XC7Z030-2SBG485I - Zynq-7000 SoC, 125K Logic Cells | AMD
MPN: XC7Z030-2SBG485I β Active| Qty | Unit Price | Extended |
|---|---|---|
| 1 | $112.75 | $112.75 |
| 10 | $105 | $1,050.00 |
| 100 | $98.5 | $9,850.00 |
| 500 | $92 | $46,000.00 |
| 1,000 | $85 | $85,000.00 |
Drop-in alternatives for XC7Z030-2SBG485I β same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.
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XC7Z030-1SBG485I
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XC7Z030-3SBG485I
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XC7Z035-2SBG485I
β Drop-Inπ Reference alternative (not in catalog)
XC7Z045-2SBG485I
β Drop-Inπ Reference alternative (not in catalog)
XC7Z030-2SBG485I Maximum Ratings & Electrical Characteristics
| Family | Zynq-7000 |
| Processor Core | Dual ARM Cortex-A9 MPCore with CoreSight |
| Maximum Frequency | 800 MHz |
| Logic Cells | 125,000 |
| Process Technology | 28nm |
| Package | 484-FCBGA (19x19 mm) |
| Operating Temperature | -40Β°C to +100Β°C |
| ADC Resolution | 12-bit |
| Mounting Type | Surface Mount |
| RoHS Status | Compliant |
| FPGA Family | Kintex-7 |
| Number of I/O | [DATA_NEEDED: Number of I/O] |
| Supply Voltage | [DATA_NEEDED: Supply Voltage] |
| Speed Grade | -2 |
| Lifecycle Status | Active |
XC7Z030-2SBG485I Pin Configuration
| Pin A1 | VCCINT β Internal core supply voltage |
| Pin A2 | GND β Ground |
| Pin B1 | IO_L1P_T0 β User I/O bank 0 |
| Pin C1 | IO_L1N_T0 β User I/O bank 0 |
| Pin D1 | VCCAUX β Auxiliary supply voltage |
| Pin E1 | DDR_A[0] β DDR memory address |
| Pin F1 | DDR_DQ[0] β DDR memory data |
| Pin G1 | MIO[0] β Multiplexed I/O |
| Pin H1 | PS_CLK β Processing system clock |
| Pin J1 | PS_POR_B β Processing system power-on reset |
| Pin K1 | PS_SRST_B β Processing system reset |
| Pin L1 | TCK β JTAG clock |
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
XC7Z030-2SBG485I is suitable for 6 applications: Software Defined Radio, Motor Control, Image Processing, Automotive Driver Assistance, Medical Imaging, Industrial IoT Gateway.
Software Defined Radio
The XC7Z030-2SBG485I is ideal for software-defined radio (SDR) systems. Its dual ARM Cortex-A9 cores handle protocol processing, while the Kintex-7 FPGA fabric implements high-speed digital down/up conversion and filtering. The 125K logic cells provide ample resources for complex DSP chains. The 800 MHz processor ensures low-latency control, and the 12-bit ADC supports direct RF sampling. This SoC enables a compact, reconfigurable SDR platform that can adapt to multiple communication standards without hardware changes.
Recommended
Motor Control
In motor control applications, the XC7Z030-2SBG485I provides a powerful combination of real-time processing and flexible I/O. The ARM cores can run complex control algorithms like field-oriented control (FOC), while the FPGA fabric implements high-speed PWM generation and encoder interfaces. The 800 MHz clock ensures fast loop closure, and the industrial temperature range (-40Β°C to +100Β°C) makes it suitable for factory automation. The programmable logic can also implement safety functions, such as overcurrent protection, with minimal latency.
Recommended
Image Processing
The XC7Z030-2SBG485I excels in image processing applications, such as machine vision and medical imaging. The FPGA fabric can implement real-time image filters, edge detection, and feature extraction, offloading these tasks from the ARM processor. The 125K logic cells are sufficient for moderate-complexity vision pipelines. The ARM cores handle higher-level tasks like object recognition and communication. The 12-bit ADC can interface with analog image sensors, and the high-speed transceivers support camera link interfaces.
Recommended
Automotive Driver Assistance
For automotive driver assistance systems (ADAS), the XC7Z030-2SBG485I offers the performance and reliability needed for real-time sensor fusion. The ARM cores can run perception algorithms, while the FPGA fabric accelerates pre-processing of camera and LiDAR data. The industrial temperature range ensures operation in extreme conditions. The device's 800 MHz clock and 125K logic cells provide sufficient compute for lane detection and object tracking. The 12-bit ADC can interface with analog sensors, and the device is designed for automotive and medical use.
