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We will introduce a case where the fitting parameters for all 6 cases were identified!

  • Scientific Calculation and Simulation Software
  • Analysis and prediction system

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We will optimize the input forms on the website to reduce drop-offs and improve the conversion rate!

  • Access analysis tools

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PROBiZZ will provide a thorough explanation of the evolving systems of sales companies through digitalization, along with case studies.

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  • Sales promotion and sales support software
  • Sales Agent
  • Ad management and operations

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Make the world smarter with the power of quantum and optimization! Please contact our optimization consultants first.

  • Process Control System

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Consider real-time traffic signal control in response to the constantly changing traffic conditions!

  • others

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The sales innovation method of 'PROBiZZ' that enables a shift from reliance on new customer acquisition to deepening existing customer relationships.

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  • Sales promotion and sales support software
  • Sales Agent
  • Ad management and operations

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Feature-rich general-purpose process simulator. Make free choices in a risk-free virtual environment. [Online experience seminar currently being held]

  • IoT
  • Scientific Calculation and Simulation Software

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We support our customers' internet marketing while considering business development. We respond quickly and provide a one-stop service.

  • Ad management and operations

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An explanation of what the gradient method specifically entails! Introduction to a technical column.

  • Other Software

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The key to successful DX transformation lies in "visualizing business processes" and "BPO"!

  • Accounting Agency
  • Recruitment Agency

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Introducing three case studies! Providing a software development kit (SDK) to easily optimize planning tasks.

  • Other Software

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Achieving cost-effective use of EVs through optimization of the number of vehicles, suppression of rising electricity costs, and digital transformation of vehicle management!

  • Other Smart Grid
  • others

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[Available for preview] - AI, robotics technology, ChatGPT, MI, Bayesian optimization, secure computation, etc.

  • others

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[Book] Improving R&D Efficiency and Operational Methods through Automation and Autonomy of Experiments (No. 2230)

- AI, robotics technology, ChatGPT, MI, Bayesian optimization, secure computation, etc. - ☆ Reduce variations due to experimenters, skill levels, and experiment dates!! ☆ Unveiling secret strategies to achieve "unprecedented development speed" and "overwhelming cost reduction"!! ---------------------------- ■ Table of Contents (Excerpt) Chapter 1: Expectations and Support Systems for Experiment Automation and Autonomy Chapter 2: Steps to Achieve Laboratory Automation Chapter 3: Organizational Structure and Internal Deployment for Automated and Autonomous Experiments Chapter 4: Introduction of Automated Experimental Equipment and Autonomous Experimental Systems into Research and Development Operations Chapter 5: Efficiency Improvement and Productivity Enhancement in Research and Development Operations through RPA Chapter 6: Shortening Experiments and Applications with Collaborative Robots Chapter 7: Utilization of AI Technology Chapter 8: Bayesian Optimization Chapter 9: Material Exploration through Automated and Autonomous Experiments Chapter 10: Initiatives and Case Studies for Laboratory Automation ---------------------------- ● Publication Date: December 27, 2023 ● Format: A4, 545 pages ● Authors: 89 ● ISBN: 978-4-86104-994-1 ----------------------------

The keynote speech will feature hot topics on the science of sports and presentations on fire simulation research.

  • others

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Simulation and Optimal Design CAE Technology Altair HyperWorks

  • others

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Significantly improve productivity in MDO using web technology!

  • Other Software
  • others

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Global Digital Oilfield Market (up to 2027): By Process, By Component, By Application, By Region

  • others

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We will introduce examples of how cooling designs have been utilized for electronic devices!

  • Scientific Calculation and Simulation Software
  • Analysis and prediction system

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Development of an ultrasonic probe utilizing the acoustic properties of Teflon rods (with iron cores).

  • pump
  • Analysis and prediction system
  • others

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Developed optimization and evaluation technology related to water tanks, ultrasound, and liquid circulation.

