• 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
    • MXM GPU Modules
    • PCIe Graphics Cards
    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 & 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 Gaming Healthcare 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

    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

    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

    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

    NVIDIA-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 ADLINKWorldwide OfficesInvestor RelationsLogo and Brand GuidelinesCareers

    Newsroom

    News & EventsPodcastBlogsEdgeOpen™ Voices
    Support

    Check out the latest news and explore ADLINK featured blogs.

    Learn More
  • Home
  • Industries
  • Test & Measurement
  • Technical Papers
  • Application of High-speed Digital Instruments in Testing Firework Products
  • Home
  • Industries
  • Test & Measurement
  • Technical Papers
  • Application of High-speed Digital Instruments in Testing Firework Products
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 & Panel PCs+ Automotive Computing+ Networking & Servers+ Automation & Control+ Design & Manufacturing Services+ Healthcare Computing & Monitors+ Gaming Platforms & Monitors+ Software+
      COM-HPCCOM ExpressOSMSMARCQsevenETX
      MXM GPU ModulesPCIe Graphics Cards
      CompactPCI & CompactPCI 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)
      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 Gaming Healthcare 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

      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

      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

      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

      NVIDIA-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 ADLINKWorldwide OfficesInvestor RelationsLogo and Brand GuidelinesCareers

      Newsroom

      News & EventsPodcastBlogsEdgeOpen™ Voices
      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 Digital Instruments in Testing Firework Products

Tang Jin-Wei,
Beijin Salientronics Co. Ltd.

Application

 

Testing of Firework Products

Challenge

 

Testing firework products entails a certain amount of danger, therefore high-standard requirements are imposed on ignition parts of the system. The ignition controller must be highly reliable, capable of ensuring dependable ignition for every single test; while at the same time resistance of relay contacts must be very low, so that it will not affect the ignition performance of the product.

 

Output performance tests of firework products are transient tests where signal alteration is very quick; it requires high-speed synchronized data capture boards for high-speed data registration.

 

Firework tests are non-repeatable and therefore require highly dependable data capture boards for ensuring the success of each test.

 

Firework products involve versatile parameters of output properties. While addressing different product properties, sensors of different types require the arrangement of agile and flexible signal conditioning modules.

 

Testing of firework products needs synchronized triggering of high-speed cameras, therefore requires capture boards with TRIG IOs for triggering other peripheral devices.

Solution

 

Based on the design and implementation of a test system with multi-state parameters, via understanding and adjusting signal characteristics of firework product output parameters and commonly used test methods, performance indexes of instruments are analyzed and summarized for the precision testing of output performances of firework products. Combining proper sensors for pressure, temperature, push-force, etc., and hardware facilities such as signal regulators and process controllers equipped with the ADLINK PCI-9846D high-speed data capture card, an ignition controller is designed based on customer requirements, enabling a system not only possessing autonomous detection functions that enhances the safety of the operator when carrying out ignition tests, but also realizing the switching-over between manual and automated triggering. A data retrieval and analysis program for a multi-parameter testing system of firework products is developed using LabVIEW as the development platform. The system incorporates a programmable signal conditioner and functions including data capture, analysis and process, data storage, representation, report compilation; etc.

 

Firework products is the nomenclature of one-time-use elements or devices, containing gunpowder or explosives which burns or explodes when receiving an external stimulation, used for igniting gunpowder or detonating explosives or doing mechanical work. Firework products are usually used for igniting gunpowder and detonating explosives, or as small drive devices for promptly opening a valve, releasing a safe, or separating a rocket stage.

 

According to regulations of Nomenclature of Civilian Explosives, GB\T 4659-2003, firework products are generally categorized as follows.[1]

 

Based on output characteristics, firework products can be categorized into 3 types: igniting fireworks, detonating fireworks, and other fireworks, as detailed in Table-1.

Table-1 Categories of Fireworks, by output characteristics

By structure, fireworks can be divided into simple fireworks and complex fireworks.

 

Fireworks can be triggered by 6 forms of energy, namely mechanical energy, thermal energy, electrical energy, photic energy, chemical energy, and blasting energy. By type of input triggering energy, fireworks can be categorized as detailed in Table-2.

