Core Voltage | 1 V |
| Maximum Clock Frequency | 1818 MHz |
| Technology Node | 28 nm |
| Package | 1156-BBGA, FCBGA (FFG1158) |
| Mounting Type | Surface Mount |
| Pin Count | 1156 |
| Speed Grade | -1 |
| Temperature Grade | Industrial (I suffix) |
| Packaging Type | Tray |
| Number of Logic Elements | 412160 |
| RoHS Status | [DATA_NEEDED: RoHS status] |
XC7VX415T-1FFG1158I 1156-bbga, fcbga (ffg1158) Pin Configuration Guide
Complete pinout information for XC7VX415T-1FFG1158I (1156-bbga, fcbga (ffg1158) package) with 1156 pins. This digital IC includes GPIO, communication interfaces (UART, SPI, I2C), and power pins. Refer to the manufacturer datasheet for alternate pin functions and configuration options. Essential for embedded system design and PCB layout.
No detailed pinout data available for XC7VX415T-1FFG1158I.
Refer to the datasheet for full pin configuration.
Estimated pin count: 1156 pins (digital package)
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
XC7VX415T-1FFG1158I is suitable for 6 applications: High-End Networking and Packet Processing, Radar and Signals Intelligence, High-Performance Computing and Simulation, Broadcast Video Processing, Medical Imaging Systems, Automated Test Equipment and Instrumentation.
High-End Networking and Packet Processing
The XC7VX415T-1FFG1158I provides 412,160 logic cells and 32.44 Mbit of block RAM for deep packet buffers and wide parallel lookup engines. Its 350 user I/O can connect to high-speed Ethernet PHYs, switch fabrics, and external DDR4 memory. The 1.0V core and 28nm process keep power within manageable limits for line-card designs. Combined with an external DDR4 part such as MT40A512M16JY-075E, this FPGA can sustain high-throughput packet classification, traffic shaping, and forwarding in core networking equipment.
Recommended
Radar and Signals Intelligence
Virtex-7 XT FPGAs are widely used in radar and electronic warfare systems because they implement wideband digital down-conversion, pulse compression, and adaptive beamforming in programmable logic. The XC7VX415T-1FFG1158I's industrial temperature grade supports rugged deployed environments, and its 350 I/O can interface to high-speed ADCs and DACs. The 32.44 Mbit block RAM provides staging for sample data. Use AMD Vivado to implement DSP datapaths and connect to DDR4 companion memory for large coherent processing intervals.
Recommended
High-Performance Computing and Simulation
The XC7VX415T-1FFG1158I can accelerate compute-intensive simulations in finance, scientific research, and prototyping. Its 412,160 logic cells form parallel processing arrays, while the high I/O count connects to external memory interfaces and host processors. The 1818 MHz maximum clock frequency supports high-throughput custom datapaths. This device is often paired with high-density DDR4 devices; for example, K4A8G085WB-BIWE provides rapid random-access storage. The 28nm process helps control power in rack-mounted acceleration cards.
Recommended
Broadcast Video Processing
In broadcast and professional video, the XC7VX415T-1FFG1158I can implement 4K/8K video processing chains including scaling, color space conversion, and frame synchronization. The 32.44 Mbit block RAM is suitable for line buffers and small frame stores, while 350 user I/O connects to SDI, HDMI, or IP video front ends. The industrial temperature grade allows use in OB vans and head-end equipment. Companion DDR4 memory such as NT5CC256M16ER-EKI expands the frame buffering capability beyond internal block RAM.
Recommended
Medical Imaging Systems
Medical imaging modalities such as computed tomography, ultrasound, and MRI rely on FPGAs for sensor processing, image reconstruction, and real-time filtering. The XC7VX415T-1FFG1158I delivers 412,160 logic cells and a 1.0V core for low-noise operation near sensitive analog front ends. Its 350 I/O can interface to high-speed data acquisition channels and image sensors. The 32.44 Mbit block RAM supports intermediate image storage. Pairing with MT40A512M16LY-075 allows large image volumes to be processed without external ASIC support.
Recommended
Automated Test Equipment and Instrumentation
The XC7VX415T-1FFG1158I is suitable for test and measurement instruments requiring flexible digital pattern generation, acquisition, and protocol analysis. Its 350 user I/O can connect to instrument backplanes and high-speed comparators, while the 28nm process minimizes power per I/O. The maximum clock frequency of 1818 MHz permits high-resolution timing generation. DDR4 companion devices like MT41K256M16HA-125:E provide large acquisition memories. The industrial temperature grade supports extended environmental ratings in production test floors.
Recommended
Recommended Products Summary
Engineering reference data for XC7VX415T-1FFG1158I β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | XC7VX415T-2FFG1158I | XC7VX415T-1FFG1158C | XC7VX415T-1FFG1158E |
|---|---|---|---|---|
| Brand | AMD | AMD | AMD | AMD |
| Package | 1156-BBGA, FCBGA (FFG1158) | 1156-BBGA, FCBGA (FFG1158) | 1156-BBGA, FCBGA (FFG1158) | 1156-BBGA, FCBGA (FFG1158) |
| Speed Grade | -1 | -2 | -1 | -1 |
| Temperature Grade | Industrial (I) | Industrial (I) | Commercial (C) | [DATA_NEEDED: E variant temperature grade] |
| Logic Cells | 412160 | 412160 | 412160 | 412160 |
| Number of User I/O | 350 | 350 | 350 | 350 |
| Total Block RAM Bits | 32440320 | 32440320 | 32440320 | 32440320 |
| Maximum Clock Frequency | 1818 MHz | [DATA_NEEDED: max clock for -2 grade] | 1818 MHz | 1818 MHz |
| Core Voltage | 1.0 V | 1.0 V | 1.0 V | 1.0 V |
Key Differentiators
- Balanced -1 speed grade for power and cost efficiency (vs XC7VX415T-2FFG1158I)
- Industrial temperature grade for harsh environments (vs XC7VX415T-1FFG1158C)
- Web-documented E variant with high parametric match (vs XC7VX415T-1FFG1158E)
Design Notes
The XC7VX415T-1FFG1158I core supply must remain within 0.97V to 1.03V per published data. Use a dedicated switching regulator followed by low-noise filtering, and decouple each power pin with 100nF ceramic capacitors near the BGA balls. Provide bulk capacitance such as 10uF X7R per power region. Follow the AMD/Xilinx power distribution network guidelines to minimize core supply ripple, which is critical for timing closure and reliable configuration.
The 1156-ball FCBGA package can dissipate significant heat, especially in high-utilization Virtex-7 designs. No theta-JA value was available in the verified data, so perform thermal simulation based on total power from Vivado. Use a heatsink, forced airflow, and thermal vias under the package to keep junction temperature below the industrial-grade limit. Worst-case power depends on logic utilization, clock frequency, and I/O toggling.
For the XC7VX415T-1FFG1158I, download the official Virtex-7 package pinout file (UG865) and import it into AMD Vivado before starting board layout. Route high-speed transceivers as controlled-impedance differential pairs and maintain a solid ground plane under the BGA. Verify all pin assignments against the ASCII/CSV pinout files; hand-routing a 1156-ball FPGA without the official pin map risks signal integrity and manufacturing issues.
Compliance Information
Verified distributor snippets do not include RoHS/REACH/lead-free declarations. Consult the AMD product documentation or contact the manufacturer for official compliance certificates before regulatory sign-off.