• Inquiry List(0)
English
繁體中文
简体中文
한국어
日本語
  • Login
  • Products
    Computer-On-Module
    • COM-HPC
    • COM Express
    • OSM
    • SMARC
    • Qseven
    • ETX
    GPU Solutions
    • NVIDIA MXM GPU Modules
    • NVIDIA Graphics Solutions
    • Intel Arc MXM GPU Modules
    • Intel Arc Graphics Card
    Rugged Computing
    • CompactPCI
    • CompactPCI Serial
    • VPX
    • PC104
    • AVA Railway Rugged Computers
    • PIDS
    Edge Computing Platforms
    • Industrial PCs, Motherboards, & SBCs
    • Embedded Computers & IoT Gateways
    • Edge AI Platforms
    • AI Smart Cameras
    • Robotic Controllers
    • Industrial Solid State Drives
    Industrial Display Systems and Panel PCs
    • Industrial Touch Monitors
    • Open Frame Panel PCs
    • All-in-One Panel PCs
    • Rugged Panel PCs
    • Digital Signage Players
    Automotive Computing
    • Autonomous Driving Solutions
    • AI-ADAS Solution
    Networking & Servers
    • AI GPU Servers
    • Industrial, Telecom Servers
    • Network Security Appliances
    • Private 5G Network Solution-MicroRAN
    Automation & Control
    • Machine Vision
    • Motion Control & I/O
    • EtherCAT Motion Control Solutions
    • HMI Panel PCs
    • Data Acquisition
    • GPIB & Digitizers
    • PXI Platforms & Modules
    • Autonomous Mobile Robots
    • Industrial Gateway Solutions
    Design & Manufacturing Services
    • DMS+ (ODM/OEM Services)
    Healthcare Computing & Monitors
    • Medical Panel PCs
    • Medical Monitors
    • Medical Box PCs
    Gaming Platforms & Monitors
    • Gaming-specific Solutions
    • Generic Solutions
    • Gaming Monitors
    • Advanced Gaming Architectures
    Software
    • EdgeGO Device Management Software
  • Industries
    Automotive Defense & Aviation Healthcare Gaming Industrial Automation Networking and Communications Retail & Logistics Semiconductor Solutions Smart Cities Test & Measurement Railway Robotics

    Automotive

    automotive computing

    With cutting-edge autonomous driving computing platforms that pave the way for safer and more productive travel, ADLINK's solutions provide you powerful computing capabilities to fulfill autonomous and advanced driver assistance system (ADAS) technologies as well as rugged design for automotive use.

    Learn More

    Defence & Aviation

    Defence & Aviation

    In the defense aviation arena, it is of paramount importance to accurately observe the environment and make fast and reliable decisions, leading to timely action. ADLINK rugged systems and Data Distribution Service (DDS) are a key part of a larger data-focused infrastructure that collects, stores, analyzes, and transfers information from the field to the decision-maker.

    Learn More

    Healthcare

    Healthcare

    ADLINK is addressing the needs of healthcare digitization with a focus on medical visualization devices and medically-certificated solutions. By leveraging PENTA's design and manufacturing capabilities in the medical field, ADLINK's healthcare solutions facilitate digital applications in diverse healthcare environments.

    Learn More

    Gaming

    gaming

    ADLINK Gaming provides global gaming machine manufacturers comprehensive solutions through our hardware, software, and display offerings. Uniquely combining computer expertise with a cutting-edge software stack and a deep understanding of the gaming industry’s requirements and regulations, we back up our customers so they can focus on creating the world’s best games.

    Learn More

    Industrial Automation

    Industrial Automation

    Industrial automation is a crucial facet of global manufacturing industries. ADLINK's flexible selection of system-, platform-, and product-based solutions overcomes the extreme environmental rigors of manufacturing deployments and delivers connected, fault-free performance on the factory floor.

    Learn More

    Networking and Communications

    Overview
    5G & MEC Cyber Security

    Retail & Logistics

    Retail Logistics

    Maintaining superior customer service and on-time delivery while simultaneously reducing retail shrinkage and increasing employee productivity can be very difficult to achieve when shipping high volumes of packages each day. ADLINK's solutions make customers' packages and pallets intelligent, efficiently connecting their entire supply chain and improving warehouse logistics.

    Learn More

    Semiconductor Solution

    Semiconductor Solution

    Everything is essentially driven by chips, and to suit the needs of diverse applications, a perfect wafer manufacturing process is necessary to ensure everything from quality to efficiency and productivity.

    Learn More

    Smart City

    Smart City

    A smart city is an urban area that implements Internet of Things sensors to collect data from a variety of sources and uses the insights gained from that data to manage assets, resources, and services efficiently. ADLINK's data-to-decision solutions incorporate video analytics, reliable design, deliver stability and reliability, and are an ideal choice to realize an efficient smart city.

    Learn More

    Test & Measurement

    Test & Measurement

    Test and measurement focuses on dedicated equipment for analysis, validation, and verification of electronic device measurement and end products. ADLINK continues to expand its T&M offerings with innovative products, meeting the unique needs of high-speed and high-bandwidth applications.

