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Simulator Product List and Ranking from 167 Manufacturers, Suppliers and Companies | IPROS GMS

Last Updated: Aggregation Period:Mar 18, 2026~Apr 14, 2026
This ranking is based on the number of page views on our site.

Simulator Manufacturer, Suppliers and Company Rankings

Last Updated: Aggregation Period:Mar 18, 2026~Apr 14, 2026
This ranking is based on the number of page views on our site.

  1. クロスライトソフトウェアインク日本支社 Chiba//software
  2. タナック 岐阜本社 Gifu//Medical and Welfare
  3. LinkStudio Fukuoka//Educational and Research Institutions
  4. エムティエスジャパン Tokyo//Testing, Analysis and Measurement
  5. 5 Comet Technologies Japan K.K. Comet Yxlon Kanagawa//Testing, Analysis and Measurement

Simulator Product ranking

Last Updated: Aggregation Period:Mar 18, 2026~Apr 14, 2026
This ranking is based on the number of page views on our site.

  1. X-ray reflow simulator Comet Technologies Japan K.K. Comet Yxlon
  2. [Case Study] Toyota Motor Corporation Driving Simulator エムティエスジャパン
  3. For suture practice! Dermal buried suture simulator 'BUYSSkin' タナック 岐阜本社
  4. 4 Ultrasound echo phantom タナック 岐阜本社
  5. 5 Air Traffic Control Training Simulator "ULANS" テクノブレイン

Simulator Product List

211~240 item / All 432 items

Displayed results

Study of Power Supply Impedance Using Electromagnetic Field Simulator

Study of power supply impedance using S-NAP/Field

In the power supply and ground pattern shown in Fig. 4, we remove the IC as shown in Fig. 5 and set a port at the IC's power terminal, then simulate the impedance from that port. The power supply terminal (the port section in Fig. 4) is connected to ground. Fig. 5 shows the current distribution at 225 MHz. As shown in Fig. 6, resonance is observed around 240 MHz, and at this frequency, it can be seen that current is already concentrated on the power input terminal side (the left end of the pattern). 【Features】 ○ Fig. 6 shows the impedance characteristics from 10 MHz to 500 MHz. ○ As is clear from the Smith chart, it demonstrates the characteristics of a transmission line with a short-circuited end. ○ The impedance reaches its maximum around 240 MHz, indicating that resonance occurs at this frequency (λ/4 resonance of the short-circuited stub). For more details, please contact us or download the catalog.

  • others
  • Simulator

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Solar Simulator HAL-320

It is a compact and space-saving AM1.5G pseudo-sunlight source that allows for light guide illumination.

This is the standard type of our solar simulator. It can be used in various scenes thanks to light guide irradiation.

  • Other environmental analysis equipment
  • Simulator

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Solar Simulator HAL-320W

It is a simulated sunlight source with a light guide irradiation type that approximates the solar spectrum up to 1800 nm.

This is a simulated sunlight source with a light guide irradiation method that approximates the spectral irradiance of AM1.5G standard sunlight in the range of 350 to 1800 nm. It is ideal for research and development in solar cells and artificial photosynthesis.

  • Other physicochemical equipment
  • Simulator

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PXI/PXIe LVDT/RVDT/Resolver Simulator

Simulation of LVDT/RVDT and resolvers ideal for automatic testing!

Module 41-670 is equipped with an active circuit that generates signals that can be used for the operation of a DUT (Device Under Test) to measure motion or position using either an LVDT (Linear Variable Differential Transformer), RVDT (Rotary Variable Differential Transformer), or resolver. The 41-670 is available in up to four banks, with each bank utilizing a shared excitation signal to simulate a single 5-wire or 6-wire VDT or resolver, or dual 4-wire outputs. The module can simulate up to four channels of 5 or 6 wires, or eight channels of 4 wires. Pickering's PXI modules can be mounted in an LXI chassis that can be connected via LAN or USB, and control from a PC can be easily achieved using the free software GSFP or various language APIs.

