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    <title>台輝光科技股份有限公司</title>
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    <description>台輝光科技股份有限公司 (Plasma Taiwan Innovation Corporation, Plasma T.I.)成立於2014年，以電漿相關技術為主要研發重點，是台灣本土極少數有能力自行開發高效率平行科學計算模擬軟體的公司，並可提供專業顧問服務，及因應關鍵技術開發客製化模擬軟體。台輝光科技的研發目標在於協助半導體相關製程提升品質、縮短新技術如電漿蝕刻、鍍膜、濺鍍、物理蒸鍍、常低壓電漿等的開發時間。此外，也可協助電漿應用新領域，如生物、醫療、國防太空科技等的研發，大幅縮短設計時間，節省開發成本。台輝光科技的技術源自交通大學和國內外研究機構、廠商長期合作累積下來的寶貴模擬實務經驗，致力於研發國際級低溫電漿(low-temperature plasma)、稀薄氣體 (Rarefied Gas Dynamics; RGD)、計算流體力學(Computational Fluid Dynamics, CFD)與多重物理計算的相關模擬軟體，並成功開發了一套多重物理平行計算整合平台：RAPIT&amp;nbsp;(Rigorous&amp;nbsp;Advanced&amp;nbsp;Plasma&amp;nbsp;Integration&amp;nbsp;Testbed)可以整合各種不同數值方法（連續與粒子）在時間/空間/能量尺度的複雜耦合物理化學特性。Plasma T.I. (Plasma Taiwan Innovation Corporation) established in 2014 aiming at becoming a software company in scientific computing in the belief that the&amp;nbsp;plasma technology&amp;nbsp;brings humanity to the next level.&amp;nbsp;We dedicate to develop integrated/efficient/high-fidelity numerical tools and provide valued technical consulting services for the simulation and modeling of plasma, rarefied gas dynamics, non-reactive and reactive gas flows used in various kinds of industrial processes and technologies, which include semiconductor fabrication, low-pressure solar-cell fabrication process, vacuum dynamics, MEMS/NEMS devices, hypersonic/reentry flow, radiative heat transfer, combustion and rocket propulsion (liquid, solid and hybrid), to name a few.&amp;nbsp;​In addition, our modeling team is capable of providing development of quantitative chemical kinetics (channels and rate constants) for new reactive process using first-principle&amp;nbsp;ab initio&amp;nbsp;calculations for gas-phase and surface reactions.&amp;nbsp;Plasma T.I. has practically developed a conceptually new multi-physics software based on modern high-performance computing platform. The proven technology can shorten the development time and bring off the phenomenal performance.Plasma Investigation and Research​Gas discharge is the promising technology in various applications. However, the underlying complexity has not been understood completely.​&amp;nbsp; &amp;nbsp; &amp;bull; requiring multidisciplinary knowledge&amp;nbsp; &amp;nbsp; &amp;bull; evolving on widely separated multiscale phenomenon&amp;nbsp; &amp;nbsp; &amp;bull; difficult and costly to conduct the measurement&amp;nbsp; &amp;nbsp; &amp;bull; the design and controlling of plasma source based on trial-and-error approachWe believe the computational plasma considering multi-scale multi-physics is one of the best ways for advancing plasma investigation and research.技術簡介&amp;nbsp;TechnologyPlasma Processing Simulation Platform&amp;nbsp; ICP&amp;nbsp;chamber核心技術Core Technique &amp;ndash; 多重物理求解器Multi-physics SolversPlasma T.I. has developed four numerical solvers of low-temperature plasma and gas flow applications for wide range of physics scales. Multi-physics simulation for any applications can be achieved by integrating these solvers.&amp;nbsp; &amp;bull;ultraSPARTS&amp;nbsp;&amp;ndash; direct simulation Monte Carlo (DSMC)&amp;nbsp; &amp;bull;ultraPICA&amp;nbsp;&amp;ndash; particle-in-cell with Monte Carlo method (PIC-MCC)&amp;nbsp; &amp;bull;ultraNS&amp;nbsp;&amp;ndash; all-speed gas flow solver&amp;nbsp; &amp;bull;ultraFM&amp;nbsp;&amp;ndash; plasma fluid modeling​The software based on&amp;nbsp;RAPIT&amp;nbsp;includes, but is not limited to, the individual solver or hybrid solvers of the above. The speedy development of new solver is implemented by defining the physics function without regarding the hardware, operating system, and parallel programming.