    Learn More

    Railway

    railway solution

    Our Rugged by Design CompactPCI/CompactPCI Serial, computer-on-modules, industrial-grade system and panel computer product portfolio has been specifically selected for onboard ATO/DMI and wayside CTC/RBC/TSRS railway solutions. ADLINK’s exceptional flexibility in design and manufacturing has been utilized by top rail signaling providers worldwide.

    Learn More

    Robotics

    Robotics

    Autonomous Mobile Robots (AMRs) are able to carry out their jobs with zero to minimal oversight by human operators. Facilities such as schools, hospitals, shopping malls, and factories in particular can use a swarm of AMRs to improve operational efficiency and quality of life.

    Learn More

    Featured Solutions

    5G MEC

    Autonomous Vehicle

    GPU Solutions

    ROS 2 Solution

    Smart Manufacturing

  • Strategic Partners
    AMD Ampere Arm Intel MediaTek NVIDIA NXP Qualcomm

    AMD-based Solutions

    AMD-based Solutions by ADLINK

    Empower your edge computing with ADLINK, a leading company enabling edge solutions. Leverage AMD's high performance, secure integration, and power efficiency advantages for a wide range of edge, networking, and edge systems with x86 core architecture. Experience superior processing and graphics performance with ADLINK's utilization of AMD Ryzen™ Embedded series, powered by Radeon™ RX, perfect for industrial, medical, automation and gaming applications.

    Learn More

    Ampere-based Solutions

    Ampere-based Solutions by ADLINK

    Experience the future of edge computing with our comprehensive offering, which includes the Ampere Altra-based COM-HPC module, a developer platform and/or dev kit. Dive in now to unleash superior performance, energy efficiency, and optimized TCO in applications including but not limited to industrial automation, autonomous vehicles, transportation, healthcare, video surveillance, and energy management.

    Learn More

    Arm-based Solutions

    Arm-based Solutions by ADLINK

    Based on Arm architecture, ADLINK also collaborates with Ampere, NXP, MediaTek, Qualcomm, and Rockchip in module computing development and value-added solutions across varied industries, including smart manufacturing, autonomous driving, robotics, AMR, drone, transportation, logistics, retail, infotainment, healthcare, security, and more.

    With plug-and-play tools, development kits, and all-encompassing systems, ADLINK and Arm empower developers to accelerate and realize their innovations.

    Learn More

    Intel-based Solutions

    Intel-based Solutions by ADLINK

    ADLINK is a Titanium member in Intel® Partner Alliance. From modular computing to system-ready use cases, ADLINK works closely with Intel to provide scalable, interoperable solutions that accelerate your intelligent device deployment with end-to-end analytics.

    Utilizing Intel-based modules, ADLINK accelerates your products’ time to market with edge AI platform development support while addressing diverse industry pain points, such as in networking, smart manufacturing, autonomous driving, AMR, transportation, healthcare, retail, and infotainment.

    Learn More

    MediaTek-based Solutions

    MediaTek-based Solutions by ADLINK

    ADLINK Technology and MediaTek are strategic partners that deliver innovative and powerful solutions for edge computing and edge AI applications. Leveraging MediaTek's flagship, power-efficient Genio platform SoCs and ADLINK's expertise in embedded and rugged designs, they provide high-performance, energy-efficient, and reliable modules and platforms in accomplishing various IoT use cases, such as smart home, human-machine interface, multimedia, industrial IoT, and robotics.

    Learn More

    NVIDIA-based Solutions

    Qualcomm-based Solutions by ADLINK

    To fulfill industry-specific requirements, ADLINK is able to efficiently develop edge AI platforms, AI smart cameras, medical platforms, and AI portable GPU accelerators based on NVIDIA Jetson modules, the NVIDIA IGX platform, and RTX Embedded GPUs for applicable industries, including smart manufacturing, autonomous driving, autonomous mobile robots (AMR), robotics, transportation, healthcare, logistics, retail, infotainment, AI development, professional graphics, and gaming.

    Learn More

    NXP-based Solutions

    NXP-based Solutions by ADLINK

    Utilizing NXP's i.MX 8 and i.MX 9 series technology, ADLINK offers edge-connected solutions to assist medical, test & measurement, automation, and smart city customers reduce TCO. This combination of NXP's technology with ADLINK's R&D experience in edge computing provides versatile and dynamic solutions for critical applications.

    Learn More

    Qualcomm-based Solutions

    Qualcomm-based Solutions by ADLINK

    Qualcomm Technologies’ portfolio of leading robotics and drones solutions is driving next-generation use cases, including autonomous deliveries, mission critical use cases, commercial and enterprise drone applications and more.

    Among them, the Qualcomm QRB5165 solution is designed to help build consumer, enterprise or industrial robots with 5G connectivity, on-device AI and machine learning, superior computing, and intelligent sensing capabilities. By adopting Qualcomm QRB5165, ADLINK’s module will enable the proliferation of 5G in robotics and intelligent systems.

    Learn More
  • Support

    Support

    Partner CentereRMA ServicesADLINK DDS Support

    Downloads

    Software & DriversADLINK DDS DownloadsPublicationsContent HubADLINK GitHub

    Contact

    Ask an ExpertWhere to Buy

    No matter you need to get product pricing and availability or need assistance with technical support, we are here for you.