The Ultrasonic System Research Institute has developed a technology to optimize ultrasonic propagation systems that can control resonance and nonlinear phenomena based on various analysis results of ultrasonic propagation states using an original ultrasonic system (sound pressure measurement analysis and oscillation control). Furthermore, we have advanced the above technology and developed optimization and evaluation techniques related to water tanks, ultrasonic waves, and liquid circulation. Compared to previous control technologies, this technology utilizes new measurement and evaluation parameters (note) concerning the entire propagation path of ultrasonic vibrations, including various propagation tools, to achieve a dynamic propagation state of ultrasonic waves tailored to specific applications (cleaning, stirring, processing, etc.). This is a method and technology that can be applied immediately, and we offer it as a consulting service (with increasing achievements in ultrasonic processing, precision cleaning at the nano level, stirring, etc.). Note: Parameters include: Power spectrum, autocorrelation, bispectrum, power contribution ratio, impulse response characteristics, and others. Ultrasonic propagation characteristics: 1) Detection of vibration modes 2) Detection of nonlinear phenomena 3) Detection of response characteristics 4) Detection of interactions

Technical Specialty Books - Polymer Molding and Processing, Paints and Coatings, Cosmetics and Food, etc.

  • others

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[Book] Fluid and Flow Analysis Case Studies (No. 2003BOD)

- Polymer molding and processing, paints and coatings, cosmetics and food, etc. - ■ Table of Contents Chapter 1: Techniques for Utilizing Resin Flow Analysis Chapter 2: Mechanisms of Stirring and Mixing Processes, Flow Analysis Techniques, and Optimization Cases of Stirring Conditions Chapter 3: Flow Analysis of Particle Dispersion Liquids and Visualization Techniques for Particle Behavior Chapter 4: Flow Analysis of Coating Processes and Optimization of Coating Conditions Chapter 5: Flow Analysis and Condition Optimization in Extrusion Molding, Case Studies for Defect Countermeasures Chapter 6: Understanding Flow States in Extrusion Mixing Machines and Case Studies Chapter 7: Flow Analysis and Defect Countermeasures in Injection Molding Processing Chapter 8: Flow Analysis Techniques and Case Studies in the Resin Curing Process -------------------------- ● Published: September 30, 2019 ● Authors: 50 people ● Format: A4 size, 374 pages Hardcover edition: Price: 88,000 yen (tax included) ISBN: 978-4-86104-758-9   ↓↓ The hardcover edition is out of print ↓↓ On-demand edition available for sale       Price: 44,000 yen (tax included) ISBN: 978-4-86104-934-7       After receiving your order, we will perform simple printing and binding. --------------------------

Optimization of cavitation and acoustic flow using a degassed fine bubble generation liquid circulation device.

  • Scientific Calculation and Simulation Software
  • pump
  • others

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Function generator oscillation of ultrasonic transducer.

The Ultrasonic System Research Institute is applying measurement, analysis, and evaluation techniques related to the propagation state of ultrasound to publish technology that relaxes the surface residual stress of ultrasonic transducers using ultrasound and fine bubbles. This technology for relaxing surface residual stress has made it possible to improve fatigue strength against metal fatigue. As a result, the effects on various components, including ultrasonic tanks, have been demonstrated. Ultrasonic Probe: Outline Specifications Measurement Range: 0.01 Hz to 200 MHz Oscillation Range: 1.0 kHz to 25 MHz Propagation Range: 0.5 kHz to over 900 MHz (confirmation of acoustic pressure data analysis) Materials: Stainless steel, LCP resin, silicon, Teflon, glass, etc. Oscillation Equipment: Example - Function Generator Measurement Equipment: Example - Oscilloscope By controlling oscillation, we achieve propagation states tailored to the objectives regarding sound pressure level, frequency, and dynamic characteristics. Ultrasonic Propagation Characteristics 1) Detection of vibration modes (changes in self-correlation) 2) Detection of nonlinear phenomena (changes in bispectrum) 3) Detection of response characteristics (analysis of impulse response) 4) Detection of interactions (analysis of power contribution rates)

A technology for stably utilizing fine bubbles with a spherical size of 20μm or less—nano-level cleaning method that controls ultrasonic acoustic flow.

  • pump
  • Water Treatment
  • Drainage and ventilation equipment

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Function generator oscillation of ultrasonic transducer.

