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Multi-objective workflow scheduling in cloud system based on cooperative multi-swarm optimization algorithm 被引量:2
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作者 YAO Guang-shun DING Yong-sheng HAO Kuang-rong 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第5期1050-1062,共13页
In order to improve the performance of multi-objective workflow scheduling in cloud system, a multi-swarm multiobjective optimization algorithm(MSMOOA) is proposed to satisfy multiple conflicting objectives. Inspired ... In order to improve the performance of multi-objective workflow scheduling in cloud system, a multi-swarm multiobjective optimization algorithm(MSMOOA) is proposed to satisfy multiple conflicting objectives. Inspired by division of the same species into multiple swarms for different objectives and information sharing among these swarms in nature, each physical machine in the data center is considered a swarm and employs improved multi-objective particle swarm optimization to find out non-dominated solutions with one objective in MSMOOA. The particles in each swarm are divided into two classes and adopt different strategies to evolve cooperatively. One class of particles can communicate with several swarms simultaneously to promote the information sharing among swarms and the other class of particles can only exchange information with the particles located in the same swarm. Furthermore, in order to avoid the influence by the elastic available resources, a manager server is adopted in the cloud data center to collect the available resources for scheduling. The quality of the proposed method with other related approaches is evaluated by using hybrid and parallel workflow applications. The experiment results highlight the better performance of the MSMOOA than that of compared algorithms. 展开更多
关键词 multi-objective WORKFLOW scheduling multi-swarm OPTIMIZATION particle SWARM OPTIMIZATION (PSO) CLOUD computing system
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An improved multi-objective optimization algorithm for solving flexible job shop scheduling problem with variable batches 被引量:3
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作者 WU Xiuli PENG Junjian +2 位作者 XIE Zirun ZHAO Ning WU Shaomin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第2期272-285,共14页
In order to solve the flexible job shop scheduling problem with variable batches,we propose an improved multiobjective optimization algorithm,which combines the idea of inverse scheduling.First,a flexible job shop pro... In order to solve the flexible job shop scheduling problem with variable batches,we propose an improved multiobjective optimization algorithm,which combines the idea of inverse scheduling.First,a flexible job shop problem with the variable batches scheduling model is formulated.Second,we propose a batch optimization algorithm with inverse scheduling in which the batch size is adjusted by the dynamic feedback batch adjusting method.Moreover,in order to increase the diversity of the population,two methods are developed.One is the threshold to control the neighborhood updating,and the other is the dynamic clustering algorithm to update the population.Finally,a group of experiments are carried out.The results show that the improved multi-objective optimization algorithm can ensure the diversity of Pareto solutions effectively,and has effective performance in solving the flexible job shop scheduling problem with variable batches. 展开更多
关键词 flexible job shop variable batch inverse scheduling multi-objective evolutionary algorithm based on decomposition a batch optimization algorithm with inverse scheduling
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Multi-objective optimization for draft scheduling of hot strip mill 被引量:2
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作者 李维刚 刘相华 郭朝晖 《Journal of Central South University》 SCIE EI CAS 2012年第11期3069-3078,共10页
A multi-objective optimization model for draft scheduling of hot strip mill was presented, rolling power minimizing, rolling force ratio distribution and good strip shape as the objective functions. A multi-objective ... A multi-objective optimization model for draft scheduling of hot strip mill was presented, rolling power minimizing, rolling force ratio distribution and good strip shape as the objective functions. A multi-objective differential evolution algorithm based on decomposition (MODE/D). The two-objective and three-objective optimization experiments were performed respectively to demonstrate the optimal solutions of trade-off. The simulation results show that MODE/D can obtain a good Pareto-optimal front, which suggests a series of alternative solutions to draft scheduling. The extreme Pareto solutions are found feasible and the centres of the Pareto fronts give a good compromise. The conflict exists between each two ones of three objectives. The final optimal solution is selected from the Pareto-optimal front by the importance of objectives, and it can achieve a better performance in all objective dimensions than the empirical solutions. Finally, the practical application cases confirm the feasibility of the multi-objective approach, and the optimal solutions can gain a better rolling stability than the empirical solutions, and strip flatness decreases from (0± 63) IU to (0±45) IU in industrial production. 展开更多
