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電力電子和馬達驅動軟體 | Altair® PSIM™

PSIM 為各種功率轉換相關應用提供解決方案,從汽車到航空航太、電子、能源和電力設施。 PSIM 在產品設計過程的每一個階段都為使用者提供支援,從概念驗證到快速控制原型開發和硬體實作。

了解更多關於 PSIM 的資訊

快速電源設計

電源是電氣化世界的支柱。 轉換器需求、半導體裝置、磁學、拓撲和控制技術的進步都需要動態、精確和專門建構的電力電子模擬工具。

PSIM 解決了當今電源設計人員面臨的主要挑戰。 PSIM 可以評估多個拓撲和轉換器操作特性、開關速度及其影響、功率損耗和效率、電磁干擾 (EMI) 濾波器設計和操作,並且可以在一個直覺化的連接環境中提供控制設計和實作。

綜合馬達驅動系統分析與設計

使用者需要業界最佳的馬達驅動設計、模擬和分析工具 - 這就是為什麼 PSIM 應成為任何團隊加快和簡化馬達驅動設計流程的首選。

PSIM 幫助使用者克服工程師在馬達驅動領域面臨的最常見挑戰,包括:

  • 馬達效能評估,
  • 電流/速度/扭矩反饋回路的控制器設計 (有感測器或無感測器控制,FOC/DTC),以及
  • 功率轉換器的尺寸和設計

非理想裝置與 EMI 模擬

使用者的設計工作並不總是需要實際的開關轉換。 但電壓/電流過沖、電磁干擾 (EMI) 和其他瞬態交互作用可能是成品和最終失敗的原型之間的差異。

使用者可以透過 PSIM 的非理想開關模型來瞭解:

  • 電壓/電流過沖
  • 傳導電磁干擾
  • 柵極驅動要求
  • 長電纜交互作用
  • 與寄生電感和電容的其他高頻交互作用

增加許多小的 L 和 C 值,再加上高頻振鈴,可能會導致數值不穩定,使用者需要像 PSIM 這樣強大的求解引擎。

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多電平轉換器

隨著電網智慧不斷提升,再生能源發揮著日益重要的作用,因此模組化多電平變流器 (MMC) 越來越重要。 由於其存在著多樣性,模擬為電力電子設計人員帶來了獨特的挑戰。 簡單的多電平轉換器和 MMC 可能有非常少的開關,而更複雜的系統可能有多達數百個開關。 這意味著團隊必須仔細考慮損耗、效率、可控性、諧波以及與其他本地轉換器的交互作用。

有這麼多方面需要考慮,團隊不能花時間等待每個模擬完成 – 有了 PSIM,使用者將能高效、準確、快速地處理這些問題。

EV/HEV 動力系統

電力電子和馬達驅動是 EV/HEV 動力傳動系統的核心。

有了 PSIM 的設計套件,團隊可以立即設定並開始模擬 HEV 動力系統。 這有助於系統工程師、硬體工程師和控制工程師研究系統的各個方面,並加快開發過程。

微電網及其並網設計與模擬

無論您稱其為智慧電網、分散式發電、固態變壓器或微電網,這些由多個電力轉換器、發電源、分散式負載和複雜控制方案組成的複雜系統過去都很難模擬。 現在情況不同了。

有了 PSIM,使用者可以設計多個轉換器協同工作,運用到眾多應用上,包括:

  • 光伏微網與分散式雙向儲能並網系統
  • 具有 PV 和電池的衛星電源系統為許多不同的負載點 (POL) 轉換器供電
  • 石油和天然氣中的井下應用
  • 用於飛機、火車和汽車具有雙向能量儲存和 POL 轉換器的電動傳動系統

 

特色資源

Getting Started with PSIM - Building a Buck Converter

Join us for a one-hour journey through PSIM and learn how to build a buck converter from open-loop to close-loop.

 

Since Altair acquired Powersim in March 2022, many new users might ask themselves: "How do I get started with PSIM and what can it even do for me?"

Are you one of them?

Or are you already an experienced user and just want to refresh your skills and see if there are any new tips and tricks?

Either way, this webinar is right for you. Join us for a one-hour journey through the PSIM software and learn how to build a buck converter from open-loop to close-loop.