Table-2 Categories of Fireworks, by type of input triggering energ

There are many output performance parameters of firework products, such as pressure, push-force, temperature, impact acceleration, displacement, acting time, bridge-wire melting time, delay time, etc. These performance parameters are obtained by providing sufficient voltage and current to the tested product, so as to trigger the activation of the firework product, therefore recording output parameters of the product. In order to carry out various performance tests of versatile firework products using a single set of equipment, and for better and more comprehensive use of the test system, it is necessary to design a comprehensive test system that can be applicable to various firework products. With such a system, multiple parameters of product output performances can be obtained via one simplified test process, providing abundant information for the design of product performances and for the research of functioning mechanisms, as well as providing valuable references for product quality design and for lowering development costs.[2]

Problems encountered

 

Testing firework products entails certain hazards, therefore high-standard requirements are imposed on the ignition part of the system. The ignition controller must be highly reliable, ensuring dependable ignition of each test; at the same time, the resistance of relay contacts must be very low, so that the ignition performance of the product will not be affected.

 

Output performance tests of firework products are transient tests where signal alteration is very quick; it requires high-speed synchronized data capture boards for high-speed data registration.

 

Firework tests are non-repeatable, and therefore require highly dependable data capture boards for ensuring the success of each test.

 

Firework products involve versatile parameters of output properties. While addressing different product properties, sensors of different types require the arrangement of agile and flexible signal conditioning modules.

 

Testing of firework products requires synchronized triggering of high-speed cameras and therefore requires capture boards with TRIG IOs for triggering other peripheral devices.

Solution

 

Based on the demand for configuring a test system, via a market survey of relevant products available in the marketplace, we selected the DEWETRON signal conditioning module and the ADLINK PCI-9846D high-speed data capture card as the infrastructure, and, combined with self-produced ignition controllers, quickly developed an instrument suitable for testing versatile firework products.

Fig. 1 System Configuration

The system comprises sensors, a signal conditioner, a process controller and an ignition controller. The system works as follows: When process controller commands, via USB port, the ignition controller to close relay contact, the firework product is therefore in the state of ignition; at this moment, the product bridge-wire will melt instantly to generate a short pulse of voltage signal, i.e., the bridge-wire melting signal and the signal of pressure or push-force acting upon the product. Different sensors are used for testing physical responding signals; weak voltage signal output or electric charge signal output by the sensor is sent to the signal conditioner for amplification up to 5V with high frequencies filtered out. Amplifier gain and filter frequency are set by the process controller via the RS-485 bus. The conditioned signal can thus be read by the capture card. The signal alters quickly, therefore high-speed cards are used for measurement. On completion of tests, data processing and data analysis, data storage and report generation are carried out by the program of the system.

1. Signal conditioner

 

To meet the requirement that 4 channels of the data capture system shall be capable of connecting with different sensors, i.e., the function of universal channels, the system employs a Dewetron DEWE-31-16 signal conditioner [3].

 

(1)Major performance indexes of the amplifier:

 
  • Variable input range from ±2.5mV to ±10V
  • Programmable Output of 0~12V activating voltage
  • Provides internal bridge compensation for 1/2 or 1/4 bridge strain sensor
  • Built-in 50K and 100K parallel resistors.
  • Supports TEDS sensors.
Fig. 2 Amplifier

(2)Filter board major performance indexes:

 
  • 16 channel 2-stage low-pass filter
  • Low-noise filter design
  • Independent filter frequency for respective channels
  • Amplifiers directly controlled by PLC
  • Filter frequencies: 100Hz, 1KHz, 10KHz, 30KHz, 100KHz.
Fig. 3 Filter board

2. Capture card ---PCI-9846D high-speed capture card [4]

 
  • 4-channel synchronized sampling, max. sampling rate up to 40MSps per channel.
  • A/D resolution: 16 digits
  • Channel coupling: DC
  • Input impedance: 50 or 1MΩ, can be set via software.
  • Clock: local clock, external clock, bus clock, PCI 40MHz
  • Trigger method: pre-trigger, post-trigger, intermediate trigger, delayed trigger
  • Trigger Level: Trigger Level within measurement range: 256 program controlled setting stages. External Trigger Level: TTL.
  • Trigger source: software trigger, digital IO Port trigger, channel trigger
  • On-board memory: 512M
Fig. 4 PCI-9846D

3. Ignition Controller

 

The function of the Ignition Controller is for regulating ignition current, carrying out autonomous inspection of circuit connection, and igniting the product during firework tests.

Fig. 5 Schema of ignition controller

When constant-current source is used for igniting the product, it is necessary to regulate the ignition current for the product. Firstly, use an ohmmeter to test product resistance. Based on this resistance, adjust the potential meter R7 to the said value and use it as a substitute of product resistance, for current regulation. Then adjust ignition current to the design value, using the voltage knob of power supply and the external potential meter RP2.

