Product Introduction
The NI‑7935R, commonly searched as NI‑7935, is a high-performance, stand-alone Controller for FlexRIO. It combines an embedded real-time processor, a user-programmable Kintex‑7 FPGA, onboard DRAM and high-speed serial interfaces in a deployable embedded platform.
The NI‑7935R features a Xilinx Kintex‑7 XC7K410T FPGA, 2 GB of FPGA-accessible DDR3 DRAM, a dual-core ARM Cortex‑A9 processor running NI Linux Real-Time and two SFP+ ports for high-speed data streaming.
When paired with a compatible FlexRIO adapter module, the NI‑7935R can be configured for high-speed data acquisition, digital I/O, waveform generation, IF and RF processing, custom protocols, embedded signal processing, hardware-in-the-loop testing and field-deployed measurement applications.
Product Overview
The National Instruments NI‑7935R belongs to the NI‑793xR Controller for FlexRIO family. Its standard NI part number is 783766‑01.
Unlike a conventional PXI FlexRIO FPGA module, the NI‑7935R integrates the FPGA, embedded real-time controller, network interface, storage interfaces, high-speed serial ports and FlexRIO adapter connector into a stand-alone enclosure.
A typical system architecture is:
Sensor or DUT ↔ FlexRIO Adapter Module ↔ NI‑7935R FPGA ↔ Real-Time Controller / SFP+ ↔ Host or Network
The adapter module provides application-specific I/O, the Kintex‑7 FPGA performs deterministic processing, and the embedded controller manages system sequencing, configuration, storage and network communication.
Key Features
Stand-Alone Controller for FlexRIO
The NI‑7935R is designed for stand-alone FlexRIO systems that do not require a PXI or PXIe chassis.
Its integrated architecture includes:
- Dual-core ARM Cortex‑A9 real-time processor
- NI Linux Real-Time operating system
- Kintex‑7 XC7K410T FPGA
- 2 GB FPGA-accessible DDR3 DRAM
- Two SFP+ high-speed serial ports
- FlexRIO adapter module connector
- Gigabit Ethernet interface
- USB host and USB device ports
- MicroSD storage support
- External trigger and reference clock connections
Kintex‑7 XC7K410T FPGA
The NI‑7935R includes a Xilinx Kintex‑7 XC7K410T FPGA for deterministic, hardware-level signal processing.
The FPGA provides:
- 254,200 lookup tables
- 63,550 FPGA slices
- 1,540 DSP48 slices
- 28,620 kbit of embedded block RAM
- Parallel signal-processing resources
- Custom timing and triggering
- Application-specific protocol implementation
- Direct access to FlexRIO adapter module I/O
These FPGA resources make the NI‑7935R suitable for demanding algorithms involving digital filtering, fast Fourier transforms, channelization, digital downconversion, protocol processing and real-time data reduction.
Dual-Core ARM Cortex‑A9 Processor
The embedded controller uses a dual-core ARM Cortex‑A9 processor operating at 667 MHz.
The processor runs a 32-bit version of NI Linux Real-Time and can manage:
- Application sequencing
- Network communication
- System configuration
- Data logging
- FPGA communication
- Error handling
- Watchdog functions
- Remote monitoring
- File and storage management
Time-critical operations can run in the FPGA while higher-level control and communication tasks run on the real-time processor.
2 GB FPGA-Accessible DDR3 DRAM
The NI‑7935R provides 2 GB of DDR3 DRAM that can be accessed by the FPGA.
The theoretical maximum FPGA DRAM data rate is 10.5 GB/s, supporting applications such as:
- High-speed waveform buffering
- Long record acquisition
- Pretrigger and post-trigger storage
- Arbitrary waveform generation
- Digital pattern storage
- Intermediate signal-processing buffers
- Packet buffering
- Data-rate matching
Actual performance depends on the FPGA design, memory-access pattern and application architecture.
Two SFP+ High-Speed Serial Ports
The NI‑7935R provides two SFP+ ports connected to FPGA high-speed serial resources.
Supported serial line rates include:
- 10.3125 Gbps
- 6.25 Gbps
- 3.125 Gbps
The two ports provide two transmit channels and two receive channels and support appropriate electrical or optical SFP+ connections.
Depending on the FPGA design, the SFP+ ports can be used with:
- 10 Gigabit Ethernet UDP
- Xilinx Aurora
- Custom serial protocols
- FPGA-to-FPGA streaming
- Distributed measurement systems
- High-bandwidth data aggregation
136 FPGA General-Purpose I/O Channels
The FlexRIO adapter interface provides 136 general-purpose FPGA channels.