The Ultrasonic System Research Institute is applying measurement, analysis, and evaluation techniques related to the propagation state of ultrasound to publish technology that relaxes the surface residual stress of ultrasonic transducers using ultrasound and fine bubbles. This technology for relaxing surface residual stress has made it possible to improve fatigue strength against metal fatigue. As a result, the effects on various components, including ultrasonic tanks, have been demonstrated. Ultrasonic Probe: Outline Specifications Measurement Range: 0.01 Hz to 200 MHz Oscillation Range: 1.0 kHz to 25 MHz Propagation Range: 0.5 kHz to over 900 MHz (confirmation of acoustic pressure data analysis) Materials: Stainless steel, LCP resin, silicon, Teflon, glass, etc. Oscillation Equipment: Example - Function Generator Measurement Equipment: Example - Oscilloscope By controlling oscillation, we achieve propagation states tailored to the objectives regarding sound pressure level, frequency, and dynamic characteristics. Ultrasonic Propagation Characteristics 1) Detection of vibration modes (changes in self-correlation) 2) Detection of nonlinear phenomena (changes in bispectrum) 3) Detection of response characteristics (analysis of impulse response) 4) Detection of interactions (analysis of power contribution rates)

Technology for controlling low-frequency resonance phenomena and high-frequency nonlinear phenomena.

  • Special Construction Method
  • Non-destructive testing
  • others

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Technology for manufacturing megahertz ultrasonic oscillation control probes - Consulting support for manufacturing know-how -

The Ultrasonic System Research Institute has developed technology to manufacture ultrasonic probes that can control ultrasonic propagation states from 500 Hz to 700 MHz, tailored to specific applications. Ultrasonic Probe: General Specifications - Measurement Range: 0.01 Hz to 200 MHz - Oscillation Range: 1.0 kHz to 25 MHz - Propagation Range: 0.5 kHz to over 700 MHz - Materials: Stainless steel, LCP resin, silicone, Teflon, glass, etc. - Oscillation Equipment: Example - Function Generator By understanding the acoustic properties of metals, resins, and glass, we can achieve desired propagation states in terms of sound pressure level, frequency, and dynamic characteristics through oscillation control. This is a new foundational technology for precision cleaning, processing, stirring, and inspection based on measurement, analysis, and evaluation techniques for ultrasonic propagation states. By utilizing the acoustic properties (surface elastic waves) of various materials (such as glass containers), ultrasonic stimulation can be controlled for structures and machine tools weighing several tons, even in a 3000-liter water tank, with ultrasonic output below 20 W. It was developed as an application method for nonlinear phenomena through an engineering perspective on elastic waves and an abstract algebraic ultrasonic model.

Making the world more convenient through artificial intelligence development centered on deep learning.

  • Other Software

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Wireless mesh with Modbus RTU

  • Other interior and exterior systems and units

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--Mastering SPOT-- A spot repair dedicated spray gun "FINER SPOT" that faithfully reproduces the demands of craftsmen required for spot repairs.

  • Photocatalysts and various wall materials (exterior and interior walls, etc.)

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SIZEGATE: A measuring and weighing scale that streamlines the 'sasage' operations of EC logistics.

  • others

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Reliable external advisor 'CTO Consultant' that supports appropriate IT/DX utilization from the perspective of both management and engineering.

  • Other Software
  • others

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A technology has been developed to control the nonlinear phenomena of ultrasonic vibrations propagating to the target object based on classification techniques of ultrasonic waves and oscillation cont...

  • others
  • Other analytical equipment
  • Non-destructive testing

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Dynamic control technology of ultrasound applied using Shannon's juggling theorem.

The Ultrasonic System Research Institute has developed a "Dynamic Control Method for Megahertz Ultrasound" by applying Shannon's Juggling Theorem. << Application of Shannon's Juggling Theorem >> (F + F2 + ...) * H = (V + V2 + ...) * N F: The oscillation ratio of the base ultrasonic 1 F2: The oscillation ratio of the base ultrasonic 2 F3: The oscillation ratio of the base ultrasonic 3 H: Basic time (maximum control cycle time) (H = MAX(oscillation cycle of ultrasonic 1, oscillation cycle of ultrasonic 2, ...)) V: Megahertz oscillation cycle time by ultrasonic probe 1 V2: Megahertz oscillation cycle time by ultrasonic probe 2 V3: Megahertz oscillation cycle time by ultrasonic probe 3 V4: Megahertz oscillation cycle time by ultrasonic probe 4 (In the case of pulse oscillation, cycle time = 1) N: Adjustment parameters for harmonics 7, 11, 13, 17, 23, 43, 47, ... The key point (know-how) is to control the occurrence state of nonlinear phenomena based on the measurement, analysis, and evaluation of sound pressure data.

We propose and implement web strategies for business success!