关键词 hot strip mill draft scheduling multi-objective optimization multi-objective differential evolution algorithm based ondecomposition (MODE/D) Pareto-optimal front
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Multi-objective reconfigurable production line scheduling for smart home appliances 被引量:2
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作者 LI Shiyun ZHONG Sheng +4 位作者 PEI Zhi YI Wenchao CHEN Yong WANG Cheng ZHANG Wenzhu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第2期297-317,共21页
In a typical discrete manufacturing process,a new type of reconfigurable production line is introduced,which aims to help small-and mid-size enterprises to improve machine utilization and reduce production cost.In ord... In a typical discrete manufacturing process,a new type of reconfigurable production line is introduced,which aims to help small-and mid-size enterprises to improve machine utilization and reduce production cost.In order to effectively handle the production scheduling problem for the manufacturing system,an improved multi-objective particle swarm optimization algorithm based on Brownian motion(MOPSO-BM)is proposed.Since the existing MOPSO algorithms are easily stuck in the local optimum,the global search ability of the proposed method is enhanced based on the random motion mechanism of the BM.To further strengthen the global search capacity,a strategy of fitting the inertia weight with the piecewise Gaussian cumulative distribution function(GCDF)is included,which helps to maintain an excellent convergence rate of the algorithm.Based on the commonly used indicators generational distance(GD)and hypervolume(HV),we compare the MOPSO-BM with several other latest algorithms on the benchmark functions,and it shows a better overall performance.Furthermore,for a real reconfigurable production line of smart home appliances,three algorithms,namely non-dominated sorting genetic algorithm-II(NSGA-II),decomposition-based MOPSO(dMOPSO)and MOPSO-BM,are applied to tackle the scheduling problem.It is demonstrated that MOPSO-BM outperforms the others in terms of convergence rate and quality of solutions. 展开更多
关键词 reconfigurable production line improved particle swarm optimization(PSO) multi-objective optimization flexible flowshop scheduling smart home appliances
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An integer multi-objective optimization model and an enhanced non-dominated sorting genetic algorithm for contraflow scheduling problem
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作者 李沛恒 楼颖燕 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2399-2405,共7页
To determine the onset and duration of contraflow evacuation, a multi-objective optimization(MOO) model is proposed to explicitly consider both the total system evacuation time and the operation cost. A solution algor... To determine the onset and duration of contraflow evacuation, a multi-objective optimization(MOO) model is proposed to explicitly consider both the total system evacuation time and the operation cost. A solution algorithm that enhances the popular evolutionary algorithm NSGA-II is proposed to solve the model. The algorithm incorporates preliminary results as prior information and includes a meta-model as an alternative to evaluation by simulation. Numerical analysis of a case study suggests that the proposed formulation and solution algorithm are valid, and the enhanced NSGA-II outperforms the original algorithm in both convergence to the true Pareto-optimal set and solution diversity. 展开更多
关键词 hurricane evacuation contraflow scheduling multi-objective optimization NSGA-II
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Coordinated scheduling model for intermodal transit hubs based on GI/M^K/1 queuing system
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作者 贾洪飞 曹雄赳 杨丽丽 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第8期3247-3256,共10页
Coordinated scheduling of multimode plays a pivotal role in the rapid gathering and dissipating of passengers in transport hubs. Based on the survey data, the whole-day reaching time distribution at transfer points of... Coordinated scheduling of multimode plays a pivotal role in the rapid gathering and dissipating of passengers in transport hubs. Based on the survey data, the whole-day reaching time distribution at transfer points of passengers from the dominant mode to the connecting mode was achieved. A GI/M K/1 bulk service queuing system was constituted by putting the passengers' reaching time distribution as the input and the connecting mode as the service institution. Through queuing theory, the relationship between average queuing length under steady-state and headway of the connecting mode was achieved. By putting the minimum total cost of system as optimization objective, the headway as decision variable, a coordinated scheduling model of multimode in intermodal transit hubs was established. At last, a dynamic scheduling strategy was generated to cope with the unexpected changes of the dominant mode. The instance analysis indicates that this model can significantly reduce passengers' queuing time by approximately 17% with no apparently increase in departure frequency, which provides a useful solution for the coordinated scheduling of different transport modes in hubs. 展开更多