The channels can be configured through the FPGA and installed adapter module as:
- Up to 136 single-ended channels
- Up to 68 differential channels
- A combination of single-ended and differential channels
The actual available measurement or generation channels depend on the selected FlexRIO adapter module.
High-Speed FPGA Digital I/O
At the FPGA adapter interface, documented maximum data rates include:
- Up to 400 Mb/s for supported single-ended I/O
- Up to 1 Gb/s for supported differential LVDS I/O
These values describe FPGA interface capabilities. The complete system performance is determined by the adapter module, electrical standard, FPGA design and connected DUT.
16 DMA Channels
The NI‑7935R provides 16 DMA channels for transferring data between FPGA logic and the real-time processor.
Multiple DMA channels allow acquisition, generation, status and control data to be separated into different transfer paths.
Gigabit Ethernet Interface
The controller includes one Ethernet interface supporting 10Base‑T, 100Base‑TX and 1000Base‑T communication.
Gigabit Ethernet can be used for:
- Controller configuration
- Application deployment
- Remote monitoring
- Result transfer
- Network-based control
- Distributed measurement systems
USB and MicroSD Connectivity
The NI‑7935R provides one USB 2.0 host port, one USB 2.0 device port and a microSD slot.
The microSD interface supports compatible SD and SDHC media with capacities up to 32 GB. These interfaces can support application deployment, configuration and data storage.
External Trigger and Reference Clock
The front panel includes separate SMA connectors for TRIG and REF IN.
The REF IN connection accepts a 10 MHz reference clock, while the trigger terminal can be configured for application-specific input or output operations through the FPGA.
Technical Specifications
| Parameter | Specification |
|---|---|
| Product Type | Stand-Alone Controller for FlexRIO |
| Model | NI‑7935R / NI‑7935 |
| Part Number | 783766‑01 |
| Manufacturer | National Instruments |
| Platform | NI FlexRIO |
| Form Factor | Stand-Alone Embedded Controller |
| FPGA | Xilinx Kintex‑7 XC7K410T |
| FPGA LUTs | 254,200 |
| FPGA Slices | 63,550 |
| DSP48 Slices | 1,540 |
| FPGA Block RAM | 28,620 kbit |
| FPGA-Accessible DRAM | 2 GB DDR3 |
| Theoretical FPGA DRAM Data Rate | 10.5 GB/s |
| Processor | Xilinx Zynq‑7020 SoC |
| Processor Architecture | Dual-Core ARM Cortex‑A9 |
| Processor Speed | 667 MHz |
| Operating System | NI Linux Real-Time, 32-Bit |
| System DRAM | 512 MB DDR3 |
| Internal Nonvolatile Memory | 512 MB SLC NAND Flash |
| SFP+ Ports | 2 |
| SFP+ Transmit Channels | 2 |
| SFP+ Receive Channels | 2 |
| Supported Serial Line Rates | 10.3125 Gbps, 6.25 Gbps and 3.125 Gbps |
| High-Speed Cable Support | Electrical or Optical |
| FPGA General-Purpose Channels | 136 Single-Ended or 68 Differential |
| Maximum Single-Ended I/O Rate | 400 Mb/s |
| Maximum Differential I/O Rate | 1 Gb/s for LVDS |
| DMA Channels | 16 |
| Default FPGA Timebase | 40 MHz |
| Internal Reference Oscillator | 100 MHz |
| Network Interface | 10/100/1000Base‑T Ethernet |
| USB Interfaces | 1 × USB 2.0 Host and 1 × USB 2.0 Device |
| MicroSD Support | SD and SDHC, Up to 32 GB |
| Reference Clock Input | 10 MHz, SMA Connector |
| Trigger Interface | Single-Ended TRIG, SMA Connector |
| Power Input Range | 9 VDC to 30 VDC |
| Maximum Power Consumption | 60 W |
| Recommended Power Supply | More Than 75 W, 12 VDC |
| Primary Applications | Embedded Signal Processing, High-Speed Streaming and Custom Instrumentation |
How Does the NI‑7935R Work?
The NI‑7935R divides system functions across the FlexRIO adapter module, Kintex‑7 FPGA and embedded real-time processor.
A simplified acquisition path is:
Signal or DUT → FlexRIO Adapter Module → Kintex‑7 FPGA → FPGA DRAM / DMA / SFP+ → Real-Time Controller or Remote System
During acquisition, the adapter module converts or interfaces with the incoming signal. The FPGA performs deterministic triggering, filtering, protocol processing or data reduction.