We will also give tips on how to work more efficiently with PSIM by using some shortcuts.

 

Main learning concepts that we will touch on:

- Library elements

- Hotkey setup

- Simulation setup

- Timestep

- Total time

- Waveform analysis

- Adding waveforms

- Saving setups

- Adding screens

- Measurements

- Changing y-axis

- Timing

- Dual/triple etc.

- Introduction to AC sweep

- Setup

- Two-loop control

- Open-loop

- Loop gain

- Parameter file use

- Variable definitions

- Sub-circuits

- Intro analysis tools

- Monte Carlo, Fault, Sensitivity

- Intro to Scripting

- Intro to other switch modes

- Thermal

網路研討會

Solutions for Electrification featuring PSIM and Mechanical Load Co-Simulations

This webinar shows how to leverage PSIM's motor control design tools to jump-start your electrification projects.

The motor control design suite allows non-experts and experts to quickly get a fully defined motor drive working. This can be easily modified and integrated into bigger system simulations to understand the impact of a real motor drive on system efficiency and performance. We also introduce how to use Altair Activate to link PSIM with other solvers from Altair (like MotionSolve) to provide more realistic mechanical models.

 

Scripting methods are being shown to solve for inverter efficiency operating points to understand the impact of design decisions on inverter losses, e.g.:

- Switching frequency

- Device selection

- PWM scheme

 

Co-simulations and links between PSIM and other Altair tools in this webinar include:

- Activate

- Embed

- MotionSolve

網路研討會

Motor Drive Power Hardware Design a Complete Design Workflow from Loss-Comparison to EMI Considerations

Designing the power stage of a motor drive poses several interesting design and optimization tradeoffs. And what makes it even more complex is that you typically require a working motor drive control algorithm to drive the motor at the shaft speed and at your developed torque set points of interest.

 

Some major design decisions involve:

- Comparing switching and conduction losses of specific devices

- Comparing losses and performance at different switching speeds

- Evaluate losses in different PWM schemes (DPWM, SVPWM, etc)

- Optimizing DC bus capacitor size and rating

- Determining the total system efficiency as a function of developed torque and shaft speed

- Evaluate flyback voltages under inverter faults at different operating speeds

- Conducted EMI considerations

- Linking to Simulink for co-simulation

 

One typical challenge is getting a working control algorithm from the control design group.

Another time-wasting activity is setting up and running the many simulations that are required to compare these dependent design variables.

And then, What if someone wants to evaluate performance at a lower switching speed?

The control loops likely need to be totally redesigned to accommodate this and then everything needs to be re-simulated.

Do you have time for this?

 

Using PSIM's design and automation tools we will show you how to enable even someone with little knowledge of motor control algorithms to quickly design and verify the performance of the power stage without requiring input from a separate controls group:

- Use the Motor Control Design Suite to get stable current, torque, and speed controllers for your motor and operating conditions.

- Utilize Scripting Automation to define different simulation attributes and compile interpreted results. This could save you days of back and forth with your colleagues and many hours of manual simulation setup.

- Generate motor drive efficiency maps by linking with JMAG-RT which will calculate the copper and iron losses of your motor. The iron losses are broken into eddy current and hysteresis losses.

- Convert ideal switch models into non-ideal switches and define parasitic bus inductance, common-mode capacitors, and other parasitic elements to start getting an understanding of your system's conducted EMI.

- After that, use automation again to understand the sensitivity to certain parasitic values and their impact on the differential mode and common mode noise.

- Finally, you just compare your results against your desired EMI standard to ensure compliance. If you're not compliant, use the automated filter design tool provided in the EMI Design Suite to fix it.

 

It almost couldn't be more convenient and easy to use.

We will demonstrate PSIM's link to Simulink as this is another typical approach to power stage design: PSIM simulates the power stage while the control is in Simulink.

 

PSIM functionality that we cover in this webinar:

- PSIM Motor Drive Package

- Motor Control Design Suite

- EMI Design Suite

- JMAG-RT link (MagCoupler RT module)

網路研討會

Getting Started with Code Gen

Do you need to use a C2000 MCU in your next project, but you don't want to spend months on the project? PSIM's embedded code generation for TI C2000 MCUS will put you in the development fast lane.

網路研討會
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