Recommended
Medical Imaging
The XC7Z030-2SBG485I is well-suited for medical imaging devices like ultrasound and CT scanners. The FPGA fabric can implement beamforming and signal processing algorithms, while the ARM cores manage system control and user interface. The 125K logic cells provide enough resources for multi-channel processing. The 800 MHz processor ensures responsive operation, and the industrial temperature range is suitable for medical environments. The device's high-speed transceivers enable fast data transfer to host computers.
Recommended
Industrial IoT Gateway
As an industrial IoT gateway, the XC7Z030-2SBG485I can aggregate data from multiple sensors and protocols. The ARM cores run protocol stacks like Modbus and OPC-UA, while the FPGA fabric implements custom sensor interfaces and data preprocessing. The 800 MHz clock provides ample processing power for data aggregation and edge analytics. The 125K logic cells can implement custom communication controllers. The device's industrial temperature range and robust design make it ideal for factory floor deployment.
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Recommended Products Summary
Engineering reference data for XC7Z030-2SBG485I β comparison, design guidance, and compliance information.
Selection Guide
Comparison with Alternatives
| Parameter | This Product | XC7Z030-1SBG485I | XC7Z030-3SBG485I | XC7Z035-2SBG485I | XC7Z045-2SBG485I | XC7Z030-2FFG676I |
|---|---|---|---|---|---|---|
| Package | 484-FCBGA (19x19 mm) | 484-FCBGA (19x19 mm) - same | 484-FCBGA (19x19 mm) - same | 484-FCBGA (19x19 mm) - same | 484-FCBGA (19x19 mm) - same | 676-FCBGA (27x27 mm) - different |
| Brand | AMD | AMD | AMD | AMD | AMD | AMD |
| Logic Cells | 125,000 | 125,000 | 125,000 | 275,000 | 350,000 | 125,000 |
| Speed Grade | -2 | -1 | -3 | -2 | -2 | -2 |
| Processor Core | Dual ARM Cortex-A9 | Dual ARM Cortex-A9 | Dual ARM Cortex-A9 | Dual ARM Cortex-A9 | Dual ARM Cortex-A9 | Dual ARM Cortex-A9 |
| Maximum Frequency | 800 MHz | 800 MHz | 800 MHz | 800 MHz | 800 MHz | 800 MHz |
| Operating Temperature | -40Β°C to +100Β°C | -40Β°C to +100Β°C | -40Β°C to +100Β°C | -40Β°C to +100Β°C | -40Β°C to +100Β°C | -40Β°C to +100Β°C |
| ADC Resolution | 12-bit | 12-bit | 12-bit | 12-bit | 12-bit | 12-bit |
Key Differentiators
- Higher logic density than XC7Z020 (vs XC7Z020-2CLG484I)
- Industrial temperature grade (vs XC7Z030-2SBG485C)
- Higher speed grade than XC7Z030-1SBG485I (vs XC7Z030-1SBG485I)
Design Notes
The XC7Z030-2SBG485I requires multiple power rails: VCCINT (internal core), VCCAUX (auxiliary), and VCCO (I/O banks). Proper decoupling is critical. Use a 10uF capacitor for each power pin and a 0.1uF capacitor for high-frequency noise. Refer to the Zynq-7000 PCB Design Guide (UG933) for detailed recommendations. Power sequencing is also important; VCCINT should ramp up before VCCO.
The FCBGA package has a thermal resistance that requires careful management. At 800 MHz with high logic utilization, the device can dissipate several watts. Use a heatsink and ensure adequate airflow. The industrial temperature range (-40Β°C to +100Β°C) must be respected. Consider using thermal vias in the PCB to improve heat transfer to the ground plane.
The 484-FCBGA package requires a multi-layer PCB with controlled impedance for high-speed signals. Route DDR memory signals with matched lengths and proper termination. Use a solid ground plane under the device. For the JTAG interface, keep traces short and add pull-up resistors. Follow AMD's layout guidelines in UG933 to ensure signal integrity.
Compliance Information
RoHS compliant per DigiKey. Not AEC-Q100 qualified; consider XA7Z030 for automotive.