The resulting data can be:
- Buffered in the 2 GB FPGA DRAM
- Transferred to the real-time processor through DMA
- Streamed through the SFP+ ports
- Logged to compatible storage
- Transferred over Ethernet
For signal generation, data can travel from FPGA memory or the real-time application through the FPGA and installed adapter module to the connected DUT.
NI‑7935R Is a Controller for FlexRIO
The NI‑7935R is not a complete measurement instrument without an appropriate FlexRIO adapter module.
A complete NI‑7935R system normally requires:
- NI‑7935R Controller for FlexRIO
- Compatible FlexRIO adapter module
- Adapter-specific cables and accessories
- Compatible SFP+ modules or cables when required
- Suitable external DC power supply
- Ethernet or supported USB connection
- Compatible NI FlexRIO software
- LabVIEW Real-Time and LabVIEW FPGA software when required
- Application-specific FPGA and real-time code
The stand-alone architecture means that a PXI or PXIe chassis is not required for normal NI‑7935R operation.
FPGA and Real-Time Processor Integration
The Kintex‑7 FPGA handles deterministic and computationally intensive tasks, while the ARM processor manages higher-level application functions.
The FPGA can handle:
- High-speed acquisition and generation
- Custom timing
- Digital filtering
- Protocol processing
- Fast triggering
- Data reduction
- Closed-loop response
- SFP+ serial communication
The real-time processor can handle:
- Startup and initialization
- Test sequencing
- Network communication
- Data logging
- System configuration
- Error handling
- Health monitoring
- Host communication
High-Speed SFP+ Data Streaming
The two SFP+ ports allow data to move directly between FPGA logic and another compatible high-speed serial device.
This can reduce dependence on the embedded processor when transferring large data streams.
Potential SFP+ applications include:
- FPGA-to-FPGA communication
- Distributed acquisition systems
- High-bandwidth data aggregation
- Remote sensor processing
- 10 Gigabit Ethernet UDP streaming
- Xilinx Aurora communication
- Custom serial protocol implementation
Copper SFP+ cables should follow the documented length limitations. Optical connections are more appropriate when longer distances or electrical isolation are required.
FPGA-Based Signal Processing
The large Kintex‑7 FPGA allows signal-processing algorithms to execute with deterministic hardware timing.
Potential functions include:
- Digital downconversion
- Digital upconversion
- Fast Fourier transforms
- Finite impulse response filtering
- Channelization
- Decimation and interpolation
- Pulse detection
- Frequency-domain triggering
- Image processing
- Protocol decoding
- Real-time event classification
Processing data in the FPGA can reduce the volume of information transferred to the processor or remote host.
FPGA-Accessible DRAM Applications
The 2 GB FPGA-accessible DRAM can be used for high-speed buffering and large data records.
Typical DRAM applications include:
- Long record acquisition
- Pretrigger waveform storage
- Post-trigger waveform storage
- Arbitrary waveform playback
- Digital pattern generation
- Packet buffering
- Temporary processing storage
- Data-rate matching
The memory architecture is particularly useful when the adapter module or SFP+ interface operates at a rate that cannot be continuously handled by the real-time processor.
FlexRIO Adapter Module Integration
The installed FlexRIO adapter module determines the physical I/O and measurement function of the NI‑7935R.
Supported adapter categories can include:
- High-speed digitizer adapter modules
- Oscilloscope adapter modules
- Digital I/O adapter modules
- Signal generator adapter modules
- IF and RF adapter modules
- Camera Link interfaces
- Custom FlexRIO adapter modules
Always verify compatibility among the NI‑7935R, selected adapter module, FPGA interface files and NI FlexRIO driver version.
Custom Digital Protocols
When paired with an appropriate digital adapter, the NI‑7935R can implement custom digital communication protocols in FPGA hardware.
Programmable protocol functions can include:
- Clock generation and recovery
- Data framing
- Packet processing
- Pattern detection
- Error checking
- Command generation
- Response decoding
- Handshaking
- Custom state machines
Clocking and Synchronization
The NI‑7935R includes an internal 100 MHz reference oscillator and provides a 10 MHz REF IN front-panel connection.
Clock resources can support:
- Adapter module synchronization
- FPGA processing clocks
- External instrument synchronization
- Source-synchronous acquisition
- Deterministic waveform generation
- Multi-device timing architectures
Clock configuration should be selected according to adapter module requirements, FPGA timing closure and the external system architecture.