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LED Solar Simulator "VK-SS-50"

The irradiation range and distance are 50mm × 50mm and 200mm! User-configurable spectral control.

The "VK-SS-50" is a solar simulator that utilizes LED light sources. It independently drives multiple LEDs at 22 individual wavelengths across a spectrum from 370nm to 1030nm. It communicates with a PC via Bluetooth, allowing for individual switching of all 22 LEDs to adjust the irradiated light spectrum. 【Features】 ■ Variable output adjustment from 0.0001 to 1.0 solar ■ Automatic calibration through built-in intensity measurement ■ Over 20,000 hours of LED lifespan ■ Electric sample mount stage ■ Output beam size of 30mm x 30mm *For more details, please refer to the PDF document or feel free to contact us.

  • simulator
  • Simulator

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PRIMERO GEN 2

Realistic reproduction of the lambda sensor's failure state.

IAV PRIMERO GEN 2 LAMBDA SENSORS FAULT SIMULATOR IAV PRIMERO GEN 2 is an advanced fault simulator designed to accurately reproduce fault conditions of lambda sensors. It enables testing under conditions close to real environments in engine control development and diagnostic system validation. Due to its ability to flexibly reproduce a variety of fault patterns, it is ideal for evaluating the robustness of ECUs and validating OBD diagnostic functions. In GEN 2, operability and reproduction accuracy have been further improved, contributing to a significant enhancement in development efficiency.

  • O2 sensor evaluation test device
  • Simulator

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Electronic Circuit Simulator CircuitViewer5

You can simulate electrical/electronic circuits and control systems!

The electronic circuit simulator CircuitViewer5 is our most popular simulator. It is easy to use and ideal for circuit design (creation). 1. It is an interactive, real-time electronic circuit simulator that allows you to simulate while creating circuits. 2. Since it is in Japanese, it is a simulator that anyone can easily use without a manual. 3. You can immediately use it by selecting components from the component menu and simply setting the component values (R/L/C/hFE/gm, etc.). 4. You can freely set component values, making circuit creation easy. 5. Instead of a component library (like 2SC1815), you can freely set component values, allowing you to associate component values with circuit formulas, making it ideal for circuit design and learning. *For more details, please download the PDF or contact us.

  • Other analyses
  • simulator
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Electronic Circuit & Digital Signal Processing Simulator InterSim5

A simulator suitable for research in electronics, mechatronics, and digital signal processing!

The electronic circuit and digital signal processing simulator InterSim5 has all the features of the electronic circuit simulator CircuitViewer5, and it is a superior compatible simulator that allows various digital signal processing algorithms to be configured and simulated simultaneously in the same way as electronic circuits. Since it can simulate electronic circuits, control systems, and digital signal processing, it is the ideal simulator for the three fields of electronics, mechatronics, and digital signal processing. *For more details, please download the catalog or contact us.*

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Electronic Circuit Simulator 'CircuitViewer'

An easy-to-use, real-time electronic circuit simulator at a low price.

"CircuitViewer" is an electronic circuit simulator that is ideal for a wide range of design development and education in electrical and electronic fields. You can freely and easily set the constants of each component, allowing for most circuit design and simulation in electrical and electronic engineering. It supports a rich variety of components, making it a product capable of a wide range of circuit design from basic to advanced applications. 【Features】 ■ Supports a wealth of simulation functions (measuring instruments) ■ Significant improvements with usage tailored to the environment ■ Extensive support for creating design and training data, as well as seminars *For more details, please refer to the catalog or feel free to contact us.

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Digital Signal Processing Simulator "DspAnalyzer"

Quickly and easily analyze frequency characteristics just by drawing a block diagram.

"DspAnalyzer" is a digital signal processing simulator that allows for quick and easy analysis of various signal processing algorithms using digital signal processing techniques by drawing block diagrams, enabling both time-domain operation analysis and frequency-domain frequency characteristic analysis. It supports a wide range of components, making it a product that can perform signal processing design from basic to advanced applications. 【Features】 ■ Easily and freely set the constants of each component ■ Supports a rich set of simulation functions (design tools) ■ User-friendly real-time interactive simulator *For more details, please refer to the catalog or feel free to contact us.