关键词 traffic engineering coordinated scheduling queuing theory intermodal transit hub HEADWAY
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Multi-objective optimization of rolling schedule based on cost function for tandem cold mill 被引量:4
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作者 陈树宗 张欣 +3 位作者 彭良贵 张殿华 孙杰 刘印忠 《Journal of Central South University》 SCIE EI CAS 2014年第5期1733-1740,共8页
In terms of tandem cold mill productivity and product quality, a multi-objective optimization model of rolling schedule based on cost fimction was proposed to determine the stand reductions, inter-stand tensions and r... In terms of tandem cold mill productivity and product quality, a multi-objective optimization model of rolling schedule based on cost fimction was proposed to determine the stand reductions, inter-stand tensions and rolling speeds for a specified product. The proposed schedule optimization model consists of several single cost fi.mctions, which take rolling force, motor power, inter-stand tension and stand reduction into consideration. The cost function, which can evaluate how far the rolling parameters are from the ideal values, was minimized using the Nelder-Mead simplex method. The proposed rolling schedule optimization method has been applied successfully to the 5-stand tandem cold mill in Tangsteel, and the results from a case study show that the proposed method is superior to those based on empirical formulae. 展开更多
关键词 tandem cold mill multi-object optimization rolling schedule cost function simplex algorithm
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Coordinate scheduling approach for EDS observation tasks and data transmission jobs 被引量:9
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作者 Hao Chen Jiangjiang Wu +2 位作者 Wenyuan Shi Jun Li Zhinong Zhong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第4期822-835,共14页
Electromagnetic detection satellite(EDS) is a type of Earth observation satellite(EOS). Satellites observation and data down-link scheduling plays a significant role in improving the efficiency of satellite observ... Electromagnetic detection satellite(EDS) is a type of Earth observation satellite(EOS). Satellites observation and data down-link scheduling plays a significant role in improving the efficiency of satellite observation systems. However, the current works mainly focus on the scheduling of imaging satellites, little work focuses on the scheduling of EDSes for its specific requirements.And current works mainly schedule satellite resources and data down-link resources separately, not considering them in a globally optimal perspective. The EDSes and data down-link resources are scheduled in an integrated process and the scheduling result is searched globally. Considering the specific constraints of EDS, a coordinate scheduling model for EDS observation tasks and data transmission jobs is established and an algorithm based on the genetic algorithm is proposed. Furthermore, the convergence of our algorithm is proved. To deal with some specific constraints, a solution repairing algorithm of polynomial computing time is designed. Finally, some experiments are conducted to validate the correctness and practicability of our scheduling algorithms. 展开更多
关键词 electromagnetic detection satellites scheduling satellites and ground stations coordinate scheduling constraint handling solution repairing method genetic algorithm
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A Decomposition and Coordination Scheduling Method for Flow-shop Problem Based on TOC 被引量:7
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作者 张宏远 席裕庚 谷寒雨 《自动化学报》 EI CSCD 北大核心 2005年第2期182-187,共6页
There are many flow shop problems of throughput (denoted by FSPT) with constraints of due date in real production planning and scheduling. In this paper, a decomposition and coordination algorithm is proposed based on... There are many flow shop problems of throughput (denoted by FSPT) with constraints of due date in real production planning and scheduling. In this paper, a decomposition and coordination algorithm is proposed based on the analysis of FSPT and under the support of TOC (theory of constraint). A flow shop is at first decomposed into two subsystems named PULL and PUSH by means of bottleneck. Then the subsystem is decomposed into single machine scheduling problems,so the original NP-HARD problem can be transferred into a serial of single machine optimization problems finally. This method reduces the computational complexity, and has been used in a real project successfully. 展开更多
关键词 约束理论 Flow-shop分解协调算法 TOC 瓶颈