Custom FPGA Triggering
Trigger logic can be implemented directly in the Kintex‑7 FPGA.
Possible trigger functions include:
- Analog threshold trigger when supported by the adapter
- Digital edge trigger
- Pattern trigger
- Protocol-specific trigger
- Multi-stage trigger
- Sequence trigger
- Frequency-domain trigger
- External SMA trigger
- Timing-qualified event trigger
Embedded and Field-Deployed Measurement
The stand-alone enclosure, embedded processor and network interfaces make the NI‑7935R suitable for deployment near a sensor or DUT.
Potential field applications include:
- Remote monitoring
- Distributed measurement
- Machine condition monitoring
- Structural testing
- Radar and communication research
- Embedded signal analysis
- Field-deployed data recording
- Prototype control systems
Hardware-in-the-Loop Testing
The NI‑7935R can participate in hardware-in-the-loop systems requiring deterministic acquisition, generation and response processing.
Depending on the selected adapter module, the FPGA can:
- Generate simulated signals
- Acquire DUT responses
- Run deterministic response logic
- Implement fault insertion
- Perform hardware-level pass/fail analysis
- Stream results to another FPGA system
RF and Wireless Applications
When paired with a compatible FlexRIO RF or IF adapter module, the NI‑7935R can provide FPGA-based processing for RF and wireless research.
Potential applications include:
- Digital downconversion
- Spectrum monitoring
- Channelization
- Pulse detection
- Radar prototyping
- Custom modulation processing
- Wideband signal recording
- Real-time RF event detection
Semiconductor and Electronic Validation
With a compatible digital or analog adapter module, the NI‑7935R can be used for semiconductor and electronic design validation.
Potential functions include:
- FPGA and ASIC interface testing
- Custom digital protocol validation
- High-speed waveform acquisition
- Device stimulus generation
- Real-time pattern analysis
- Electronic subsystem verification
- Automated functional test
Research and Custom Instrumentation
The NI‑7935R is useful when a research or test application cannot be addressed efficiently by a conventional fixed-function instrument.
Engineers can combine an adapter module, FPGA processing and real-time software to create an application-specific instrument for acquisition, generation, analysis, control and communication.
System Integration Considerations
Before selecting the NI‑7935R, verify:
- Required FlexRIO adapter module
- Required analog, digital, RF or communication interface
- Required FPGA size and DSP resources
- FPGA block RAM requirements
- FPGA DRAM buffering requirements
- Required SFP+ protocol and line rate
- Electrical or optical SFP+ cabling
- Ethernet bandwidth requirements
- Real-time processor workload
- Storage requirements
- Trigger and synchronization requirements
- Power supply capacity
- Mechanical mounting and cooling
- NI FlexRIO software compatibility
- LabVIEW Real-Time and FPGA compatibility
Power and Cooling Considerations
The NI‑7935R requires an external power supply connected to its front-panel power connector.
The specified input range is 9 VDC to 30 VDC. Maximum power consumption is 60 W, and NI recommends a power supply rated above 75 W at 12 VDC.
For reliable operation:
- Use a suitable approved power supply
- Verify connector polarity and wiring
- Provide adequate ventilation
- Do not block cooling openings
- Consider adapter module power consumption
- Follow the documented mounting requirements
Troubleshooting NI‑7935R Systems
If the NI‑7935R does not operate correctly, check the complete hardware and software configuration.
- Verify the external DC power supply and wiring.
- Check the Power and Status LEDs.
- Confirm the Ethernet connection and network configuration.
- Verify that the controller appears in NI Measurement & Automation Explorer.
- Confirm that compatible NI FlexRIO software is installed.
- Verify the LabVIEW Real-Time and LabVIEW FPGA versions.
- Check that the adapter module is fully installed.
- Confirm adapter module compatibility.
- Verify the FPGA bitfile and adapter CLIP configuration.
- Check DMA channels and FPGA-to-processor communication.
- Verify SFP+ module, cable and protocol configuration.
- Check external clock and trigger connections.
- Verify microSD and USB storage compatibility.
- Review application error logs and watchdog status.