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On-stage testing device - Load simulator

On-stage testing device - Load simulator

A test rig used for fatigue durability testing of all vehicles, which reproduces the loads and moments applied to the vehicle's suspension through the wheel spindle in a laboratory setting.

  • Testing Equipment and Devices
  • Other analyses
  • simulator
  • Simulator

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Single-axis simulator

World-leading researchers, specialized knowledge and innovative technology for rock and concrete testing for construction companies, shaking table-related tests, and civil engineering-related tests.

Adopting high value-added latest digital control technology to achieve high cost performance.

  • Testing Equipment and Devices
  • Vibration Testing
  • Simulator

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Next Generation Vehicle Dynamic Simulator (VDS)

Next-generation driving simulator developed through collaboration between McLaren Applied Technologies and MTS.

The MTS Vehicle Dynamic Simulator (VDS) is a next-generation driving simulator designed by McLaren Applied Technologies. This innovative tool provides automotive manufacturers, related suppliers, and motorsport teams with a new form of vehicle development. VDS emerged from innovations in Formula One development, vehicle modeling, and simulation technology. VDS adopts a "Driver-In-the-Loop" approach, enabling engineers to subjectively evaluate components and vehicle performance before the completion of physical prototypes. VDS allows test drivers to conduct highly realistic driving tests in a low-latency environment, combining McLaren's proven high-performance electric motion platform with control algorithms integrated with rFpro graphics.

  • Testing Equipment and Devices
  • Simulator

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Iron Core ePost Tire Contact Surface Input Road Simulator

Reproducing road surface shapes and unevenness with high precision! A new model that significantly improves operational efficiency and allows for durability testing evaluation.

Our "ePost System" is a road simulator that is optimal for vehicle testing (BSR, NVH testing) capable of reproducing all road surface conditions. The new model also supports durability testing. It can accurately reproduce road shapes and irregularities, enabling highly reliable vehicle structure testing. In this "Iron Core" model, we have replaced the conventional air core actuators (linear electromagnetic and pneumatic) with iron core actuators (linear electromagnetic and water-cooled). This allows for significant reductions in operational and maintenance costs compared to hydraulic simulators. 【Features】 ■ Supports noise, squeak, and rattle (BSR) NVH testing, as well as durability testing ■ Achieves an environmentally friendly testing environment with a clean system ■ Can be installed on existing equipment ■ Can be installed in environmental chambers ranging from -40°C to 70°C ■ Offers three models that accommodate a wide range of vehicle sizes *For more details, please contact us.

  • Testing Equipment and Devices
  • Vibration Testing
  • Simulator

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3D Simulator for Semiconductor Lasers and Optical Devices PICS3D

With the addition of Crosslight's FDFD, it is now possible to solve high-resonance structures accurately and significantly faster than FDTD, expanding the applications of the analysis.

<Main Features> ■ Suitable for the design and analysis of devices where the effects in the resonator direction are important. ■ Lasers including diffraction gratings such as DFB, DBR, and VCSEL can be calculated using mode coupling theory and multilayer film optical theory. <Diverse Physical Models and Functions> ■ Coupling coefficients of waveguides and gratings (first-order and second-order gratings). ■ Longitudinal carrier density distribution, optical gain, and light intensity for the main and side longitudinal modes. ■ Calculation of surface emission mode distribution for second-order grating DFB lasers. ■ Output and frequency variation for different longitudinal modes. ■ Side mode ratio, linewidth, product of linewidth and output, effective alpha, second harmonic distortion, surface emission output (second-order grating DFB). ■ Mode output spectra under different laser surfaces and arbitrary bias conditions. ■ Mode output spectra under different bias conditions and over time. ■ AM/FM small signal modulation response and FM/RIN noise spectrum under arbitrary bias conditions. ■ Second harmonic distortion spectrum. ■ For other functions and details, please download the catalog or contact us. ■ If you wish to request a trial version, please contact us using the information below.

