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화학 공정의 설비 배치와 방폭벽 설치를 고려한 최적화 연구

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Abstract
In most plant layout optimization researches, MILP(Mixed Integer Linear Programming) problems, in which the objective function includes the costs of pipelines connecting process equipment and cost associated with safety issues, have been employed. Based on these MILP problems, various optimization solvers have been applied to investigate the optimal solutions. To consider safety issues on the objective function of MILP problems together, the accurate information about the impact and the frequency of potential accidents in a plant should be required to evaluate the safety issues.

However, it is really impossible to obtain accurate information about potential accidents and this limitation may reduce the reliability of a plant layout problem. Moreover, in real industries such as plant engineering companies, the plant layout is previously fixed and the considerations of various safety instruments and systems have been performed to guarantee the plant safety. To reflect these situations, the two step optimization problems have been designed in this study.

The first MILP model aims to minimize the costs of pipelines and the land size as complying sufficient spaces for the maintenance and safety. After the plant layout is determined by the first MILP model, the optimal locations of blast walls have been investigated to maximize the mitigation impacts of blast walls. The particle swarm optimization technique, which is one of the representative sampling approaches, is employed throughout the consideration of the characteristics of MILP models in this study. The ethylene oxide plant is tested to verify the efficacy of the proposed model.
Author(s)
차상훈
Issued Date
2020
Awarded Date
2020. 2
Type
Dissertation
Publisher
부경대학교
URI
https://repository.pknu.ac.kr:8443/handle/2021.oak/23994
http://pknu.dcollection.net/common/orgView/200000295034
Affiliation
부경대학교 대학원
Department
대학원 안전공학과
Advisor
이창준
Table Of Contents
1.서 론 1
1.1.연구 배경 1
1.2.기존의 연구 3
1.3.연구 목적 5
1.4.연구 방법 8
2.수학적 모델링을 통한 최적화 배치 9
2.1.최적화 배치 9
2.2.최적화 문제 정의 10
2.3.최적화 배치를 위한 모델링 11
2.3.1.설비의 길이 및 방향 제약조건 11
2.3.2.이격거리와 유지·보수 공간을 고려한 제약조건 12
2.3.3.설비 간 중첩 방지 제약조건 14
2.3.4.플랜트 부지 내 배치를 고려한 제약조건 15
2.3.5.설비 간 연결되는 파이프의 길이 17
2.3.6.목적함수 18
2.3.7.벌칙함수 19
3.TNT 모델을 이용한 방폭벽 배치 21
3.1.VCE에 의한 과압 21
3.2.TNT 상당량 계산법 24
3.2.1.TNT 상당량 변환 24
3.2.2.환산거리(Scaled distance)를 이용한 과압 계산 25
3.3.방폭벽 배치 최적화를 위한 모델링 26
3.3.1.폭발효율 26
3.3.2.방폭벽에 의한 피해 감소 효과 27
3.3.3.방폭벽 설치 여부를 고려한 과압 계산 29
3.3.4.과압으로 인한 설비 손실 계산 31
3.3.5.방폭벽 배치 최적화에 관한 제약조건과 벌칙함수 32
3.3.6.방폭벽 배치 최적화에 관한 목적함수 33
4.PSO(Particle Swarm Optimization) 34
4.1.PSO 기법 34
4.2.PSO 기법의 절차 36
5.사례 연구 39
5.1.Ethylene Oxide 39
5.2.Ethylene Oxide 공정 40
5.3.조건을 이용한 배치 최적화 결과 45
5.4.TNT 모델을 이용한 방폭벽의 최적 위치 탐색 결과 48
6.결 론 56
참고문헌 58
Degree
Master
Appears in Collections:
산업대학원 > 안전공학과
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