XC7A50T-1CSG324I - Artix-7 FPGA, 52K Logic Cells | AMD
MPN: XC7A50T-1CSG324I ✓ Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $89.5 | $89.50 |
| 10 | $82.3 | $823.00 |
| 100 | $74.1 | $7,410.00 |
| 500 | $66.8 | $33,400.00 |
| 1,000 | $60.2 | $60,200.00 |
Drop-in alternatives for XC7A50T-1CSG324I — 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:
XC7A50T-2CSG324I
✅ Drop-In✓ In Stock
$17.5 / Unit
View Datasheet →XC7A50T-1CSG324C
✅ Drop-In📋 Reference alternative (not in catalog)
XC7A100T-1CSG324C
✅ Drop-In✓ In Stock
$59.9 / Unit
View Datasheet →XC7A35T-2CSG325C
✅ Drop-In📋 Reference alternative (not in catalog)
XC7A100T-2CSG324I
✅ Drop-In✓ In Stock
$105 / Unit
View Datasheet →XC7A50T-1CSG324I Maximum Ratings & Electrical Characteristics
| Family | Artix-7 |
| Logic Cells | 52,160 |
| Block RAM | 2,764,800 bits |
| DSP Slices | 120 |
| User I/Os | 210 |
| Package | 324-LFBGA, CSPBGA (15x15 mm) |
| Technology | 28nm |
| Core Voltage | 1V |
| Operating Temperature | -40°C to +100°C (industrial) |
| Speed Grade | -1 |
| Configuration | SRAM-based |
| Clock Management | 5 CMTs (MMCM + PLL) |
| Total RAM | 2,764,800 bits |
| Mounting Type | Surface Mount |
| RoHS Status | Compliant |
XC7A50T-1CSG324I Pin Configuration
| Pin A1 | IO_L1P_T0 — User I/O bank 0, differential pair P |
| Pin A2 | IO_L1N_T0 — User I/O bank 0, differential pair N |
| Pin B1 | IO_L2P_T0 — User I/O bank 0, differential pair P |
| Pin B2 | IO_L2N_T0 — User I/O bank 0, differential pair N |
| Pin C1 | IO_L3P_T0 — User I/O bank 0, differential pair P |
| Pin C2 | IO_L3N_T0 — User I/O bank 0, differential pair N |
| Pin D1 | VCCINT — Internal core voltage 1V |
| Pin D2 | GND — Ground |
| Pin E1 | VCCAUX — Auxiliary voltage 1.8V |
| Pin E2 | GND — Ground |
| Pin F1 | VCCO_0 — I/O bank 0 supply voltage |
| Pin F2 | GND — Ground |
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
XC7A50T-1CSG324I is suitable for 6 applications: Industrial Motor Control, Medical Imaging, Software-Defined Radio, Video Processing, Aerospace and Defense, IoT Edge Computing.
Industrial Motor Control
The XC7A50T-1CSG324I is ideal for industrial motor control applications due to its 120 DSP slices and 210 user I/Os, which enable high-speed PWM generation and encoder feedback processing. The industrial temperature grade (-40°C to +100°C) ensures reliable operation in factory environments. The FPGA's low power consumption and 28nm process make it suitable for compact drives. With 2,764,800 bits of block RAM, it can store complex control algorithms and lookup tables for field-oriented control (FOC). The device's high-speed transceivers allow for real-time communication with host controllers via EtherCAT or PROFINET.
Recommended
Medical Imaging
The XC7A50T-1CSG324I is well-suited for medical imaging systems such as ultrasound and X-ray machines, where high-speed data acquisition and processing are critical. Its 52,160 logic cells and 120 DSP slices enable real-time image filtering and enhancement algorithms. The 210 user I/Os support interfacing with high-speed ADCs and image sensors. The device's low power consumption is beneficial for portable medical devices. The industrial temperature grade ensures reliable operation in clinical environments. The FPGA's reconfigurability allows for firmware updates to improve imaging algorithms without hardware changes.
Recommended
Software-Defined Radio
The XC7A50T-1CSG324I is an excellent choice for software-defined radio (SDR) applications, offering 120 DSP slices for digital down-conversion and filtering. Its 210 user I/Os can interface with high-speed ADCs and DACs, while the 2,764,800 bits of block RAM support large FFT buffers. The device's low power consumption is critical for battery-powered portable radios. The industrial temperature grade allows deployment in outdoor communication equipment. The FPGA's reconfigurability enables support for multiple wireless standards (e.g., LTE, Wi-Fi) in a single hardware platform.
