8 bit transient recorder
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8 bit transient recorder
The 2 models of the MX.20xx series are designed for the fast and high quality data acquisition. Every of the up to four input channels has its own A/D converter and its own programmable input amplifier. This allows to record signals with 8 bit resolution without any phase delay between them. The inputs could be selected to one of seven input ranges by software and could be programmed to compensate an input offset of +/-400% of the input range. The extremely large on-board memory allows long time recording even with highest samplerates. A FIFO mode is also integrated on the board. This allows to record data continuously and to process it in the PC or to store it to hard disk.
Facts & Features:
- Up to 200 MS/s on 1 channel
- Up to 100 MS/s on 2 channels
- Simultaneously sampling on all channels
- 7 input ranges: +/-50 mV up to +/-5 V
- Up to 128 MSample on-board memory
- 64 MSample standard memory installed
- Window and pulsewidth trigger
- Input offset up to +/-400%
- Synchronization possible
- CompactPCI/PXI 3U compatible
- Supporting PXI star trigger
- Supporting PXI trigger bus
- Supporting PXI reference clock
- Production test
- Laboratory equipment
FIFO modeThe FIFO mode is designed for continuous data transfer between measurement board and PC memory (with up to 100 MByte/s) or hard disk. The control of the data stream is done automatically by the driver on interrupt request. The complete installed on-board memory is used for buffer data, making the continuous streaming extremely reliable.
PXI Star Trigger Card (Optional)The MX.9010 is a special PXI star trigger card designed for the Spectrum PXI products. It allows to route clock and trigger synchronously to all PXI slots that are connected to the star trigger slot. The PXI reference clock is overwritten and external trigger events are synchronized to the sampling clock.
The data acquisition boards offer a wide variety of trigger modes. Besides the standard signal checking for level and edge as known from oscilloscopes it's also possible to define a window trigger. Trigger conditions can be combined with logical conjunctions like OR to adopt to different application scenarios.
All boards can be triggered using an external TTL signal. It's possible to use positive or negative edge also in combination with a programmable pulse width. An internally recognized trigger event can - when activated by software - be routed to the trigger connector to start external instruments.
PXI TriggerThe Spectrum cards support star trigger as well as the PXI trigger bus. using a simple software commend one or more trigger lines can be used as trigger source. This feature allows the easy setup of OR connected triggers from different cards.
Using a dedicated connector a sampling clock can be fed in from an external system. It's also possible to output the internally used sampling clock to synchronize external equipment to this clock.
PXI Reference ClockThe card is able to use the 10 MHz reference clock that is supplied by the PXI system. Enabled by software the PXI reference clock is feeded in the on-board PLL. This feature allows the cards to run with a fixed phase relation.
Reference ClockThe option to use a precise external reference clock (normally 10 MHz) is necessary to synchronize the board for high-quality measurements with external equipment (like a signal source). It's also possible to enhance the quality of the sampling clock in this way. The driver automatically generates the requested sampling clock from the fed in reference clock.
Programmable Input AmplifiersThe analog inputs can be adapted to real world signals using a wide variety of settings that are individual for each channel. By using software commands the input termination can be changed between 50 Ohm and 1 MOhm and one can select an input range matching the real world signal.
Programmable Input OffsetMost of the Spectrum A/D cards offer a user programmable signal offset opening the Spectrum boards to a wide variety of setups. The signal offset at least covers a range of +/-100 % of the currently selected input range making unipolar measurements with the card possible. Besides this the input range offset can be programmed individually allowing a perfect match of the A/D card section to the real world signal.
This standard driver is included in the card delivery and it is possible to get the newest driver version free of charge from our homepage at any time. There are no additional SDK fees for the classical text-based programming. All boards are delivered with drivers for Windows 7, Windows 8, Windows 10 and Windows 11, all 32 bit and 64 bit.
|Product||Channels||Max. Samplerate||Max. Bandwidth|
|MX.2020||2||50 MS/s||25 MHz|
|On different platforms||Bus||Max. Bus Transfer speed|
|M2i.2030-Exp||PCI Express x1||160 MByte/s|
Data sheet of the MX.20xx family
Manual of MX.20xx family
Data sheet of SPA pre-amplifier
|SBench 6 data sheet||
Data sheet of SBench 6
Manual for MATLAB drivers for MI/MC/MX
LabVIEW Manual for MI/MC/MX.20xx
|SBench 6 Manual||
Manual for SBench 6
WINDOWS DRIVER + SOFTWARE
MI/MC/MX/PCI.xxx Windows 98/NT 32 Bit Drivers
MI/MC/MX/PCI.xxx Windows XP/Vista 32 Bit Drivers
MI/MC/MX/PCI.xxx Windows XP/Vista 64 Bit Drivers
MI/MC/MX/PCI.xxx Windows 7/8 32 Bit Drivers
MI/MC/MX/PCI.xxx Windows 7/8 64 Bit Drivers
MI/MC/MX/PCI.xxx Windows 10 32 Bit Drivers
MI/MC/MX/PCI.xxx Windows 10/11 64 Bit Drivers
C/C++ driver header and library files
SBench 5 Installer
SBench 6 (32-bit) Installer / Windows 7, 8, 10
SBench 6 (64-bit) Installer / Windows 7, 8, 10, 11
MI / MC / MX MATLAB driver + examples
MI / MC / MX LabVIEW Driver
MI / MC / MX Examples for C/C++, Delphi, VB, LabWindows/CVI, ...
LINUX DRIVER + SOFTWARE
|Linux Driver Complete||
MI / MC / MX Linux 32 bit and 64 bit Drivers
SBench 6 Linux 32 (.rpm)
SBench 6 Linux 64 (.rpm)
SBench 6 Linux 32 (.deb)
SBench 6 Linux 64 (.deb)
SBench6 Jetson (.deb)
|MICX Examples for Linux||
MI / MC / MX Linux Examples (C/C++)
|General Digitizer Introduction||
General Introduction to Waveform Digitizers
|High-Res High BW Digitizers||
Advantages of High Resolution in High Bandwidth Digitizers
|Digitizer Acquisition Modes||
Using modular Digitizer Acquisition Modes
Proper Use of Digitizer Front-End Signal Conditioning
|Trigger and Sync||
Trigger, Clock and Synchronization Details at high-speed Digitizers
|SBench 6 Introduction||
SBench 6 - Data Acquisition and Analysis of Digitizer Data
Using Digitizers in Ultrasonic Applications
|Signal Processing Tools||
Using Signal Processing Tools to enhance Digitizer Data
|Using Probes & Sensors||
Using Probes and Sensors with Modular Digitizers
|Digitizers as Oscilloscope||
Using a Digitizer as Oscilloscope
|Teaming AWG with Digitizer||
Teaming an Arbitrary Waveform Generator with a Modular Digitizer
|Common Digitizer Setup Problems||
Application Note: Common Digitizer Setup Problems to avoid
|AN Amplitude Resolution||
Application Note: The Amplitude Resolution of Digitizers and how it affects Measurements