How to Choose a Controller for FlexRIO
Before purchasing a Controller for FlexRIO, determine:
- Required FPGA size
- Required DSP slice count
- Required block RAM
- Required FPGA-accessible DRAM
- Need for SFP+ high-speed serial ports
- Required serial protocol and line rate
- Compatible FlexRIO adapter module
- Real-time processing requirements
- Network and storage requirements
- Clocking and synchronization requirements
- Power and environmental requirements
- Software and driver compatibility
Industries
- Semiconductor Test
- Aerospace and Defense
- Telecommunications
- Radar and Electronic Warfare Research
- Automated Test Equipment
- Electronic Design Validation
- Industrial Monitoring
- Scientific Research
- Embedded Systems
- Research and Development
Applications
High-Speed Data Acquisition
The NI‑7935R can acquire, process and buffer high-speed data when paired with a compatible digitizer or measurement adapter module.
Real-Time FPGA Signal Processing
The Kintex‑7 K410T FPGA provides substantial logic, DSP and memory resources for deterministic signal-processing algorithms.
High-Speed SFP+ Streaming
Two SFP+ ports support FPGA-based communication with compatible remote instruments, FPGA devices and data aggregation systems.
Custom Digital Instrumentation
Digital adapter modules and FPGA logic can implement custom protocols, pattern generation, acquisition and triggering.
Hardware-in-the-Loop Testing
The combined FPGA and real-time architecture can provide deterministic signal generation, acquisition and DUT response processing.
Field-Deployed Measurement
The stand-alone design supports remote, embedded and field-deployed measurement systems without requiring a PXI chassis.
NI‑7935R vs NI‑7931R
| Feature | NI‑7935R | NI‑7931R |
|---|---|---|
| FPGA | Kintex‑7 XC7K410T | Kintex‑7 XC7K325T |
| FPGA Slices | 63,550 | 50,950 |
| DSP Slices | 1,540 | 840 |
| FPGA Block RAM | 28,620 kbit | 16,020 kbit |
| FPGA DRAM | 2 GB | 2 GB |
| SFP+ Ports | 2 | None |
| Best For | Complex FPGA Processing and High-Speed Streaming | Standard Stand-Alone FlexRIO Applications |
NI‑7935R vs NI‑7932R
| Feature | NI‑7935R | NI‑7932R |
|---|---|---|
| FPGA | Kintex‑7 XC7K410T | Kintex‑7 XC7K325T |
| FPGA Slices | 63,550 | 50,950 |
| DSP Slices | 1,540 | 840 |
| FPGA Block RAM | 28,620 kbit | 16,020 kbit |
| FPGA DRAM | 2 GB | 2 GB |
| SFP+ Ports | 2 | 2 |
| Best For | More Demanding FPGA and DSP Applications | Moderate FPGA Processing with SFP+ Streaming |
Choose the NI‑7935R when the application requires more FPGA logic, DSP resources and block RAM. The NI‑7932R may be sufficient when high-speed serial connectivity is required but the larger K410T FPGA is unnecessary.
NI‑7935R vs PXIe‑7976R
| Feature | NI‑7935R | PXIe‑7976R |
|---|---|---|
| FPGA | Kintex‑7 K410T | Kintex‑7 K410T |
| FPGA DRAM | 2 GB | 2 GB |
| Form Factor | Stand-Alone | PXI Express |
| Embedded Real-Time Controller | Integrated | Separate PXI Controller Required |
| SFP+ Ports | 2 | Not the Primary Host Interface |
| PXI Chassis Required | No | Yes |
| Best For | Embedded and Remote Deployment | Multi-Instrument PXI Test Systems |
Software and Driver Requirements
NI‑7935R development normally requires compatible software for the controller, FPGA and selected adapter module.
The software environment may include:
- NI FlexRIO driver
- LabVIEW
- LabVIEW Real-Time Module
- LabVIEW FPGA Module
- Adapter module support files
- Component-Level Intellectual Property resources
- Protocol or instrument design libraries
Compatibility should be checked across the NI‑7935R, adapter module, operating system, LabVIEW version and FlexRIO driver version.
Recommended Related Products
| NI‑7931R | Stand-alone Controller for FlexRIO with a Kintex‑7 K325T FPGA and 2 GB of FPGA-accessible DRAM. |
| NI‑7932R | Controller for FlexRIO with a Kintex‑7 K325T FPGA, 2 GB DRAM and two SFP+ ports. |
| PXIe‑7976R | PXI Express FlexRIO FPGA module with a Kintex‑7 K410T FPGA and 2 GB DRAM. |
| NI‑6581B | 100 MHz, 54-channel single-ended digital I/O adapter module for compatible FlexRIO systems. |
| NI‑6583 | High-speed FlexRIO digital I/O adapter module for custom protocol and electronic test applications. |
| NI‑5734 | High-speed digitizer adapter module for waveform acquisition and FPGA signal processing. |
| NI PXI and FlexRIO Modules | Modular instruments for automated test, data acquisition, RF measurement and electronic validation. |
Why Choose NI‑7935R?