  • Internet Advertising
  • Ad management and operations
  • SEO Tools

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- Control technology for ultrasonic probe oscillation using a function generator -

  • IoT
  • Non-destructive testing
  • Vibration and Sound Level Meter

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Dynamic control technology of megahertz ultrasound - Nonlinear control technology of ultrasound using multiple function generators.

The Ultrasonic System Research Institute has developed a completely new dynamic control technology for ultrasound by utilizing multiple function generators. This technology enables the control of nonlinear ultrasonic phenomena through oscillation with several different waveforms (sweeping). Note: Nonlinear (resonance) phenomena By generating harmonics of the 10th order or higher through original oscillation control and resonating with low-frequency vibration phenomena, the generation of high-amplitude harmonics has been achieved, resulting in nonlinear (resonance) phenomena of ultrasonic vibrations. By optimizing the ultrasonic propagation characteristics of various components according to their intended purpose, efficient ultrasonic oscillation control becomes possible. Through the measurement and analysis of sound pressure data from ultrasonic testers, this system technology dynamically controls the changes in surface elastic waves according to the intended application. Ultrasonic Oscillation Control Probe Measurement and analysis range: 1 Hz to 200 MHz Oscillation range: 0.5 kHz to 25 MHz Ultrasonic propagation range: 5 kHz to over 900 MHz (analysis confirmed) Ultrasonic propagation characteristics: 1) Detection of vibration modes 2) Detection of nonlinear phenomena 3) Detection of response characteristics 4) Detection of interactions

Achieving optimization of the clamp force distribution on the pad surface! Proposals tailored to needs with four types of models.

  • Work tools
  • others

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A flexible and diverse service plan that can be selected according to needs, with Abaqus as the key technology.

  • Rock drills, demolition machines, and excavators
  • Scientific Calculation and Simulation Software
  • others

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Today's ANSYS: ANSYS Fluent's Fiber Module

Today, I would like to take a different perspective and introduce the "Fiber Module," an optional feature of ANSYS Fluent. This module allows for the modeling of melt spinning and dry spinning processes in fiber production. It can simulate various physical phenomena such as the solidification of molten liquid and volatilization by coupling the standard CFD mesh of Fluent with an independent one-dimensional mesh (grid) for the fibers. There are three methods for spinning: melt spinning, dry spinning, and wet spinning. Currently, simulations possible with ANSYS Fluent and the Fiber Module are limited to melt spinning and dry spinning. By considering the interaction between the surrounding fluid calculations and the fiber calculations, it is possible to obtain flow fields and temperature fields of the surrounding fluid that change with the flow of the fibers, as well as local information about the fibers that changes with the surrounding fluid. All necessary settings for the simulation can, of course, be done through the GUI. The high functionality is a characteristic feature of the ANSYS Fluent Fiber Module. *For more details, please refer to the link below or feel free to contact us.*

Optimize costs and production time! A fluid management solution that makes process management and monitoring safer with remote control capabilities!

  • Piping and insulation
  • Air compressors, blowers and pumps

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Let's take this opportunity to learn ultrasonic cleaning, which enables the removal of complex shapes and fine dirt, from scratch!

  • Other measuring instruments
  • others
  • Scientific Calculation and Simulation Software

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Technical documentation on ultrasonic sound pressure measurement.

<<Analysis and Evaluation of Ultrasonic Sound Pressure Data>> 1) Regarding time series data, we will analyze and evaluate the statistical properties of the measurement data (stability and changes of ultrasonic waves) through feedback analysis using a multivariate autoregressive model. 2) The effects of the oscillation part due to ultrasonic oscillation will be analyzed and evaluated in terms of the response characteristics of ultrasonic vibration phenomena concerning the surface condition of the target object through impulse response characteristics and autocorrelation analysis. 3) The interaction between the oscillation and the target object (cleaning items, cleaning solutions, water tanks, etc.) will be evaluated through the analysis of power contribution rates. 4) Regarding the use of ultrasonic waves (cleaning, processing, stirring, etc.), we will analyze and evaluate the dynamic characteristics of ultrasonic waves based on the nonlinear phenomena (results of bispectral analysis) of the target object (propagation of surface elastic waves) or the ultrasonic waves propagating in the target liquid, which are the main factors of the ultrasonic effect. This analysis method is realized based on previous experience and achievements by adapting the dynamic characteristics of complex ultrasonic vibrations to the analysis methods of time series data. The following tool will be used for the analysis: "R," a free statistical processing language and environment.

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