    Learn More
  • About

    Values

    Quality Policy and ResourcesAlliances and ConsortiaADLINK SustainabilityEnviromental Protection & ResponsibilitiesCapabilitesProduct Security

    Company

    About ADLINKMission and VisionInvestor RelationsWorldwide OfficesLogo and Brand GuidelinesCareers

    Newsroom

    News & EventsPodcastBlogs
    Support

    Check out the latest news and explore ADLINK featured blogs.

    Learn More
  • Home
  • Industries
  • Test & Measurement
  • Technical Papers
  • Application of High-speed Digitizers in Electronic Time Fuse General Testing Systems
  • Home
  • Industries
  • Test & Measurement
  • Technical Papers
  • Application of High-speed Digitizers in Electronic Time Fuse General Testing Systems
English
繁體中文
简体中文
한국어
日本語
  • Login
  • Login
  • home
    • Products
      Computer-On-Module+ GPU Solutions+ Rugged Computing+ Edge Computing Platforms+ Industrial Display Systems and Panel PCs+ Automotive Computing+ Networking & Servers+ Automation & Control+ Design & Manufacturing Services+ Healthcare Computing & Monitors+ Gaming Platforms & Monitors+ Software+
      COM-HPCCOM ExpressOSMSMARCQsevenETX
      NVIDIA MXM GPU ModulesNVIDIA Graphics SolutionsIntel Arc MXM GPU ModulesIntel Arc Graphics Card
      CompactPCICompactPCI SerialVPXPC104AVA Railway Rugged ComputersPIDS
      Industrial PCs, Motherboards, & SBCsEmbedded Computers & IoT GatewaysEdge AI PlatformsAI Smart CamerasRobotic ControllersIndustrial Solid State Drives
      Industrial Touch MonitorsOpen Frame Panel PCsAll-in-One Panel PCsRugged Panel PCsDigital Signage Players
      Autonomous Driving SolutionsAI-ADAS Solution
      AI GPU ServersIndustrial, Telecom ServersNetwork Security AppliancesPrivate 5G Network Solution-MicroRAN
      Machine VisionMotion Control & I/OEtherCAT Motion Control SolutionsHMI Panel PCsData AcquisitionGPIB & DigitizersPXI Platforms & ModulesAutonomous Mobile RobotsIndustrial Gateway Solutions
      DMS+ (ODM/OEM Services)
      Medical Panel PCsMedical MonitorsMedical Box PCs
      Gaming-specific SolutionsGeneric SolutionsGaming MonitorsAdvanced Gaming Architectures
      EdgeGO Device Management Software
      AdvancedTCA Switch BladeAdvancedTCA PlatformAdvancedTCA Processor Blade
      Embedded Flash Storage
      COM-HPC Server Type COM-HPC Client Type
      COM Express Type 6 COM Express Type 7 COM Express Type 10 COM Express Type 2
      MXM 3.1 Type A MXM 3.1 Type B
      Pocket AI (Portable GPU)
      MXM-AXe MXM-AXe Dev Kit
      3U CompactPCI 2.0 / 2.3 Blades 6U CompactPCI 2.0 Blades 3U CompactPCI Serial Blades CompactPCI Switches 3U Enclosures & Systems 6U Enclosures & Systems Peripherals & Accessories 6U Rear Transition Modules CompactPCI Backplane Power Supplies Intelligent Railway Platforms
      3U VPX Processor Blades 6U VPX Processor Blades VPX Graphics Cards & XMC Modules
      Mini-ITX Motherboards Expandable Fanless Embedded PCs Integrated Fanless Embedded PCs ATX Motherboards Embedded Boards IPC Systems PICMG Single Board Computers Passive Backplanes Industrial Computer Peripherals Industrial Computer Chassis
      Powered By NVIDIA Jetson
      ROS2 Solutions ADLINK ROS2 Github NeuronSDK
      2U Network Appliance 4U Network Appliance
      Frame Grabbers/Video Capture Cards Image Analysis Tool Smart Camera Vision Systems AI Machine Vision Device
      Centralized Motion Controller Distributed Motion Controller Encoder & Trigger Board Motion Software & Utility
      Machine Condition Monitoring Data Acquisition (DAQ) Digitizers
      PXI Chassis PXI Controller PXI/cPCI Modules Remote Controller
      AMR
    • Industries
      Automotive Defense & Aviation Healthcare Gaming Industrial Automation Networking and Communications Retail & Logistics Semiconductor Solutions Smart Cities Test & Measurement Railway Robotics

      Automotive

      automotive computing

      With cutting-edge autonomous driving computing platforms that pave the way for safer and more productive travel, ADLINK's solutions provide you powerful computing capabilities to fulfill autonomous and advanced driver assistance system (ADAS) technologies as well as rugged design for automotive use.

      Learn More

      Defence & Aviation

      Defence & Aviation

      In the defense aviation arena, it is of paramount importance to accurately observe the environment and make fast and reliable decisions, leading to timely action. ADLINK rugged systems and Data Distribution Service (DDS) are a key part of a larger data-focused infrastructure that collects, stores, analyzes, and transfers information from the field to the decision-maker.

      Learn More

      Healthcare

      Healthcare

      ADLINK is addressing the needs of healthcare digitization with a focus on medical visualization devices and medically-certificated solutions. By leveraging PENTA's design and manufacturing capabilities in the medical field, ADLINK's healthcare solutions facilitate digital applications in diverse healthcare environments.