&amp;nbsp;Old CFD companies are stumbling by the old veridical integration of software structure, resulting in the slow or no reaction to the customers. Emerging multi-physics software are designed or integrated by a mission-oriented mindset, leading to enormous overhead in adding extra physics solvers.&amp;nbsp;&amp;nbsp;Multi-physics Software should support the following features:⏺ solid, liquid, gas, and plasma &amp;nbsp;⏺ electromagnetic wave⏺ cross multi-scale⏺ seamless integration of multiple physics⏺ coefficient database⏺ easy to access⏺ high-performance computingParallel EfficiencyParallel performance of&amp;nbsp;​RAPIT&amp;nbsp;on Plasma T.I. cluster and&amp;nbsp;NCHC ALPS&amp;nbsp;cluster多重物理平行計算整合平台RAPIT&amp;nbsp;RAPITRAPIT&amp;nbsp;stands for&amp;nbsp;Rigorous&amp;nbsp;Advanced&amp;nbsp;Plasma&amp;nbsp;Integration&amp;nbsp;Testbed which is an unique software architecture developed by Plasma T.I.. The testbed consists of four major simulation codes, which include&amp;nbsp;direct simulation Monte Carlo code (ultraSPARTS),&amp;nbsp;particle-in-cell Monte Carlo code (ultraPICA),&amp;nbsp;neutral gas flow modeling code (ultraNS) and&amp;nbsp;plasma fluid modeling code (ultraFM). All these codes are developed based on unstructured-grid topology and can be hybridized for modeling physical problems with multi-physics problems with complex geometry.RAPIT&amp;nbsp;is an unique Application Programming Interface (API) designed by Plasma T.I., which&amp;nbsp;can help to develop multi-physics software from scientific and engineering concept to high performance computing.&amp;nbsp;RAPIT&amp;nbsp;can deal with complex geometry using 2D/2D-axisymmetric/3D hybrid unstructured grid with parallel computing, which can help the customers reduce the computational runtime from months to days.ultraSPARTSultraSPARTS&amp;nbsp;(ultra-fast&amp;nbsp;Statistical&amp;nbsp;PARTicle&amp;nbsp;Simulation&amp;nbsp; Package)&amp;nbsp;is a particle-based C++ object-oriented&amp;nbsp; simulation code designed for efficiently solving gas flow&amp;nbsp; problems with rarefaction and strong non-equilibrium. This software employs the direct simulation Monte Carlo (DSMC) method for directly solving the Boltzmann equation statistically. It can deal with rarefied gas flows with complex geometry using 2D/2D-axisymmetric/3D hybrid unstructured grid. The package has been applied for modeling general rarefied gas dynamics such as hypersonic non-reacting and reacting gas flows, vacuum pumping flow, satellite plume impingement, MEMS/NEMS gas flow, comet gas/dust plume, and PVD deposition (OLED, CIG, E-beam, etc.),&amp;nbsp; to name a few.MOREultraPICAultraPICA&amp;nbsp;(ultra-fast&amp;nbsp;Particle-In-Cell Monte Carlo&amp;nbsp;Analysis)&amp;nbsp;is the software based on particle-in-cell with Monte Carlo method for the kinetic simulation of particles interacting with electromagnetic fields.&amp;nbsp;ultraPICA&amp;nbsp;is the perfect method to investigate plasmas such as PECVD, hall thruster of spacecraft, non-equilibrium properties (IEDF, EEDF, IADF) for feature-scale simulation, and so on.