• 제목/요약/키워드: Real-time Parameter Monitoring

검색결과 84건 처리시간 0.027초

영상장치 센서 데이터 QC에 관한 연구 (A study on imaging device sensor data QC)

  • 윤동민;이재영;박성식;전용한
    • Design & Manufacturing
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    • 제16권4호
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    • pp.52-59
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    • 2022
  • Currently, Korea is an aging society and is expected to become a super-aged society in about four years. X-ray devices are widely used for early diagnosis in hospitals, and many X-ray technologies are being developed. The development of X-ray device technology is important, but it is also important to increase the reliability of the device through accurate data management. Sensor nodes such as temperature, voltage, and current of the diagnosis device may malfunction or transmit inaccurate data due to various causes such as failure or power outage. Therefore, in this study, the temperature, tube voltage, and tube current data related to each sensor and detection circuit of the diagnostic X-ray imaging device were measured and analyzed. Based on QC data, device failure prediction and diagnosis algorithms were designed and performed. The fault diagnosis algorithm can configure a simulator capable of setting user parameter values, displaying sensor output graphs, and displaying signs of sensor abnormalities, and can check the detection results when each sensor is operating normally and when the sensor is abnormal. It is judged that efficient device management and diagnosis is possible because it monitors abnormal data values (temperature, voltage, current) in real time and automatically diagnoses failures by feeding back the abnormal values detected at each stage. Although this algorithm cannot predict all failures related to temperature, voltage, and current of diagnostic X-ray imaging devices, it can detect temperature rise, bouncing values, device physical limits, input/output values, and radiation-related anomalies. exposure. If a value exceeding the maximum variation value of each data occurs, it is judged that it will be possible to check and respond in preparation for device failure. If a device's sensor fails, unexpected accidents may occur, increasing costs and risks, and regular maintenance cannot cope with all errors or failures. Therefore, since real-time maintenance through continuous data monitoring is possible, reliability improvement, maintenance cost reduction, and efficient management of equipment are expected to be possible.

밀링가공시의 채터현상 연구 (A study on the behaviors of chatter in milling operation)

  • 김영국;윤문철;하만경;심성보
    • 한국기계가공학회지
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    • 제1권1호
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    • pp.123-132
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    • 2002
  • In this study, the static and dynamic characteristics of endmilling process was modelled and the analytic realization of chatter mechanism was discussed. In this regard, We have discussed on the comparative assessment of recursive time series modeling algorithms that can represent the machining process and detect the abnormal machining behaviors in precision endmilling operation. In this study, simulation and experimental work were performed to show the malfunctional behaviors. For this purpose, new recursive least square method (RLSM) were adopted for the on-line system identification and monitoring of a machining process, we can apply these new algorithms in real process for detection of abnormal chatter. Also, The stability lobe of chatter was analysed by varying parameter of cutting dynamices in regenerative chatter mechanics.

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A STUDY OF PROCESS PARAMETER MONITORING AND INTELLIGENT QUALITY ESTIMATION DURING RESISTANCE SPOT WELDING

  • Kim, Taehyung;Yongjun Cho;Kim, Yongjae;Sehun Rhee
    • 대한용접접합학회:학술대회논문집
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    • 대한용접접합학회 2002년도 Proceedings of the International Welding/Joining Conference-Korea
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    • pp.330-335
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    • 2002
  • Resistance spot welding is one of the most widely used processes in sheet metal fabrication. Quality assurance of welding has been important to increase the productivity. In this study, weld quality estimation using primary circuit dynamic resistance applied to the in-process real-time systems. For quality estimation, factors relating to quality were extracted from the dynamic resistance, measured in the timer. The relationship between these factors and weld quality was determined through a artificial neural network model. This method has the advantage over the conventional one, such as obtaining the quality information without the use of extra devices.

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채터모델링과 진단법에 관한 연구 (A Study on the Modeling and Diagnostics on Chatter in Endmilling Operation)

  • 김영국;윤문철;하만경;심성보
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2001년도 춘계학술대회 논문집
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    • pp.971-974
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    • 2001
  • In this study, the static and dynamic characteristics of endmilling process was modelled and the analytic realization of chatter mechanism was discussed. In this regard, We have discussed on the comparative assessment of recursive time series modeling algorithms that can represent the machining process and detect the abnormal machining behaviors in precision endmilling operation. In this study, simulation and experimental work were performed to show the malfunctional behaviors. For this purpose, new recursive(RLSM) were adopted for the on-line system identification and monitoring of a machining process, we can apply these new algorithms in real process for detection of abnormal chatter. Also, the stability lobe of chatter was analysed by varying parameter of cutting dynamices in regenerative chatter mechanics.