 

When a capacitor is used for igniting the product, firstly move S1 switch to the "Charge" position for charging the capacitor with the battery. By checking the capacitor charge voltage via the static voltage meter, move S1 switch to the "Discharge" position and prepare for ignition.

 

Before carrying out ignition, make an autonomous inspection; i.e., check the entire ignition circuitry for correct connection. This can be done by ensuring the product is in a condition such that it will not be activated, closing the relay of the autonomous inspection circuit, and checking for any reading of current flowing through the circuit. According to product properties, the current for autonomous inspection must be less than 5mA to ensure that the product is not activated. Therefore, a series resistance required for the autonomous inspection circuit can be calculated based on the maximum ignition voltage of the product.

 

For the formal ignition test, in order to eliminate any effect caused by the sampling resistor, the system uses a mercury relay in the ignition circuit. The contact resistance of this type of relay is extremely low and can be omitted, thus eliminating any influence to the product's ignition performance resulting from the circuit.

4. Test method

Fig. 6 Test Method

For pressurized products, the test system consists of an on-site portion and a control room portion. Since the testing of enclosed detonators contains a certain amount of danger, the detonator body, plug, pressure sensor and other relevant parts are all placed at the test site, while the ignition control and data capture parts are within the control room, with safety insulation provided between these two portions.

 

When carrying out the test, after loading test charges in the detonator, transient high-voltage is applied to the ignition resistance filament so its temperature rises and it becomes red, igniting the ignition charge and therefore the test charge. This causes the pressure in the combustion chamber to rise, causing a corresponding alteration of the sensor and an output of a transient voltage, the waveform alteration of which is captured by the high-speed data capture system and registered as the basis of subsequent analysis. Since the test process of the enclosed detonator is very brief, quality pressure sensors and high-speed data capturing systems are essential for ensuring precise and timely capture of the test data. See Fig.6.

 

In the process for testing firework products, voltage alteration across the resistance is measured before the bridge filament melts down. The test procedure is as follows:

Fig. 7 Product detonation

As shown in Fig. 7 when the relay switch is open, the circuit is open and no current flows through the bridge filament, therefore there is no voltage on the sampling resistance. When the relay switch closes, the bridge filament is energized and a high voltage occurs across the sampling resistance; at this moment the firework product ignites and produces high temperatures which cause the bridge filament to melt out, therefore breaking the circuit, and the voltage across the sampling resistance resumes its previous low level. This melting process takes hundreds of microseconds to a few milliseconds. The signal frequency of the voltage alteration is from around a few kHz to tens of kHz.

5. Software Design

Fig. 8 Program Flowchart

The application software is a program developed by the developer using instrument drivers for direct operation by the user. Via direct viewing of the user-friendly interface, abundant functions of data analysis and processing, as well as comprehensive data storage functions, the software completes the test tasks automatically.

 

Application software of virtual instrumenst can be developed according to personal preferences and specialties using various software development environments. There are two major development environments: one is based on a text software development platform, such as Visual C++, Visual Basic, Delphi or LabWindows/CVI, etc. The other is based on a graphic software development platform such as VEE or LabVIEW.[5,6,7] Our system uses LabVIEW as the development platform of the system program.

 

The system software can be divided into several function modules: test data input, signal conditioner, system calibration, system auto-inspection, data capture and processing, data storage, report production, data replay and re-processing. The modular design structure enables clear and neat programs as well as facilitating future expansion and upgrade services.

Fig. 9 Device Interface
Fig. 10 Data Capture Interface
Fig. 11 System Calibration Interface

The main purpose of the signal conditioning module is to integrate programs—which are used by DEWETRON's DEWESoft for the control of signal conditioning—into LabVIEW, thus realizing the requirement of separately setting up the signal conditioner of the system software. Using the ActiveX control item container[8], it is possible to borrow ActiveX control items provided by DEWETRON and successfully conduct program control against the signal conditioner based on the programmer manual[9] of DEWESoft. The System Calibration is mainly addressing the use of a resistance type strain sensor, which requires using a piston pressure machine against the entire system for carrying out the calibration. Tests can only be carried out when non-linear errors, lag errors, non-zeroing errors and non-repetitive errors meet the requirements of national military standards. Tests must also mark points and corresponding voltage values, using the least square method for calculating the slope and intercept of the linear relationship between the test system and signal conversion in accordance with the principle of least sum of deviation squares, for the conversion of engineering units. For the conversion of engineering units of tungsten rhenium thermocouples, an interpolation calculation is required based on the table of thermocouple scales. When using graphic programs in LabVIEW for carrying out large amounts of calculations, the program tends to become complicated and operates slowly. Therefore, equation nodes can be used by adding program numbers to nodes, thereby significantly simplifying the program and speeding up the calculation.