      Learn More

      Gaming

      gaming

      ADLINK Gaming provides global gaming machine manufacturers comprehensive solutions through our hardware, software, and display offerings. Uniquely combining computer expertise with a cutting-edge software stack and a deep understanding of the gaming industry’s requirements and regulations, we back up our customers so they can focus on creating the world’s best games.

      Learn More

      Industrial Automation

      Industrial Automation

      Industrial automation is a crucial facet of global manufacturing industries. ADLINK's flexible selection of system-, platform-, and product-based solutions overcomes the extreme environmental rigors of manufacturing deployments and delivers connected, fault-free performance on the factory floor.

      Learn More

      Networking and Communications

      Overview
      5G & MEC Cyber Security

      Retail & Logistics

      Retail Logistics

      Maintaining superior customer service and on-time delivery while simultaneously reducing retail shrinkage and increasing employee productivity can be very difficult to achieve when shipping high volumes of packages each day. ADLINK's solutions make customers' packages and pallets intelligent, efficiently connecting their entire supply chain and improving warehouse logistics.

      Learn More

      Semiconductor Solution

      Semiconductor Solution

      Everything is essentially driven by chips, and to suit the needs of diverse applications, a perfect wafer manufacturing process is necessary to ensure everything from quality to efficiency and productivity.

      Learn More

      Smart City

      Smart City

      A smart city is an urban area that implements Internet of Things sensors to collect data from a variety of sources and uses the insights gained from that data to manage assets, resources, and services efficiently. ADLINK's data-to-decision solutions incorporate video analytics, reliable design, deliver stability and reliability, and are an ideal choice to realize an efficient smart city.

      Learn More

      Test & Measurement

      Test & Measurement

      Test and measurement focuses on dedicated equipment for analysis, validation, and verification of electronic device measurement and end products. ADLINK continues to expand its T&M offerings with innovative products, meeting the unique needs of high-speed and high-bandwidth applications.

      Learn More

      Railway

      railway solution

      Our Rugged by Design CompactPCI/CompactPCI Serial, computer-on-modules, industrial-grade system and panel computer product portfolio has been specifically selected for onboard ATO/DMI and wayside CTC/RBC/TSRS railway solutions. ADLINK’s exceptional flexibility in design and manufacturing has been utilized by top rail signaling providers worldwide.

      Learn More

      Robotics

      Robotics

      Autonomous Mobile Robots (AMRs) are able to carry out their jobs with zero to minimal oversight by human operators. Facilities such as schools, hospitals, shopping malls, and factories in particular can use a swarm of AMRs to improve operational efficiency and quality of life.

      Learn More

      Featured Solutions

      5G MEC

      Autonomous Vehicle

      GPU Solutions

      ROS 2 Solution

      Smart Manufacturing

    • Strategic Partners
      AMD Ampere Arm Intel MediaTek NVIDIA NXP Qualcomm

      AMD-based Solutions

      AMD-based Solutions by ADLINK

      Empower your edge computing with ADLINK, a leading company enabling edge solutions. Leverage AMD's high performance, secure integration, and power efficiency advantages for a wide range of edge, networking, and edge systems with x86 core architecture. Experience superior processing and graphics performance with ADLINK's utilization of AMD Ryzen™ Embedded series, powered by Radeon™ RX, perfect for industrial, medical, automation and gaming applications.

      Learn More

      Ampere-based Solutions

      Ampere-based Solutions by ADLINK

      Experience the future of edge computing with our comprehensive offering, which includes the Ampere Altra-based COM-HPC module, a developer platform and/or dev kit. Dive in now to unleash superior performance, energy efficiency, and optimized TCO in applications including but not limited to industrial automation, autonomous vehicles, transportation, healthcare, video surveillance, and energy management.

      Learn More

      Arm-based Solutions

      Arm-based Solutions by ADLINK

      Based on Arm architecture, ADLINK also collaborates with Ampere, NXP, MediaTek, Qualcomm, and Rockchip in module computing development and value-added solutions across varied industries, including smart manufacturing, autonomous driving, robotics, AMR, drone, transportation, logistics, retail, infotainment, healthcare, security, and more.

      With plug-and-play tools, development kits, and all-encompassing systems, ADLINK and Arm empower developers to accelerate and realize their innovations.

      Learn More

      Intel-based Solutions

      Intel-based Solutions by ADLINK

      ADLINK is a Titanium member in Intel® Partner Alliance. From modular computing to system-ready use cases, ADLINK works closely with Intel to provide scalable, interoperable solutions that accelerate your intelligent device deployment with end-to-end analytics.

      Utilizing Intel-based modules, ADLINK accelerates your products’ time to market with edge AI platform development support while addressing diverse industry pain points, such as in networking, smart manufacturing, autonomous driving, AMR, transportation, healthcare, retail, and infotainment.

      Learn More

      MediaTek-based Solutions

      MediaTek-based Solutions by ADLINK

      ADLINK Technology and MediaTek are strategic partners that deliver innovative and powerful solutions for edge computing and edge AI applications. Leveraging MediaTek's flagship, power-efficient Genio platform SoCs and ADLINK's expertise in embedded and rugged designs, they provide high-performance, energy-efficient, and reliable modules and platforms in accomplishing various IoT use cases, such as smart home, human-machine interface, multimedia, industrial IoT, and robotics.

