• 제목/요약/키워드: Burn Model

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Burn-in Models: Recent Issues, Developments and Future Topics

  • Cha, Ji-Hwan
    • Communications for Statistical Applications and Methods
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    • 제16권5호
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    • pp.871-880
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    • 2009
  • Recently, there has been much development on burn-in models in reliability area. Especially, the previous burn-in models have been extended to more general cases. For example, (i) burn-in procedures for repairable systems have been developed (ii) an extended assumption on the failure rate of the system has been proposed and (iii) a stochastic model for burn-in procedure in accelerated environment has been developed. In this paper, recent extensions and advances in burn-in models are introduced and some issues to be considered in the future study are discussed.

Computer용 Monitor 완제품의 Burn-in 최적화에 관한 연구 (A Study on the Burn-in Optimization of Computer Monitor)

  • 박종만
    • 품질경영학회지
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    • 제23권4호
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    • pp.148-156
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    • 1995
  • 많은 Buyer들이 품질의 기본조건으로 요구하는 완제품 Burn-in 시간은 실제 필요 이상으로 긴 시간일 수 있으며 생산자 입장에서 Cost, Delivery, Capacity 등의 제약으로 이행하기 어려운 경우가 종종 있다. 본 연구는 생산자에게 실무적으로 적용이 용이하고 Buyer에게 설득력있는 최적 Burn-in 시간 근거를 제시할 수 있도록, 구간개념과 Curve Fitting 방법을 적용하여 최적 Burn-in 시간을 추정하고 시간대별 Reliability를 산출 비교해 봄으로서 생산자 입장에서 Burn-in 시간을 결정하고 Reliability 추정 Model을 결정해 갈 수 있도록 하였다. 향후 제시된 Burn-in 시간의 최적여부는 Field Data로부터 검증되어야 할 것이다.

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화상환자에서 사망예측모델의 성능 평가에 관한 연구 (The Accuracy of Prediction Models in Burn Patients)

  • 우재연;김도헌
    • 대한화상학회지
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    • 제24권1호
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    • pp.1-6
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    • 2021
  • Purpose: The purpose of this study was to evaluate the accuracy of four prediction models in adult burn patients. Methods: This retrospective study was conducted on 696 adult burn patients who were treated at burn intensive care unit (BICU) of Hallym University Hangang Sacred Heart Hospital from January 2017 to December 2019. The models are ABSI, APACHE IV, rBaux and Hangang score. Results: The discrimination of each prediction model was analyzed as AUC of ROC curve. AUC value was the highest with Hangang score of 0.931 (0.908~0.954), followed by rBaux 0.896 (0.867~0.924), ABSI 0.883 (0.853~0.913) and APACHE IV 0.851 (0.818~0.884). Conclusion: The results of evaluating the accuracy of the four models, Hangang score showed the highest prediction. But it is necessary to apply the appropriate prediction model according to characteristics of the burn center.

비광화학적인 홀의 생성에 대한 속도론적 모델 : 유사 3-준위계 (A Kinetic Model of the Nonphotochemical Hole Burning : 3-Level System)

  • 이인자
    • 대한화학회지
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    • 제39권10호
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    • pp.763-768
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    • 1995
  • Weak burn intensity limit에서 홀의 깊이를 계산하는 기존의 이론을 임의의 burn 세기에서도 계산할수 있도록 NPHB kinetic에 관한 유사 3-준위계를 이용하여 확장하였다, 이 모델은 같은 burn fluence에 대하여 burn 세기가 클 때는 다른 홀의 깊이를 burn 세기가 약한 경우에는 같은 홀의 깊이를 나타내었다. 이 모델을 이용하여 계산된 홀 성장곡선들과 기존의 oxzaine720/glycerol와 tetracene/MTHF glass의 실험 데이타를 비교하였다.

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Optimal Burn-In under Warranty

  • Kim, Kuinam-J;Park, Chi-Yeon
    • 대한안전경영과학회지
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    • 제1권1호
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    • pp.135-143
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    • 1999
  • This paper discusses an optimal burn-in procedure to minimize total costs based on the assumption that the failure rate pattern follows a bimodal mixed Weibull distribution. The procedure will consider warranty period as a factor of the total expected bum-in cost. A cost model is formulated to find the optimal burn-in time that minimizes the expected burn-in cost. Conditional reliability for warranty period will be discussed. An illustrative example is included to show how to use the cost model in practice.