 

The system software provides abundant data analysis and process functions; after processing the data, the system produces professional test reports using the Office Tool Pack[10] of LabVIEW, and stores data files in the TDMS format. Via Access database, a file is generated for each test based on the test time, product name and operator, together with a path for storing the file in the database. Thus, when replaying the data for reprocessing, the position of the previous file can be sorted via the time, operator, or the product name. When clicking on the format series number, the system will send the data file path of the current registration to the system, for the Data Replay Module to quickly retrieve the previous data for reprocessing. The user may also delete files of ineffective data here. By way of database management, the user is significantly facilitated in searching for and using large amount of data files and the system is further perfected. Due to the importance of the test data, precautions must be taken to avoid mistaken deletion before deleting any file. Therefore the database provides the function for opening a corresponding binary data reserve file; by viewing test results via this file, it can be ensured that a file will not be mistakenly deleted. The user may select a sorting index in the Project draw-down tab menu for a specific query, and key-in corresponding query criteria in the box of query conditions. on clicking the Query button, the table will display all the data files that comply with the criteria. By using the serial number selection box, the user can select a file to be processed, i.e. opened, deleted, etc. The OPEN function allows the user to open a desired file, displaying data in the data replay and reprocessing interface, for carrying out secondary data analysis and processing. Professional and complete test analysis software will provide the user with a System Help function, facilitating the user to view the operating instructions of the program. This system program also provides a Help text file of its own, it may be called by way of clicking the Help icon. In LabVIEW, the simplest way to activate other Windows application programs is to execute a system command. Inputting a DOS command in the command line may activate the Help file; this is the most simple, convenient and effective method.[11]

Test

 

1. Test Bench

 

Each product should have its own test device. For example, a product used to measure pressure must be ignited in a pressure-testing bullet with an appropriately-sized capacity in order to obtain the expected data. A thrust-related product must be clamped on a Test Bench and securely connected with a Thrust Tester. As more testing parameters would be required for a separated push rod product, the installation position of each tester should also meet the technical requirements. Introduced below is a summary of some typical test benches.

 

(1) Pressure Testing Vessel

Fig. 12: Pressure Testing Compartment

(2) Thrust Test Bench

Fig. 13: Motor Test Bench
Fig. 14: Thrust Test Bench

2. Experimental Test

 

(1) Purpose[12]

 

Test the pressure-time and thrust-time curves for the ignition of firearm, in order to evaluate its change of output performance over time.

 

(2) Theory

 

By applying the specified excitation energy to the firearm clamped in the Pressure-Testing Compartment, the gas generated from the ignition of the firearm will act on the Tester by outputting an electrical signal corresponding to the parameter change, such as pressure and thrust. After being conditioned by the Signal Modulator, relevant data will be read by the PCI-9846D High-speed Data Acquisition Card.

 

(3) Experiment program

 
  • Experiment preparation
 

(a) Connect the test system.
(b) Set the capacity of the selected Pressure-testing Compartment in order to determine the Sensor to be used.
(c) Connect the ignition wire and then modulate the igniting current.
(d) Mount the Sensor on the Piston-type Pressure Gauge and then connect the Sensor and the Signal Modulator.

 
  • Static Pressure Setting
 

Before each test, it is necessary to execute the Static Pressure Setting for the Sensor. Normally, the set pressure interval should not be less than 4 counts and each pressure interval should be equivalent. When setting the static pressure, it is necessary to perform the boosting and reducing process twice respectively. The technical index of the static pressure setting shall meet military requirements; otherwise, the causes should be determined in order to take relevant action (e.g. replacing the sensor) and then proceed with the setting until the requirements are satisfied.

 
  • Installation
 

(a) Mount the programmed sensor together with the Test Subject on the Pressure-testing Compartment and then seal properly.
(b) Secure the Pressure-testing Compartment containing the Test Subject and the Sensor, and then connect the Sensor wire, ignition wire, detonating wire and other relevant wires for the system to be put into test ready status.