      Learn More

      NVIDIA-based Solutions

      Qualcomm-based Solutions by ADLINK

      To fulfill industry-specific requirements, ADLINK is able to efficiently develop edge AI platforms, AI smart cameras, medical platforms, and AI portable GPU accelerators based on NVIDIA Jetson modules, the NVIDIA IGX platform, and RTX Embedded GPUs for applicable industries, including smart manufacturing, autonomous driving, autonomous mobile robots (AMR), robotics, transportation, healthcare, logistics, retail, infotainment, AI development, professional graphics, and gaming.

      Learn More

      NXP-based Solutions

      NXP-based Solutions by ADLINK

      Utilizing NXP's i.MX 8 and i.MX 9 series technology, ADLINK offers edge-connected solutions to assist medical, test & measurement, automation, and smart city customers reduce TCO. This combination of NXP's technology with ADLINK's R&D experience in edge computing provides versatile and dynamic solutions for critical applications.

      Learn More

      Qualcomm-based Solutions

      Qualcomm-based Solutions by ADLINK

      Qualcomm Technologies’ portfolio of leading robotics and drones solutions is driving next-generation use cases, including autonomous deliveries, mission critical use cases, commercial and enterprise drone applications and more.

      Among them, the Qualcomm QRB5165 solution is designed to help build consumer, enterprise or industrial robots with 5G connectivity, on-device AI and machine learning, superior computing, and intelligent sensing capabilities. By adopting Qualcomm QRB5165, ADLINK’s module will enable the proliferation of 5G in robotics and intelligent systems.

      Learn More
    • Support

      Support

      Partner CentereRMA ServicesADLINK DDS Support

      Downloads

      Software & DriversADLINK DDS DownloadsPublicationsContent HubADLINK GitHub

      Contact

      Ask an ExpertWhere to Buy

      No matter you need to get product pricing and availability or need assistance with technical support, we are here for you.

      Learn More
    • About

      Values

      Quality Policy and ResourcesAlliances and ConsortiaADLINK SustainabilityEnviromental Protection & ResponsibilitiesCapabilitesProduct Security

      Company

      About ADLINKMission and VisionInvestor RelationsWorldwide OfficesLogo and Brand GuidelinesCareers

      Newsroom

      News & EventsPodcastBlogs
      Support

      Check out the latest news and explore ADLINK featured blogs.

      Learn More
English
繁體中文
简体中文
한국어
日本語
  • Login

Application of High-speed Digitizers in Electronic Time Fuse General Testing Systems

Xu Xin,
Senior Engineer
212st Research Institute of China North Industries Group

Application

 

Electronic time fuse and setter product testing applications

Challenge

 

Traditional electronic time fuse testing systems come with simple functions and a low level of integration. A variety of general test equipment is needed to assist in completing the tests, which become very complicated as a result, causing low testing efficiency. The testing accuracy is also greatly affected by human factors. With the gradually improved performance and functionality of fuses, current testing approaches no longer satisfy operating requirements. Therefore, the idea of developing a high-performance electronic time fuse general testing system was devised. This system utilizes the design concepts of generalization, modulization and integration. It has advantages including ease of operation, high measuring accuracy, low procurement cost, ease of upgrade, and portability, which realize the goals of automated fuse testing, data statistics, functional analysis etc., and qualitatively improve the technology level of electronic time fuse functional testing systems.

Solution

 

The electronic time fuse general testing system utilizes industrial control computers as its system development platform. The PCI-9846 high-speed digitizer by ADLINK Technology is used as signal acquisition module. Graphical programming software LabVIEW is utilized to perform control of testing procedures, data analysis and user interface development. Together with the PCI-7230 isolated digital I/O card, PCI-7250 relay output card, signal control module, specialized signal modulated circuit, digital program controlled power supply, a generalized and modularized electronic time fuse automated testing system with generalization is realized. It is able to conduct real-time measurement and evaluation on the electrical performances of setting waveforms, operating voltage, current, power consumption, and input/output signals.

 

Electronic time fuses are a widely applied fuse product used for providing the control signal to open the main shell of cluster munitions, which is a major component of remote suppression weapon systems. Electronic time fuses, being a kind of highly integrated electronic fuse, have to be rigorously tested with regards to operating performance before they can be supplied to the end user. Therefore, all kinds of electronic time fuse products are equipped with specialized testing instrument to complete performance tests. However, traditional instrumental testing models utilized in the past have revealed problems including low efficiency, poor accuracy and low detection rate, following the development of electronic time fuses. Moreover the testing equipment for electronic time fuses of one model is not interoperable and exchangeable with that for other models. Therefore, a new general testing system design is urgently needed for resolving these issues.

1. Operating principles and testing system requirements of electronic time fuses

 

An electronic time fuse is a component which provides a detonation signal for cluster munitions. Its operating principle is that prior to munition launch, the parameter setter will calculate the shell opening time for its setter firing control system first. After launch of munitions, the electronic time fuse will start clocking from the time of launch. When the clocking reaches the predefined action time, the shell opening and ignition signal is transmitted to the warhead to complete detonation of munitions.