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Optimal Burn-In under Waranty

  • Kim, Kui-Nam;Lee, Kwang-Ho
    • Communications for Statistical Applications and Methods
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    • 제6권3호
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    • pp.719-728
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    • 1999
  • This paper discusses an optimal burn-in procedure to minimize total costs based on the assumption that the failure rate pattern follows a bimodal mixed Weibull distribution. The procedure will consider warranty period as a factor of the total expected burn-in cost. A cost model is formulated to find the optimal burn-in time that minimizes the expected burn-in cost. Conditional reliability for warranty period will be discussed. An illustrative example is included to show how to use the cost model in prctice.

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가미자운고(加味紫雲膏)가 mouse의 피부화상 치료에 대한 분자생물학적 효과 및 기전연구 (Effects of Gamijaungo on the burn mice model and the study of hematologic, pathologic and molecular mechanism)

  • 이종철;김경준
    • 한방안이비인후피부과학회지
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    • 제28권1호
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    • pp.53-67
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    • 2015
  • Objective: The aim of this study was to investigate the wound healing effect of herbal ointment, Gamijaungo, on the burn-induced model. Reports about Gamijaungo on the wound healing effect by local application in mice model or human study have published in the several domestic or internationally, but most are anecdotal and lack solid scientific evidence. Method: We observed the morphologic and histologic changes in the burn-induced mice model. we counted white blood cell and platelet changes. we confirmed VEGF, PI3K and pAkt protein expression by Western blot analysis. Result: In this study, we observed that Gamijaungo showed strong wound healing effects in the morphologic and histologic changes in the burn-induced mice model. Also we found that the significant changes of white blood cell and platelet changes by the treatment of Gamijaungo. In molecular mechanism, we got the strong positive effect by Gamijaungo treatment on angiogenesis, a key process in the formation of the granulation tissue during wound healing. Conclusion: These findings suggest the potential use of Gamijaungo as a therapeutic in thermal burn-induced skin injuries.

Optimal Burn-In for a Process with Weak Components

  • Kim, Kuinam J.;Boardman, Thomas J.
    • 품질경영학회지
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    • 제24권4호
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    • pp.70-89
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    • 1996
  • This paper discusses an optimal burn -in procedure to minimize total costs based on the assumption that some of the components are weak for stress and deteriorate faster than the main components. The procedure will define the costs of burn-in errors. An ideal burn-in consists of process in which all weak (substandard) components and no main (standard) components fail. In practice, the burn-in errors could occur for some reasons. For example, it is impossible to eliminate all weak components through burn-in, due to a nonzero proportion of defectives of the components. Probability model and cost function model are formulated to find the optimal burn-in time that minimizes the expected total cost. Several examples are included to show how to use the results.

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Modeling of Pore Coarsening in the Rim Region of High Burn-up UO2 Fuel

  • Xiao, Hongxing;Long, Chongsheng
    • Nuclear Engineering and Technology
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    • 제48권4호
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    • pp.1002-1008
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    • 2016
  • An understanding of the coarsening process of the large fission gas pores in the high burn-up structure (HBS) of irradiated $UO_2$ fuel is very necessary for analyzing the safety and reliability of fuel rods in a reactor. A numerical model for the description of pore coarsening in the HBS based on the Ostwald ripening mechanism, which has successfully explained the coarsening process of precipitates in solids is developed. In this model, the fission gas atoms are treated as the special precipitates in the irradiated $UO_2$ fuel matrix. The calculated results indicate that the significant pore coarsening and mean pore density decrease in the HBS occur upon surpassing a local burn-up of 100 GWd/tM. The capability of this model is successfully validated against irradiation experiments of $UO_2$ fuel, in which the average pore radius, pore density, and porosity are directly measured as functions of local burn-up. Comparisons with experimental data show that, when the local burn-up exceeds 100 GWd/tM, the calculated results agree well with the measured data.

비 직렬 시스템의 신뢰도 최적화를 위한 시스템 번인 (Optimal System Burn-in for Maximizing Reliability of Non-series Systems)

  • 김경미
    • 대한산업공학회지
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    • 제33권2호
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    • pp.273-281
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    • 2007
  • The decision of how long performing system burn-in must be answered with a probabilistic model of a system lifetime at which infant mortality failures created during assembly processes are quantified. In this paper, we propose such a model which is modified from previous results. Using the system model, we derived system reliability in terms of component and system burn-in times for the two cases of minimal repair at system failure and of component replacement and connection repair at their failure times. The procedure is illustrated with a bridge system and the optimal system burn-in times are obtained for maximizing system reliability. The result suggests that an assumption of minimal repair at system failure may underestimate the optimal burn-in time in practice.