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Hot Oje electronic leak device simulator

Analysis tool for leakage caused by Auger recombination in quantum wells.

APSYS can provide various models related to the efficiency degradation of LEDs. (Potential strain in quantum wells and barriers due to polarization charge. Cold carrier leakage across quantum barriers and electron blocking layers. Non-local transport due to hot carriers. Non-local hot Auger electron leakage via thermionic emission (Auger-thermionic model). Non-local direct escape from quantum wells dependent on Auger recombination rate (Auger-direct model). Hot carrier non-local emission from quantum barriers dependent on Auger recombination rate (Auger-indirect model).)

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3D TCAD simulator for GaN substrate LEDs

LED 3D analysis tool in a process/device simulation integrated environment (TCAD)

This introduces the analysis of multi-quantum well (MQW) structure LEDs using TCAD, which integrates the process simulator (CSuprem) and the device simulator (APSYS). It simulates potential, current density, temperature, and carrier distribution, displaying the results in 3D. The LayerBuilder (standard included), which has a GUI interface, is used to set the device cross-sectional structure. Layout patterns such as electrodes are created using MaskEditor (standard included), which supports GDS format. Based on this information, a 3D mesh and doping profile are generated with CSuprem. The device simulator (APSYS) simulates electrical characteristics (such as IQE) and thermal properties. Additionally, using the optional feature Optowizard, light extraction via ray tracing or FDTD is possible.

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Resonator-type LED device simulator

Device modeling and analysis of cross-light using RCLED devices as an example.

Introducing various types of analyses of RCLEDs. (Comparing experimental results using InGaAs/AlGaAs RCLED as an example. RCLED with a structure similar to VCSEL using GaAs/AlGaAs materials with multiple quantum wells (MQW). RCLED with detuned DBR. RCLED with a long resonator.) The device simulator APSYS enables an all-in-one analysis and design approach.

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InGaN/GaN quantum dot LED simulator

Device analysis tool for InGaN/GaN quantum dot LEDs

Explaining the model of quantum dots using LED devices as an example. Simulating the emission spectra (EL spectrum) for different sizes of quantum dots. Additionally, comparing with experimental results. Simulating the I-V characteristics with and without quantum transport, and comparing the results. Analyzing and comparing quantum efficiency. Comparing quantum efficiency and emission spectra due to differences in the density of quantum dots. Furthermore, comparing the characteristics of LED devices made with quantum dots and quantum wells.

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Crosslight LED simulator

Analysis tool for the effects of polarization charge in blue light-emitting diodes and optimization of device structure.

Various physical models. (k.p. theory based on a multiple quantum wells model according to the urtz mineral materials. Polarization surface charge/self-consistent model. Many-body gain/spontaneous emission theory for quantum wells or quantum dots. Non-equilibrium quantum transport model.) Comparison of the presence or absence of the effect of polarization charge in the characteristics of InGaN/GaN MQW blue LEDs. (Band diagram, EL spectrum, I-V curve, internal quantum efficiency (IQE)). Additionally, consideration of structural optimization. (Dependence on indium composition, dependence on the number of quantum wells, dependence on the thickness of the quantum well/barrier layer.)

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3D device simulator for multi-quantum well LEDs with surface structures.

3D analysis tool for InGaN/GaN MQW LEDs with surface structures.

Constructing 3D structured devices with the process simulator CSuprem. Introducing the modeling procedure for textured surfaces using a combination of APSYS and FDTD. Calculating electrical and optical properties using APSYS and 3D ray tracing (performing 3D ray tracing with FDTD data to extract optical power). By combining several modules of the Crosslight software, it is possible to accurately calculate LEDs with surface structures.

