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基于Cortex-M3智能无线温度测量系统设计
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作者 钟鼎 《电子设计工程》 2011年第21期183-185,共3页
设计了一种基于Cortex-M3内核的STM32F103RBT6为核心处理器的智能无线温度测量系统。系统采用DS18B20数字温度传感器,并利用TC35I模块接入GSM网络,实现利用手机短信发送温度测量指令,手机短信接收测量数据,该系统同时具有定时自检和温... 设计了一种基于Cortex-M3内核的STM32F103RBT6为核心处理器的智能无线温度测量系统。系统采用DS18B20数字温度传感器,并利用TC35I模块接入GSM网络,实现利用手机短信发送温度测量指令,手机短信接收测量数据,该系统同时具有定时自检和温度报警功能,当处理器定时自检发现DS18B20出现故障时,系统会自动启用处理器内部温度传感器并短信报警。经实验证明,该系统测量精度最高可达0.062 5度,适合在距离较远,不易布线的环境下使用。 展开更多
关键词 CORTEX-M3 STM32F103rbt6 DS18B20 TC35I 温度测量
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Construction of fault diagnosis system for control rod drive mechanism based on knowledge graph and Bayesian inference 被引量:5
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作者 Xue‑Jun Jiang Wen Zhou Jie Hou 《Nuclear Science and Techniques》 SCIE EI CAS CSCD 2023年第2期58-75,共18页
Knowledge graph technology has distinct advantages in terms of fault diagnosis.In this study,the control rod drive mechanism(CRDM)of the liquid fuel thorium molten salt reactor(TMSR-LF1)was taken as the research objec... Knowledge graph technology has distinct advantages in terms of fault diagnosis.In this study,the control rod drive mechanism(CRDM)of the liquid fuel thorium molten salt reactor(TMSR-LF1)was taken as the research object,and a fault diagnosis system was proposed based on knowledge graph.The subject–relation–object triples are defined based on CRDM unstructured data,including design specification,operation and maintenance manual,alarm list,and other forms of expert experience.In this study,we constructed a fault event ontology model to label the entity and relationship involved in the corpus of CRDM fault events.A three-layer robustly optimized bidirectional encoder representation from transformers(RBT3)pre-training approach combined with a text convolutional neural network(TextCNN)was introduced to facilitate the application of the constructed CRDM fault diagnosis graph database for fault query.The RBT3-TextCNN model along with the Jieba tool is proposed for extracting entities and recognizing the fault query intent simultaneously.Experiments on the dataset collected from TMSR-LF1 CRDM fault diagnosis unstructured data demonstrate that this model has the potential to improve the effect of intent recognition and entity extraction.Additionally,a fault alarm monitoring module was developed based on WebSocket protocol to deliver detailed information about the appeared fault to the operator automatically.Furthermore,the Bayesian inference method combined with the variable elimination algorithm was proposed to enable the development of a relatively intelligent and reliable fault diagnosis system.Finally,a CRDM fault diagnosis Web interface integrated with graph data visualization was constructed,making the CRDM fault diagnosis process intuitive and effective. 展开更多
关键词 CRDM Knowledge graph Fault diagnosis Bayesian inference rbt3-textcnn Web interface
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