 

According to the operating principle of electronic time fuses, the basic requirements of general testing systems include the following:

 
  1. Provide multiple adjustable stable DC power sources as the operating power for electronic time fuse and setter
  2. Provide analog firing control signal to control the operation of setter
  3. Capable of providing actual operating time sequence control over the operation of electronic time fuse and setter
  4. Capable of providing analog time modification signals
  5. Capable of providing analog loading on the product to be tested
  6. Capable of collecting multiple analog and digital signals
  7. Capable of analyzing, handling, displaying, and storing test data and automatically generating test reports, including action time, operating voltage, operating current, ignition signal amplitude and fault status etc.

2. Design program

 

Based on the deficiencies of traditional electronic time fuse testing systems, the new testing program is hoped to achieve the following results:

 
  1. High level of integration, minimize physical space occupied and improve mobility
  2. Automation, minimize influences by human factors on product test results
  3. Generalization, capable of adapting to tests conducted with different model numbers of electronic time fuse and setter products, which can reduce repeated development work
  4. High efficiency, test time of a single product can be shortened to minimum, which can be accommodated to meet the requirements of large batch production
  5. High detection rate, the intermediate parameters of the product under test can be also tested to increase coverage
 

According to the operating requirements of operational characteristics, automation and generalization of electronic time fuse testing, virtual instrumental technology is much in line with the program requirements and can better achieve the results the program expects. ADLINK Technology has a rich virtual instrumental test and measurement product line, and is capable of providing a wider selection. LabVIEW development software is easy to learn and use. It can be utilized to develop complex, parallel, effective and easy-to-operate testing systems quickly and conveniently. In order to reduce the cost of the system, it was decided to select an IPC equipped with PCI cards and expansion USB ports, serial ports and other modular units to perform data exchange and testing, and develop the new testing system under the LabVIEW software platform. The overall program design is shown in Figure 1:

Figure 1 Overall program block diagram

A digital program controlled power supply is used to provide operating power to the electronic time fuse and the setter to be tested. It has four programmable and 4 fixed voltage outputs with input voltages ranged between -12V and +36V. The IPC computer can perform programming through the serial interface to have its output voltage meet the operating power requirements of different models of electronic time fuses and setters.

 

Setting signals, initiation signals, ignition signals, operating voltage and operating current etc. that are related to fuse input and output signals are monitored in waveform format and collected by the PCI-9846 high-speed digitizer.

 

The initiation control, mode control and other digital control signals of electronic time fuses and setters as well as the monitoring of intermediate signals during the operation of fuse and setter are completed by the PCI-7230 isolated digital I/O card.

 

The operating power supplier for the product to be tested has its output control managed by the PCI-7250 relay output card through the relay.

 

The signal modulation circuit mainly modulates all kinds of the signals from the electronic time fuse and the setter to be tested into the acceptable range of the test boards and cards, e.g. signal pull high, pull low matching; all kinds of switches with normally-open, normally-closed contact matching; analog, digital, pulse level, voltage modulation; signal filtering, amplification and other modulations.

 

The product to be tested and the general testing system are connected by specialized test cabling. When testing electronic time fuses and setters of different model number, it is only necessary to change the testi cabling and call for corresponding testing software and parametrical settings.

3. Realization of key modular software and hardware

 

Based on the deficiencies of traditional electronic time fuse testing systems, the new testing program is hoped to achieve the following results:

 
  • Testing the parametrical setting function

    When the electronic time fuse performs parametrical settings, in order to meet the requirement of prompt responses, it has to transmit as much data as possible within a minimal time interval. Therefore, the length of its encoded setting is not likely to be too long. The signal with the shortest code length is on the order of microseconds. Moreover, in some operating environments, parametrical setting work proceeds continuously, accompanying the operation of the weapon system until munitions are launched. Thus, when performing reliability testing on the setting of a product, prolonged continuous setting testing is required. From the characteristics listed above that are related to the performing of parametrical setting functional testing, it can be learned that the key to completing that testing is that the testing system should simultaneously possess the twin characteristics of a higher sampling rate and longer data storage.

    The PCI-9846 high-speed digitizer by ADLINK Technology is 4-channel high-speed data acquisition equipment with a 40MS/s sampling rate per channel and 16-bit sampling resolution, which can satisfy the needs of real-time high-resolution acquisition of setting signal waveforms. It is also equipped with 512MB memory on board that frees it from the PCI bus bandwidth limitation and renders it capable of storing more waveforms in a longer time, which satisfies the operating requirements for a large data storage capacity needed for performing continuous setting reliability testing.

    The input impedance of PCI-9846 digitizer is 50�[ or 1M�[ and its input range is ��1V or ��5V. The above two parameters can be adjusted by software. Therefore, for products set by digital signal, acquisition and handling can be performed directly; while, for products set by analog signal, because its setting signal amplitude can exceed the input range of the digitizer, the analog signals are voltage divided by the signal modulation circuit and transformed to within the range of ��5V for performing acquisition.