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3D simulator of quantum dot devices

3D analysis tool for quantum dot devices

Modeling of quantum dot devices involves constructing and analyzing microscopic models and incorporating the results into macroscopic models. The microscopic models can consist of various rectangular or cylindrical three-dimensional quantum dots. The strain effect is also taken into account. The wurtzite structure of GaN substrates can be applied similarly to the zincblende structure. Examples include the band diagram in the macroscopic model, comparison of calculated PL results with experimental results, optical gain spectrum, spectrum without broadening, temperature dependence, gain spectra, and lasing behavior.

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VCSEL simulator

Analysis tool for vertical-cavity surface-emitting lasers.

Overview of the self-consistent model in the PICS3D integrated VCSEL module. Explanation of basic VCSEL modeling. Additionally, features such as the automatic VCSEL cavity design module, optically pumped VCSEL, multi-lateral models calculation, resonating wavelength of multimode using the effective index method (EIM), non-symmetric VCSEL, rectangular shape VCSEL, multimode transient simulation, and vertical external cavity surface emitting laser (VECSEL) are introduced.

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3D simulator of photonic crystal laser

3D analysis tool for photonic crystal semiconductor lasers

Crosslight's 3D TCAD integrates an FDTD and electro-optical simulation environment for photonic crystal semiconductor laser (PhCLD) analysis. Crosslight's 3D TCAD is a tool for designing and optimizing electrically pumped PhCLDs. The user-friendly and practical GUI covers everything from the original GDSII layout to the final simulation of laser emission characteristics.

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Device simulator for Mach-Zehnder type optical modulator

Analysis tool based on a physical model of a Mach-Zehnder type optical modulator with multiple quantum wells on an InP substrate.

The simulation of Mach-Zehnder type optical modulators requires everything from microscopic quantum well models to waveguide and circuit models related to the system. Crosslight provides integrated cutting-edge solutions for the design of Mach-Zehnder type optical modulators. The materials introduce various physical and mathematical models and explain examples of actual modeling.

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Device simulator for type II quantum well photodetectors.

Analysis tool for optical detection devices with Type II quantum well structure.

Introducing applicable models and functions. (A technique that bundles 150 pairs of Type-II MQW using input commands. Deriving the optical gain spectrum of Type-II quantum wells from the optical gain model of Complex MQW. Designing the absorption spectrum based on the band alignments of Type-II quantum wells. The effects of a mini-band model based on quantum mechanics.)

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Avalanche photodiode device simulator

Avalanche Photodiode Analysis Tool

Introducing the physical model of APSYS used in the simulation of APDs (Avalanche Photodiodes). (Drift-diffusion and hydrodynamic models. Impact ionization and excess noise factors. Resonant condition.) Additionally, an overview of the modeling and analysis results of APD devices is provided. (Modeling of InP/InGaAs SAGCM APD. Modeling of InGaAs/AlGaAs RCE SAGCM APD. Hot carrier model of GaAs/AlGaAs PIN APD.)

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Nano-sized GaN HEMT simulator

GaN HEMT device analysis tool

Explanation of the physical model used for analyzing APSYS's field-effect transistor (FET) devices. Introduction of the quantum ballistic current transport model. Comparison of simulation results for GaN HEMT using the Non-Equilibrium Green's Function (NEGF) method and the drift-diffusion equation in APSYS. The results from NEGF are similar to the experimental results in terms of the shape of the I-V characteristics.

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HEMT simulator

Analysis tools in HEMT simulation

Simulation and explanation of the issues of piezoelectric polarization, nucleation layer, and semi-insulating traps in GaN/AlGaN HEMTs, hot carrier trapping in GaN/AlGaN HEMTs, and impact ionization effects in InGaAs HEMTs using specific devices.

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3D simulator for SiC MESFET

3D device analysis tool for SiC MESFET.

Introducing the key points of the flow from mask pattern design using MaskEditor, process simulation with CSuprem, to device simulation with APSYS. Additionally, the calculation results are graphically plotted to illustrate the points of analysis and characteristics.

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