&amp;nbsp;ultraPICA&amp;nbsp;can simulate on 2D/3D/axisymmetric unstructured grids with high-performance parallel computing technology. Dynamic Loading Balance (DLB) between each processor is executed automatically for the best efficiency of computation, which is rarely seen from other software packages. The package can be used for modeling general very low-pressure gas discharges such as DC/RF magnetron sputtering plasma, ICP and UHV PECVD, to name a few.MOREultraNSultraNS&amp;nbsp;(ultra-fast&amp;nbsp;Navier-Stokes Equation Modeling Package) is a sophisticated 2D/2D-axisymmetric/3D unstructured grid gas flow solver&amp;nbsp;for modeling flow, heat transfer, and reactions at all-speed. Based on RAPIT,&amp;nbsp;ultraNS&amp;nbsp;can study multi-physics of plasma-flow interaction through the integration with&amp;nbsp;ultraFM&amp;nbsp;and&amp;nbsp;ultraPICA.MOREultraFMultraFM&amp;nbsp;(ultra-fast Plasma&amp;nbsp;Fluid&amp;nbsp;Modeling&amp;nbsp;Package) is a continuum-based simulation code designed for solving the velocity moments of the Boltzmann equation considering charged particles. It can deal with gas discharges (low-temperature plasma) with complex geometry using 2D/2D-axisymmetric/3D hybrid unstructured grid with parallel computing through message passing interface (MPI) that can be run on typical PC clusters. The package can be used to model general low-temperature plasma or gas discharges with complex chemistry and complex geometry such as PECVD, ICP, and APP, to name a few.MOREReferences1.&amp;nbsp;Yun-Min Lee, Meng-Hua Hu, J.-S. Wu, &amp;ldquo;A Parallel Comutational Platform -- RAPIT (Rigorous Advanced Plasma Integration Testbed,&amp;rdquo; P.6-7, WHPTCA, May 2019.2.&amp;nbsp;Yun-Min Lee, Meng-Hua, Hu, J.-S. Wu, &quot;Progress on Developing a Multi-Physics Simulation Platform: Rigorous Advanced Plasma Integration Testbed (RAPIT)&amp;rdquo;, Plasmadynamics and Lasers Conference, 2018.&amp;nbsp;</description>
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	  <id>365499</id>
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      <pubDate>Mon, 21 Sep 2020 16:13:25 +0800</pubDate>
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      <description>2025-09-26&amp;nbsp;&amp;nbsp;Introduction of shallow water equation solver. (台輝光科技水利模擬軟體：淺水波方程式求解器)2025-07-02&amp;nbsp;&amp;nbsp;List of plasma simulation software. (台輝光科技電漿模擬軟體一覽表)2025-05-19&amp;nbsp; Introduction of ultraFM. (台輝光科技常壓電漿模擬軟體)2025-01-30&amp;nbsp;&amp;nbsp;ultraSPARTS V3.0 was released.2024-12-13&amp;nbsp;&amp;nbsp;Dr. Yun-Min Lee gave a talk to introduce ulstraSPARTS (DSMC simulation for Aerospace, Defence and semiconductior appliation) at NCHU.2024-07-31&amp;nbsp;&amp;nbsp;ultraEPS V1.0 was released.2022-02-10&amp;nbsp;&amp;nbsp;ultraNSDC V1.0 was released.2022-07-24&amp;nbsp;&amp;nbsp;Attended TWSIAM 2022 at Hsinchu, Taiwan.2021-12-10&amp;nbsp;&amp;nbsp;Awarded a SBIR(Small Business Innovation Research) grant from Ministry of&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Economic Affairs.2021-07-08&amp;nbsp;&amp;nbsp;Presented &quot;Development of Parallel Hybrid Fluid Model and Electron &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp;Monte-Carlo Method for Plasma Simulation&quot; at RGD 32, Korea.2021-07-01&amp;nbsp;&amp;nbsp;ultraNSFM V1.0 was released.2021-01-30&amp;nbsp;&amp;nbsp;ultraNS V2.0 (pressure-based) was released.2020-12-11&amp;nbsp;&amp;nbsp;Updated Product