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레이저용접부 온도측정을 위한 적외선 온도측정장치의 개발에 관한 연구 (II) - 적외선 온도측정에서 제인자의 영향 - (A Study of the Infrared Temperature Sensing System far Measuring Surface Temperature in Laser Welding(II) - Effect of the System Parameter on Infrared Temperature Measurement -)

  • 이목영;김재웅
    • Journal of Welding and Joining
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    • 제20권1호
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    • pp.69-75
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    • 2002
  • This study investigated the effect of the system parameters on penetration depth measurement using infrared temperature sensing system. The distance from focusing lens to detector was varied to diminish the error in measuring weld bead width. The effect of bead surface shape on measured surface temperature profile was evaluated using specimen heated by electric resistance. The measuring distance from laser beam was changed to optimize the measuring point. The results indicated that the monitoring device of surface temperature using infrared detector array was applicable to real time penetration depth control.

품질 기능 전개법과 위험 부담 관리법을 조합한 설계 최적화 기법의 용접 품질 감시 시스템 개발 응용 (Weld Quality Monitoring System Development Applying A design Optimization Approach Collaborating QFD and Risk Management Methods)

  • 손중수;박영원
    • 제어로봇시스템학회논문지
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    • 제6권2호
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    • pp.207-216
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    • 2000
  • This paper introduces an effective system design method to develop a customer oriented product using a design optimization process and to select a set of critical design paramenters,. The process results in the development of a successful product satisfying customer needs and reducing development risk. The proposed scheme adopted a five step QFD(Quality Function Deployment) in order to extract design parameters from customer needs and evaluated their priority using risk factors for extracted design parameters. In this process we determine critical design parameters and allocate them to subsystem designers. Subsequently design engineers develop and test the product based on these parameters. These design parameters capture the characteristics of customer needs in terms of performance cost and schedule in the process of QFD, The subsequent risk management task ensures the minimum risk approach in the presence of design parameter uncertainty. An application of this approach was demonstrated in the development of weld quality monitoring system. Dominant design parameters affect linearity characteristics of weld defect feature vectors. Therefore it simplifies the algorithm for adopting pattern classification of feature vectors and improves the accuracy of recognition rate of weld defect and the real time response of the defect detection in the performance. Additionally the development cost decreases by using DSP board for low speed because of reducing CPU's load adopting algorithm in classifying weld defects. It also reduces the cost by using the single sensor to measure weld defects. Furthermore the synergy effect derived from the critical design parameters improves the detection rate of weld defects by 15% when compared with the implementation using the non-critical design parameters. It also result in 30% saving in development cost./ The overall results are close to 95% customer level showing the effectiveness of the proposed development approach.

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2채널 뇌기능 감시 시스템을 위한 뇌파 소프트웨어의 개발 (Development of an EEG Software for Two-Channel Cerebral Function Monitoring System)

  • 김동준;유선국;김선호
    • 대한의용생체공학회:의공학회지
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    • 제20권1호
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    • pp.81-90
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    • 1999
  • 본 연구에서는 수술이나 환자 모니터링시 무의식 상태 환자의 뇌혈류량에 대한 정확한 모니터링으로 뇌허혈 현상을 방지하기 위하여 2채널 양극성 아날로그 EEG를 디지털로 처리하여 다양한 뇌파 관련 파라미터를 추출하여 실시간으로 한 화면에 디스플레이하고, 또한 임상의사들이 사용하기 편리한 뇌파 감시 소프트웨어를 개발하고자 하였다. 이를 위하여 EEG-데이터를 FFT 연산 후 CSA 및 DSA의 형태로 표현하며, 기타 다양한 뇌파관련 파라미터를 추출한 후 한 화면에서 실시간으로 디스플레이하고, 사용 편리성도 극대화하도록 프로그램하였다. 프로그램은 개발 도중에 여러 번의 동물실험 및 임상실험을 통하여 개선 보완되었으며, EEG, CSA, DSA 및 알파비, 퍼센트 델타 스펙트럼 모서리 주파수, 전체 파워, 전체 파워의 차 등의 주요 뇌파 파라미터들을 한 화면에서 관찰하게 되어 환자 상태의 종합적인 간찰이 가능하며, 나중에 저장된 EEG 파일을 재검토할 수 있다. 또한 CSA, DSA, 스펙트럼 모서리 주파수 및 전체 파워는 원하는 부분에서 표본을 취해 화면 위쪽에 최대 3개까지 붙여 놓고 동시에 비교할 수 있으므로 환자 상태의 객관적인 비교가 가능하고, 환자상태, 응급처치 등에 대한 기록사항을 입력할 수 있어서 저장된 EEG 파일의 검토시 이들 event로 즉시 찾아가는 기능이 있으며, 그 외에도 앞 뒤 점프 이동 기능, 이득 조절 기능, 윈도우 환경에서의 파일관리 기능 등을 갖추고 있고, 프로그램이 윈도우 환경에서 개발되어 마우스에 의해 대부분의 동작이 이루어진다. 개발된 프로그램을 이용한 대학병원의 임상실험결과, 환자상태의 변화에 매우 민감하게 반응하고, 또한 임상의사들이 이용하기에도 매우 편리하다는 평가를 받았다.

