The Power Control Unit (PCU) is engineered to optimize power management in electric vehicles (xEVs). It encompasses components such as a DC-DC converter, which adjusts battery voltage, and an inverter that converts DC voltage to AC voltage. Although the inverter is responsible for driving the motor, the PCU is critical for overall vehicle performance, influencing aspects like acceleration during startup and regenerative braking efficiency. The Engine Control Unit (ECU) that governs the PCU is equipped with a dedicated microprocessor unit (MPU). This unit gathers diverse data, including vehicle speed, accelerator position, battery level, and motor rotation angle (resolver), from multiple other ECUs integrated within the vehicle via the on-board network using CAN*/CAN FD* communications. The power device operates based on the RAM values, which represent the command speed calculated by the MPU from these parameters.
Subsequently, the motor is driven by three-phase inverter signals under Pulse Width Modulation (PWM) control to achieve the target current. As on-board driving systems for electric and hybrid vehicles evolve, they are increasingly focused on addressing global environmental challenges. Key considerations include reducing size and weight, enhancing battery capacity, improving system efficiency to extend driving range, and ensuring inverter reliability in harsh, noisy environments.
*CAN: Controller Area Network
*CAN FD: CAN with Flexible Data rate
The ongoing electrification of automobiles leads to an exponential increase in the number of ECUs, sensors, and control devices, resulting in more diverse and high-speed in-vehicle Local Area Networks (LANs) connecting these components. Consequently, comprehensive evaluations are necessary, ranging from physical layer analysis of in-vehicle LANs to assessments that encompass physical signals, subsystems, and vibrations in finished vehicles. As the electrification and intelligence of automobiles progress, various types of on-board buses are being adopted according to the required levels of control, communication speed, data size, and security. The ability to analyze serial buses of different standards concurrently has become increasingly vital for the development and evaluation of automotive systems.
They display protocol analysis results in real-time while showing physical layer voltage waveforms of multiple buses captured with triggers. They can perform simultaneous analysis up to four serial buses out of nine types of serial buses: UART/I2C/ SPI/CAN/CAN FD/LIN/FlexRay/SENT/CXPI. A single unit can analyze complex systems using different bus standards.
Logic input can also be utilized for serial bus analysis, such as I2C bus and SPI bus, as well as for observation of the data and control signals and as triggering source.
* Logic inputs also available for I2C/SPI/UART/SENT
Figure 1. Simultaneous analysis of four buses and list display
Configuring bit rates and voltage levels for target buses can be a tedious process. The DLM series features a unique Auto Setup function that automatically analyzes and configures input signals. Even in the absence of prior information regarding bit rates or data formats, this function can significantly reduce setup time.Furthermore, the DLM5000HD enhances this functionality by applying Auto Setup to its captured waveform data, streamlining the setup process and minimizing the risk of misconfiguration.
Figure 2. Example of Auto Setup function
Figure 3. DLM5000HD (12-bit)
The DLM series can capture waveforms for durations of up to 0.2 seconds at a sampling rate of 2.5 GS/s and up to 10 seconds at 50 MS/s (DLM3000/DLM5000). The DLM5000HD extends this capability to 20 seconds at the same 50 MS/s sampling rate.
* Maximum memory of 500 Mpts is available as an optional feature for the DLM3000/DLM5000
* Maximum memory of 1 Gpts is available as an option feature for the DLM5000HD
This feature automatically saves up to 100,000 captured waveforms in its acquisition memory, allowing for later analysis (up to 200,000 waveforms with the DLM5000HD).
Users can display a specific waveform from the captured set or review all waveforms collectively. The history function facilitates cursor measurement and calculations, enabling retroactive tracing of waveforms that may be challenging to capture with standard triggers.
Additionally, a robust history search function enables easy retrieval of waveforms that meet specific criteria from a large set of stored waveforms. Intuitive on-screen search tools allow users to define rectangular, full-waveform, or polygonal zones to isolate key parts of a waveform. If specific values, such as abnormal voltage levels or pulse widths, have been identified, users can also search directly by waveform parameters for quick access to relevant data.
Figure 4. History search function
To analyze multi-channel waveforms stored in memory, users may need to enlarge the display both horizontally and vertically for detailed observation. The DLM series includes dedicated zoom keys and a scaling knob, facilitating rapid zooming into the desired locations. The touch screen can also be used to specify the desired area for zooming. This capability allows users to zoom and display two waveforms with differing time axis scales simultaneously. Additionally, the Auto Scroll function enables automatic scrolling of zoom window locations. This functionality is particularly useful for debugging, as it allows simultaneous zooming and displaying of different locations, illustrating the “cause” and “result” of an event at varying magnification ratios.
Figure 5. Simultaneous zooming of two locations
IS8000 enables decoding, frame display, and searching of communication content within CAN bus signal waveforms found in measurement files. It also analyzes signal waveforms obtained from oscilloscopes as well as the ScopeCorder series, facilitating the reanalysis of historical communication signal waveforms and comparisons with other physical quantity measurement data.
Figure 6. Decoding CAN communications using the IS8000
IS8000 supports decoding, listing display, and searching communication content from CAN bus signal waveforms. It is capable of processing CAN bus signal waveforms recorded not only by oscilloscopes but also by the ScopeCorder series or IS8000 itself.
Figure 7. DL950 ScopeCorder
There are two types of in-vehicle bus analysis: decoding display and trend display.
Oscilloscopes
Purpose : Checking transmission data by waveform
characteristics and decoding
Support : Nine types: UART/I²C/SPI/CAN/CAN FD/LIN/
FlexRay/SENT/CXPI
Figure 8. Example of CAN FD signal waveforms and decoding display
ScopeCorders
Purpose : Confirmation of time variations and responsiveness
of various data, such as command and response
Notes : Capable of simultaneous measurement of voltage,
current, temperature, acceleration, strain, torque, etc.
Support : Four types: CAN/CAN FD/LIN/SENT
Figure 9. Example of CAN data trend display
DLM3000シリーズは、小型軽量コンパクトながら大容量ロングメモリーと豊富な解析機能で好評いただいてきたDLM2000シリーズに、直観的操作が可能なタッチスクリーンを搭載、メモリーを最大500Mポイント(/M2オプション)まで拡張、入力感度やアクイジションレートなど様々な改善を施した、新設計の2/4チャネルミックスドシグナルオシロスコープです。
DLM5000シリーズは、DLM4000シリーズの機能・操作性を継承しつつ、タッチパネル搭載により使いやすさに磨きをかけた新設計の大画面アナログ 8ch 入力 オシロスコープです。新たに4chモデルも追加されました。2台連結同期により、最大16chの測定が可能で、高度化・高速化するパワーエレクトロニクス、カーエレクトロニクス、メカトロニクス開発に最適です。
DLM3000HDシリーズは、小型軽量コンパクトながら大容量ロングメモリーと豊富な解析機能で好評いただいてきたDLM3000シリーズが電圧軸分解能を拡張し、メモリーを最大1Gポイント(/M3オプション)まで拡張、入力感度やアクイジションレートなど様々な改善を施した、新設計の4チャネルミックスドシグナルオシロスコープです。
YOKOGAWAのDLM5000HDは、最先端の4/8チャネル高分解能オシロスコープです。コンパクトな8チャネル、垂直軸分解能12ビットのオシロスコープで、複雑な高速波形を高分解能で観測・解析でき、微細なノイズやリンギングなどの確認が容易に行えます。回路チェックからトラブルシューティング、高度なタイミング解析まで、幅広いアプリケーションをカバーしています。