Introduction.2020-09-21&amp;nbsp;&amp;nbsp;ultraNS V1.0 (density-based) was released.2020-09-07&amp;nbsp;&amp;nbsp;Dr. Meng-Hua Hu gave a speech to introduce ultraMPP at Depart of Applied&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Mathematics of NCTU.2020-09-01&amp;nbsp;&amp;nbsp;Awarded a SBIR(Small Business Innovation Research) grant from Government&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; of Hsinchu County.2020-08-07&amp;nbsp;&amp;nbsp;ultraMPP was cited in paper of &quot;Development of a Massively Parallelized Fluid-&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Based Plasma Simulation Code With a Finite-Volume Method on an &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Unstructured Grid&quot;.2020-01-20&amp;nbsp;&amp;nbsp;ultraMPP V2.0.5 was released.2019-12-01&amp;nbsp;&amp;nbsp;Awarded a SBIR(Small Business Innovation Research) grant from Ministry of&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Economic Affairs.2019-05-29&amp;nbsp;&amp;nbsp;Dr. Meng-Hua Hu gave a speech to introduce ultraMPP at Depart of Applied&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Mathematics of NCTU.2019-05-07&amp;nbsp;&amp;nbsp;ultraSPARTS was cited in paper of &quot;A comparison of multiple Rosetta data sets&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; and 3D model calculations of 67P/Churyumov-Gerasimenko coma around&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; equinox&quot;.2019-04-19&amp;nbsp;&amp;nbsp;ultraMPP V1.9.3 was released.2019-02-16&amp;nbsp;&amp;nbsp;Introduced RAPIT and ultraMPP at 2019 ATAT&amp;nbsp;in HPSC.2018-10-22&amp;nbsp;&amp;nbsp;ultraSPARTS introduction (DSMC for ANSYS) at Semiconductor section of 27th&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Cadman UGM.2018-10-15&amp;nbsp;&amp;nbsp;Attended Asian CFD 2018 at Yilan, Taiwan.2018-10-01&amp;nbsp;&amp;nbsp;ultraMPP Enterprise version was released.2018-06-25&amp;nbsp;&amp;nbsp;Attended&amp;nbsp;2018 AIAA AVIATION Forum&amp;nbsp;at Atalanta, Georgia, USA.2018-05-26&amp;nbsp;&amp;nbsp;Attended TWSIAM 2018 at Taipei, Taiwan.2018-03-02&amp;nbsp;&amp;nbsp;Dr. Yun-Min Lee gave a speech to introduce ultraMPP at&amp;nbsp;NCU.2018-03-01&amp;nbsp;&amp;nbsp;ultraSPARTS GUI was released.2017-10-01&amp;nbsp;&amp;nbsp;ultraMPP V1.0 was released.2016-11-15&amp;nbsp;&amp;nbsp;Attended 2016 SmartDo Multiphysics conference.2016-10-20&amp;nbsp;&amp;nbsp;Dr. Yun-Min Lee gave a Speech at Second Computational Mechanics&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Conference at Taiwan.​2016-06-27&amp;nbsp;&amp;nbsp;Attended the 18th International Congress on Plasma Physics at Kaohsiung,&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Taiwan.2015-12-12&amp;nbsp;&amp;nbsp;Attended the 9th Asis-Pacific International Symposium on the Basics and &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Applications of Plasma Technology and the 28th Symposium on Plasma Science &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; for Materials (SPSM-28) at Nagasiki, Japan.2015-09-01&amp;nbsp;&amp;nbsp;Awarded SBIR(Small Business Innovation Research) funding from Hsinchu&amp;nbsp;&amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; &amp;nbsp; Government.2015-08-15&amp;nbsp;&amp;nbsp;ultraSPARTS was released.2015-05-31&amp;nbsp;&amp;nbsp;Attended TWSIAM 2015 at Kaohsiung, Taiwan.</description>
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