Recommended
Video Processing
The XC7A50T-1CSG324I is well-suited for video processing applications such as surveillance cameras and video conferencing systems. Its 52,160 logic cells can implement video scalers, color space converters, and compression algorithms. The 210 user I/Os support interfacing with HDMI, MIPI, and LVDS video interfaces. The device's block RAM can store multiple video lines for processing. The industrial temperature grade is suitable for outdoor surveillance cameras. The FPGA's parallel processing capability enables real-time video analytics at high resolutions.
Recommended
Aerospace and Defense
The XC7A50T-1CSG324I is suitable for aerospace and defense applications such as avionics displays and radar signal processing. Its industrial temperature grade (-40°C to +100°C) meets the requirements for harsh environments. The 120 DSP slices enable high-speed signal processing for radar and communication systems. The 210 user I/Os support interfacing with various sensors and actuators. The device's low power consumption is critical for airborne systems. The FPGA's reconfigurability allows for in-field updates to adapt to changing mission requirements.
Recommended
IoT Edge Computing
The XC7A50T-1CSG324I is ideal for IoT edge computing devices that require low power and high performance. Its 52,160 logic cells can implement machine learning inference engines for anomaly detection. The 210 user I/Os support interfacing with various sensors and communication modules. The device's low power consumption enables battery-powered operation. The industrial temperature grade is suitable for industrial IoT applications. The FPGA's reconfigurability allows for over-the-air updates to improve algorithms.
Recommended
Recommended Products Summary
Engineering reference data for XC7A50T-1CSG324I — comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | XC7A50T-2CSG324I | XC7A50T-1CSG324C | XC7A100T-1CSG324C | XC7A35T-2CSG325C |
|---|---|---|---|---|---|
| Package | 324-LFBGA, CSPBGA | 324-LFBGA, CSPBGA - same | 324-LFBGA, CSPBGA - same | 324-LFBGA, CSPBGA - same | 324-LFBGA, CSPBGA - same |
| Brand | AMD | AMD | AMD | AMD | AMD |
| Logic Cells | 52,160 | 52,160 | 52,160 | 101,440 | 33,280 |
| Block RAM | 2,764,800 bits | 2,764,800 bits | 2,764,800 bits | 4,861,440 bits | 1,857,600 bits |
| DSP Slices | 120 | 120 | 120 | 240 | 90 |
| User I/Os | 210 | 210 | 210 | 210 | 210 |
| Temperature Grade | Industrial (-40°C to +100°C) | Industrial (-40°C to +100°C) | Commercial (0°C to +85°C) | Commercial (0°C to +85°C) | Commercial (0°C to +85°C) |
| Speed Grade | -1 | -2 | -1 | -1 | -2 |
Key Differentiators
- Industrial temperature grade (vs XC7A50T-1CSG324C)
- Cost-effective logic density (vs XC7A100T-1CSG324C)
- Balanced speed grade (vs XC7A50T-2CSG324I)
Design Notes
The XC7A50T-1CSG324I requires multiple power supply rails: VCCINT (1.0V core), VCCAUX (1.8V auxiliary), and VCCO (I/O bank voltage, typically 1.8V, 2.5V, or 3.3V). Use low-dropout regulators or switching regulators with proper decoupling. Place 100nF ceramic capacitors close to each power pin and bulk capacitors (10uF) at the power entry points. Follow AMD's power distribution network (PDN) guidelines in UG583 for optimal performance.
For the 324-pin CSPBGA package, use a 4-layer or more PCB with dedicated power and ground planes. Route high-speed signals with controlled impedance (50 ohm single-ended, 100 ohm differential). Ensure the thermal pad is properly connected to the ground plane for heat dissipation. Follow AMD's PCB design guidelines in UG583 for layout recommendations.
Ensure the configuration bitstream is stored in a compatible flash device (e.g., SPI flash) and that the configuration mode pins are set correctly. Do not leave unused I/O pins floating; configure them as inputs with pull-ups or drive them to a defined state. Verify that all power supply rails are within specification before programming the device.
Compliance Information
RoHS compliance indicated by distributor listings. AEC-Q100 not applicable for FPGA. Other compliance data not specified in provided sources.