 

  • Experimental Test
 

Execute a self-inspection for the connecting condition of the product with the self-inspection function designed for the system. If the self-inspection is failed, then check if the power is turned on, if the Ignition Controller is energized, and if the product ignition clamp is properly connected, etc. After passing the self-inspection, the ignition test will follow in order to collect the data.

(4) Data Processing and Product Performance Analysis

  • Product 1
Fig. 15: Product 1
Table 3: Main Technical Parameter Comparison between 2 Rounds of Experimental Tests for Product 1

Conclusion: The result indicates that the melting time of the bridging fuse is less than 1ms; the duration from energizing to 5MPa pressure point is shorter than 10ms; and the max. pressure is over 8.5MPa. As such, the result complies with the performance requirements of Product 1 and it justifies the correctness of the system in data collection.

  • Product 2
Fig. 16: Product 2
Table 4: Main Technical Parameters of Product 2

Conclusion: The result indicates that the duration from energizing to action is less than 2.5s, affirming the fidelity of the experiment in data collection.

  • Product 3
Fig. 17: Product 3
Table 5: Main Technical Parameters of Product 3
Conclusion: The result indicates that the total force of Product 3 is over 265 Ns and the action time is also over 0.5s, and it confirms that the system is normal and correct.

 

Through the understanding, modulation and study of signal features and regular testing methods for firearm output performance parameters, this article uses the design and realization of Firearm Multi-type Parameter Test Systems as the background to analyze and summarize the instrument performance indicator required for accurately testing the firearm output signal. Suitable hardware equipment consisting of sensors, signal modulators, the ADLINK PCI-9846D high-speed data acquisition card and engineering controllers etc. are selected for the pressure, temperature and thrust, etc. in order to test the performance parameters. Aiming to satisfy the user's demand, we also designed the Ignition Controller which not only provides a self-inspection function for the system but also improves the safety of the operator when conducting the Ignition Test, while achieving the switching between manual/automatic ignition. In addition, we also implemented the LabVIEW software development platform which allows a single set of data acquisition and analysis software to be developed for the Firearm Multi-type Parameter Test System. In this regard, the said system is also designed with functions such as program control device, signal modulator, data acquisition and analysis processing, data preserving, playback and report producing, etc. in mind.

 

Through the field firearm experimental test at the user's site and the analysis of the said test, the result has demonstrated the soundness of the system design and has met the application requirements of the user.

Reference

[1] XIA Jian-Tsai, LIU Li-Mei: Firearm Manufacturing. Beijing: Beijing Institute of Technology Publication Service, 2009, 8:1-10.
[2] FU Yung-Jieh, YEN-Nang: Analysis and Test of Firearm Gas Output Dynamic Parameter Characteristics; Explosive Academic Journal. 2007, 6; Vol. 30, Edi. 3.
[3] DEWE-MDAQ series Technical reference manual. DEWETRON INC
[4] PCI-9816/26/46 User's Manual. ADLINK TECHNOLOGY INC.
[5] TSUI Hung-Mei: Virtual Instrument Design and Application Research facing toward the Test System; Inner Mongolia Agricultural University doctorate dissertation; 2007.4
[6] LIU-Gang, WANG Li-Xiang, ZHANG Lien-Fa: LabVIEW 8.20 Chinese Version Compilation and Application; Beijing: Electronic Industrial Publication Service, 2008
[7] CHEN Xi-Hui, ZHANG Yin-Hung: LabVIEW 8.20 Program Design- Basic to Advanced. Beijing: Tsinghua University Publication Service. 2007
[8] Active X Control Item. http://baike.baidu.com/view/185274.htm.
[9] Programmer's Reference to the DCOM Interface of DEWESoft 6.4.DEWETRON INC.
[10] ZHANG Su-Juan, WANG Tien-Bao: On LabVIEW Data Interview and Report Producing Techniques. Chengdu Information Institute of Engineering Journal. 2009, 4; Vol. 24, Edi. 2
[11] Robert H. Bishop. LabVIEW Practical Courses. Beijing: Electronic Industrial Publication Service. 2008
[12] GJB5309.24: Firearm Experiment Method. Part 24: Ignition Pressure - Time Curve Measurement


Related ADLINK Links:

  • More about ADLINK Modular instrument (digital instrument)
  • More about PCI-9816/9826/9846
An Inverter Output Performance Test System List Full HD Video and Audio Testing
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