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적응 횡단선 필터의 등화기에서 수렴속도 개선 (The Impovement of Convergence Speed in Real Time Vital Sign Information Management System in Patient Monitoring Systems)

  • 임세정;김광준
    • 한국정보전자통신기술학회논문지
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    • 제6권2호
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    • pp.88-94
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    • 2013
  • 본 논문은 LMS 알고리즘의 수렴 속도를 향상시키기 위한 효율적인 신호간섭 제어기법을 제안한다. 수신 데이터를 재활용하여 심볼 시간 주기에 계수들을 곱함으로써 적응되는 제안된 알고리즘의 수렴특성이 수렴 속도의 향상을 이론적으로 증명하기 위해 분석한다. 스텝-크기 매개변수 ${\mu}$가 증가 됨에 따라 알고리즘의 수렴 속도가 제어된다. 고유치 확산을 증가시킴에 따라 적응 등화기의 수렴속 도를 천천히 제어하고 평균 자승 에러의 안정-상태 값을 증가시키는 효과를 나타내며 데이터-재사 용 LMS 기술이 수렴속도를 (B+1)배만큼 증가시켜 적응 등화기에서 신호간섭제어의 우수성을 입증 한다.

엔드밀 가공시 채터 모델링과 진단에 관한 연구 (A Study on the Modeling and Diagnostics on Chatter in Endmilling Operation)

  • 김영국;윤문철;하만경;심성보
    • 한국정밀공학회지
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    • 제18권10호
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    • pp.101-108
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    • 2001
  • In this study, the static and dynamic characteristics of endmilling process were modelled and the analytic realization of chatter mechanism was discussed. In this reward, We have discussed on the comparative assessment of recursive time series modeling algorithms that cal represent time machining process and detect the abnormal machining behaviors in precision endmilling operation. In this study, simulation and experimental works were performed to show the malfunctional behaviors. For this purpose, new recursive algorithm(RLSM) was adopted for the oil-line system identification and monitoring of a machining process, we can apply these new algorithms in real process for detection of abnormal chatter. Also, The stability lobe of chatter was analysed by varying parameter of cutting dynamics in regenerative chatter mechanics.

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Power peaking factor prediction using ANFIS method

  • Ali, Nur Syazwani Mohd;Hamzah, Khaidzir;Idris, Faridah;Basri, Nor Afifah;Sarkawi, Muhammad Syahir;Sazali, Muhammad Arif;Rabir, Hairie;Minhat, Mohamad Sabri;Zainal, Jasman
    • Nuclear Engineering and Technology
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    • 제54권2호
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    • pp.608-616
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    • 2022
  • Power peaking factors (PPF) is an important parameter for safe and efficient reactor operation. There are several methods to calculate the PPF at TRIGA research reactors such as MCNP and TRIGLAV codes. However, these methods are time-consuming and required high specifications of a computer system. To overcome these limitations, artificial intelligence was introduced for parameter prediction. Previous studies applied the neural network method to predict the PPF, but the publications using the ANFIS method are not well developed yet. In this paper, the prediction of PPF using the ANFIS was conducted. Two input variables, control rod position, and neutron flux were collected while the PPF was calculated using TRIGLAV code as the data output. These input-output datasets were used for ANFIS model generation, training, and testing. In this study, four ANFIS model with two types of input space partitioning methods shows good predictive performances with R2 values in the range of 96%-97%, reveals the strong relationship between the predicted and actual PPF values. The RMSE calculated also near zero. From this statistical analysis, it is proven that the ANFIS could predict the PPF accurately and can be used as an alternative method to develop a real-time monitoring system at TRIGA research reactors.