- Stand-alone Controller for FlexRIO architecture
- Kintex‑7 XC7K410T FPGA
- 254,200 FPGA lookup tables
- 1,540 DSP48 slices
- 28,620 kbit of embedded block RAM
- 2 GB FPGA-accessible DDR3 DRAM
- Dual-core ARM Cortex‑A9 processor
- NI Linux Real-Time operating system
- Two SFP+ high-speed serial ports
- Serial rates up to 10.3125 Gbps
- 16 DMA channels
- Gigabit Ethernet connectivity
- USB and microSD storage support
- External trigger and reference clock
- Compatible FlexRIO adapter module support
- No PXI chassis required
- Suitable for embedded FPGA signal processing
- Suitable for high-speed data streaming
- Suitable for field-deployed measurement
Frequently Asked Questions
What is the NI‑7935R?
The NI‑7935R is a stand-alone Controller for FlexRIO featuring a Kintex‑7 K410T FPGA, 2 GB DDR3 FPGA memory, a dual-core ARM processor and two SFP+ ports.
Is NI‑7935 the same as NI‑7935R?
Yes. NI‑7935 is the shortened model name commonly used on product pages, while NI‑7935R is the full model designation used in technical documentation.
What is the part number for the NI‑7935R?
The standard NI part number for the NI‑7935R is 783766‑01.
Which FPGA does the NI‑7935R use?
The NI‑7935R uses a Xilinx Kintex‑7 XC7K410T FPGA with 254,200 LUTs, 1,540 DSP48 slices and 28,620 kbit of block RAM.
How much FPGA-accessible memory does the NI‑7935R provide?
The controller provides 2 GB of FPGA-accessible DDR3 DRAM.
Which processor does the NI‑7935R use?
It uses a dual-core ARM Cortex‑A9 processor integrated in a Xilinx Zynq‑7020 SoC and operating at 667 MHz.
Which operating system does the NI‑7935R run?
The embedded controller runs a 32-bit version of NI Linux Real-Time.
How many SFP+ ports does the NI‑7935R provide?
The NI‑7935R provides two SFP+ ports connected to FPGA high-speed serial resources.
What SFP+ serial rates are supported?
The documented serial line rates are 10.3125 Gbps, 6.25 Gbps and 3.125 Gbps.
Can the NI‑7935R use optical SFP+ connections?
Yes. The high-speed serial ports support appropriate electrical or optical SFP+ connections.
Does the NI‑7935R require a PXI chassis?
No. It is a stand-alone Controller for FlexRIO and does not require a PXI or PXIe chassis.
Does the NI‑7935R include analog or digital measurement I/O?
The controller requires a compatible FlexRIO adapter module to provide application-specific analog, digital, RF or communication I/O.
Can the NI‑7935R operate without a host computer?
A deployed FPGA and real-time application can perform its programmed functions without continuous host control. A host computer is normally required for development, configuration and deployment.
Does the NI‑7935R support external triggering?
Yes. It includes a front-panel SMA trigger connection that can be configured through the FPGA application.
Does the NI‑7935R support an external reference clock?
Yes. The front-panel REF IN connector accepts a supported 10 MHz reference clock.
What is the power input range?
The NI‑7935R accepts 9 VDC to 30 VDC input power. NI specifies a maximum consumption of 60 W and recommends a power supply above 75 W at 12 VDC.
What is the difference between NI‑7935R and NI‑7932R?
Both provide two SFP+ ports and 2 GB of FPGA DRAM. The NI‑7935R uses the larger Kintex‑7 K410T FPGA, while the NI‑7932R uses a K325T FPGA.
What should I check before purchasing the NI‑7935R?
Verify the required FPGA resources, compatible FlexRIO adapter module, SFP+ protocol, cable type, data rate, storage requirements, external power supply, software version and required accessories.
Conclusion
The NI‑7935R Kintex‑7 K410T Controller for FlexRIO combines a large user-programmable FPGA, 2 GB of FPGA-accessible DDR3 memory, a dual-core ARM real-time processor and two SFP+ ports in a stand-alone platform. It is particularly suitable for embedded signal processing, high-speed data streaming, RF and digital prototyping, hardware-in-the-loop testing, semiconductor validation and field-deployed custom instrumentation.