    During setting performance testing, the main control program will confirm output operating voltage according to the model number of the product to be tested and provide operating power through the relay controlled output power in the PCI-7250 relay output card, before transmitting setting parameters to the setter via serial port and starting the data acquisition subprogram (refer to Figure 2). The data acquisition subprogram-controlled digitizer starts to collect the feature signals delivered by the signal modulation circuit, where one channel records the waveform of the setting signal, one channel detects the operating power signal provided to the product, and one channel detects the operating current signal of the product. In the meantime, an initiation signal is delivered by the digital output port of PCI-7230 to the setter. After detecting that all the setting signals have been transmitted, the system stops data acquisition and starts to perform analysis and processing for the signal data collected. Through the measurement of the amplitude, code width, and duty cycle of the setting signal, and parameters including operating voltage, operating current and etc., judgment on the performance index of the product is given.

    When performing continuous setting functional testing, the main control program will continuously transmit initiation control signals to the setter and control the operation of the setter through PCI-7230 after initiating the data acquisition subprogram. The whole testing process takes 10,000 loops in total. Simultaneously with transmitting continuous setting signals to the setter the testing system will continuously collect parameters including signal waveforms, operating voltage and operating current etc. from the fuse setter line under testing. The main control program then reads the waveform data collected from the on-board memory in the digitizer and stores in a real-time manner. After the whole testing process finishes, the main control software will stop data acquisition and read back stored data to start analysis and processing. The restored signal waveforms will be displayed and each group of setting signals will then have its performance analyzed, the reliability of parametrical settings determined, and statistical results revealed. The data analysis and processing interface is shown in Figure 3 below.
Figure 2 Data acquisition subprogram
Figure 3 Continuous setting testing data analysis interface
  • Testing the accuracy of electronic time fuse clocking

    The clocking time of electronic time fuses is the time difference from the time it starts clocking after receipt of the clock starting signal to the time the ignition signal is delivered. According to the differences of the application background of different models, the clocking accuracy and clocking time range varies hugely. For the electronic time fuses in Close-in Weapon System (CIWS) munitions, its clocking accuracy needs to within microsecond level and the length of clocking time should be longer than 100 milliseconds. The most important factor for performing clocking accuracy testing is that the sampling rate should be high enough. On the other hand, the electronic time fuses used in long-distance suppression weapon systems have a clocking accuracy measured at the millisecond level, but the length of clocking time is usually longer than 400 seconds. The sampling rate during testing can be appropriately reduced in order to meet the requirement of prolonged data acquisition.

    According to the above characteristics, when performing clocking accuracy testing on different models of electronic time fuses, the sampling rate of the digitizer can be controlled by software from 1MS/s to 40MS/s, which ensures the precondition of time testing accuracy and saves system resources.

    When conducting clocking accuracy testing, the main control program will determine the operating voltage to be supplied to the product to be tested according to its model number, and then deliver output control to the product to be tested through the relay output card. The operating data acquisition subprogram is then started and the initiation control signal is transmitted simultaneously to the fuse to be tested to start its clocking. The testing system will synchronously monitor the initiation control signal, ignition output signal, operating voltage and operating current etc. of the fuse to be tested. When the ignition signal is detected, data acquisition will be stopped and the analysis and processing for the data collected will be started. The time from the time the initiation signal is started to the output time of the ignition signal is the fuse clocking time. In the meantime, the ignition signal waveform of the fuse is also being analyzed; the maximum voltage with respect to the ignition signal is measured, the integral of the ignition signal waveform is calculated, and the parameters of the ignition signal including amplitude, energy, operating voltage, and operating current will be assessed to determine whether they meet the criteria of performance indexes. Figure 4 shows the waveforms of the initiation signal and the ignition signal collected by the testing system from one electronic time fuse.
Figure 4 Waveforms of the initiation signal and the ignition signal from one electronic time fuse
  • Generation of product control signal

    The control signals of electronic time fuses and setters during their operation are mostly digital I/O signals. Therefore, the PCI-7203 isolated digital input output card was chosen to generate the product control signal. This card has 16 channels of isolated digital input and 16 channels of isolated digital output function. Its output channel has a wide output range between 5-35V, which can satisfy the operating requirements of all kinds of control signals of different models of electronic time fuses and setters. The digital input channel has an input range between 0-24V and is capable of monitoring changes of all kinds of intermediate signals of fuses and setters during their operation.

    During system testing, the required digital power supply voltage is confirmed according to the model of product to be tested, and then the data transmission to setter is completed through serial ports. The setting initiation signal is then transmitted via digital output channel 1 to control the setter and start its operation. After setting is finished, the fuse clocking initiation signal will be transmitted via digital output channel 2 and the fuse to be tested will start clocking. Based on the requirements of different fuses, all the intermediate characteristic signals of the fuse to be tested are monitored through the digital input channel in a real-time manner. If the test has an electronic time fuse with time modification function, after the fuse starts clocking, the modification signal pulse should be transmitted to the fuse to be tested through another 3 output channels. Figure 5 is the waveform of the output initiation control signal.
Figure 5 The initiation control signal output by the testing system

4. Software design of the testing system

 

The control software of the electronic time fuse general testing system works under Windows OS platform and is developed on the LabVIEW 8.5 platform. The concept of modularized programming is adopted and top-to-bottom design is applied. In order to fulfill the requirements of high-speed acquisition, multi-threaded programming is utilized: one thread is for user interface, one for data acquisition and one for instrumental control. It has an excellent human-machine interface for the functions including data acquisition, data analysis, storage and automatic report generation etc. The main process of the system testing software is shown in Figure 6.

Figure 6 Software design process for the general testing system
  1. Select product model

    Based on the model of product to be tested, select the corresponding product model number on the operation interface. System control software will automatically upload corresponding systematic setting parameters according to the model number of the product to be tested.

  2. Power setup

    System control software will encode required power parameters and transmit them to the digital program-controlled power through serial ports according to the loaded operating power parameters of the product to be tested. The digital program-controlled power performs automatic modifications on system operating power based on the power parameters received and return the modification results to the system control software.

  3. Select test item

    According to the testing requirements of different fuses, different test content including setting performance test, continuous setting reliability test, clocking accuracy functional test etc. can be selected. And the test conditions associated with different test items can also be selected, e.g. high temperature, low temperature, vibration etc. The corresponding testing data can be automatically loaded according to the differences of test content and test project.

  4. Functional test

    Following the selection of the previous three items, the functional test will be automatically started after clicking. The system controls the operation of the product to be tested by control signals and collects related characteristic signals during the operation of the product to be tested. Each test item is packed in a sub-VI, which is convenient for the use of main-VI and TestStand. Test data can be automatically loaded or can be modified prior to test start, altering settings such as setting time, modification time etc.

  5. Data processing and storage

    After completion of a test, all testing information and data is recorded, analyzed, processed and stored, including current test date, time, test data and the status of each test project (not tested, pass, fault information) etc. The data processing and storage interface is shown in Figure 7.

  6. Automatic generation of reports

    When a print out or test report is required, the report generation tool kit of LabVIEW can be utilized and called for a corresponding report template, or by TestStand, to automatically generate necessary reports and files with the content of the stored data in template format.
Figure 7 Data processing and storage interface

5. Test and performance validation

 

Graphical, real-time and dynamic display of measurement data is an essential function for test instruments such as the commonly found digital oscilloscope, spectrum analyzer etc. These devices are equipped with CRT monitors to show the measurement signal waveform and the operating state of the instrument. LabVIEW controls waveform display through real-time trend diagram controls, which will continuously add new data to the end of the existing data, so the waveform is shown in a forward-moving manner. The signal changing process during the operating process of the fuse can therefore be clearly observed and the changing of the signals to be tested can be monitored in real-time.

 

For real-time display of testing system data, select from the relevant item from the ��Channel Replay�� column for the multi-threaded signals of the fuse. The waveform of a channel can be displayed. When the data is replayed, the displayed waveform can be zoomed in or zoomed out to change its size. Figure 8 shows the waveform in one channel of this testing system.

Figure 8 Waveform diagram of one channel of this testing system

The objective of fuse testing is to acquire the operating performance, status or characteristic signals of the fuse, so data acquisition is only the first step of the testing task. Data analysis and processing are a key portion of a testing system. Traditional fuse test data is processed by tools like DSP or MATLAB, but this testing system utilizes the varied features of LabVIEW software and its powerful analysis tool kits that can easily handle complex data analysis and processing work. Its data processing utilizes tool kits and is processed in the background. The test results will indicate the verdict of pass or fail immediately after the completion of processing, which can help testers to understand the test results with a quick glance.

 

After the design of a testing system is finished, several conditions can be set up to test the actual performance of the system. Through the operation performed by the testers, the average testing time for a single product is measured; through multiple tests, the system reliability can be validated; through setup of faults, the level of system detection rate can be tested; through signal comparison and locating, testing accuracy of the system can be tested. All the tests conducted indicate that the single product testing time of the testing system has been shortened by more than 50%, while testing accuracy, reliability and detection rate are also improved. From the perspectives the requirements of automation and generalization, both are met by the system design.

Conclusions

 

By focusing on the operational requirements of operating characteristics, automation, and generalization for electronic time fuses, this testing system utilizes virtual instrumental technology with an IPC equipped with hardware including a high-speed digitizer, digital I/O, replay output cards etc. by ADLINK Technology. The graphical software programming of LabVIEW is integrated to develop a powerful, effective, easy-to-use, and easily expandable electronic time fuse general testing system. Automated control over the testing process and steps, measurement data analysis and processing and automatic judgment on fault modes are realized, which obviously improved testing efficiency, testing accuracy and detection rate. Compared with traditional testing approaches, virtual instrumental testing has greater advantages, which ensure wider, more in-depth applications can be implemented quickly.


Related ADLINK Links:

  • More about ADLINK Digitizers
  • More about PCI-9816/9826/9846
Distributed Temperature Sensing with High-Resolution Digitizers List Design of a Testing Apparatus for AIR Navigation Vor Signals
About ADLINK
Mission & Vision
ADLINK Sustainability
Investor Relations
News & Events
Careers
Contact Us
Ask an Expert
Worldwide Offices
Where to Buy
Support
Partner Center
eRMA Service
ADLINK DDS Support
  • Stay Connected
  •                
Subscribe ADLINK Newsletter
Privacy Policy
Cookie Policy
Site Map
About UsWorldwide OfficesSupport
  •    
  •    
  •    
  •    
Copyright © 2025 ADLINK Technology Inc. All Rights Reserved.
Email:service@adlinktech.com