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Reactive scheduling of multiple EOSs under cloud uncertainties:model and algorithms 被引量:4
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作者 WANG Jianjiang HU Xuejun HE Chuan 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第1期163-177,共15页
Most earth observation satellites(EOSs)are low-orbit satellites equipped with optical sensors that cannot see through clouds.Hence,cloud coverage,high dynamics,and cloud uncertainties are important issues in the sched... Most earth observation satellites(EOSs)are low-orbit satellites equipped with optical sensors that cannot see through clouds.Hence,cloud coverage,high dynamics,and cloud uncertainties are important issues in the scheduling of EOSs.The proactive-reactive scheduling framework has been proven to be effective and efficient for the uncertain scheduling problem and has been extensively employed.Numerous studies have been conducted on methods for the proactive scheduling of EOSs,including expectation,chance-constrained,and robust optimization models and the relevant solution algorithms.This study focuses on the reactive scheduling of EOSs under cloud uncertainties.First,using an example,we describe the reactive scheduling problem in detail,clarifying its significance and key issues.Considering the two key objectives of observation profits and scheduling stability,we construct a multi-objective optimization mathematical model.Then,we obtain the possible disruptions of EOS scheduling during execution under cloud uncertainties,adopting an event-driven policy for the reactive scheduling.For the different disruptions,different reactive scheduling algorithms are designed.Finally,numerous simulation experiments are conducted to verify the feasibility and effectiveness of the proposed reactive scheduling algorithms.The experimental results show that the reactive scheduling algorithms can both improve observation profits and reduce system perturbations. 展开更多
关键词 earth observation satellite(EOS) uncertainty of clouds reactive scheduling multi-objective optimization EVENT-DRIVEN HEURISTIC
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A hybrid discrete particle swarm optimization-genetic algorithm for multi-task scheduling problem in service oriented manufacturing systems 被引量:4
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作者 武善玉 张平 +2 位作者 李方 古锋 潘毅 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第2期421-429,共9页
To cope with the task scheduling problem under multi-task and transportation consideration in large-scale service oriented manufacturing systems(SOMS), a service allocation optimization mathematical model was establis... To cope with the task scheduling problem under multi-task and transportation consideration in large-scale service oriented manufacturing systems(SOMS), a service allocation optimization mathematical model was established, and then a hybrid discrete particle swarm optimization-genetic algorithm(HDPSOGA) was proposed. In SOMS, each resource involved in the whole life cycle of a product, whether it is provided by a piece of software or a hardware device, is encapsulated into a service. So, the transportation during production of a task should be taken into account because the hard-services selected are possibly provided by various providers in different areas. In the service allocation optimization mathematical model, multi-task and transportation were considered simultaneously. In the proposed HDPSOGA algorithm, integer coding method was applied to establish the mapping between the particle location matrix and the service allocation scheme. The position updating process was performed according to the cognition part, the social part, and the previous velocity and position while introducing the crossover and mutation idea of genetic algorithm to fit the discrete space. Finally, related simulation experiments were carried out to compare with other two previous algorithms. The results indicate the effectiveness and efficiency of the proposed hybrid algorithm. 展开更多
关键词 service-oriented architecture (SOA) cyber physical systems (CPS) multi-task scheduling service allocation multi-objective optimization particle swarm algorithm
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Real-time online rescheduling for multiple agile satellites with emergent tasks 被引量:3
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作者 WEN Jun LIU Xiaolu HE Lei 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第6期1407-1420,共14页
The emergent task is a kind of uncertain event that satellite systems often encounter in the application process.In this paper,the multi-satellite distributed coordinating and scheduling problem considering emergent t... The emergent task is a kind of uncertain event that satellite systems often encounter in the application process.In this paper,the multi-satellite distributed coordinating and scheduling problem considering emergent tasks is studied.Due to the limitation of onboard computational resources and time,common online onboard rescheduling methods for such problems usually adopt simple greedy methods,sacrificing the solution quality to deliver timely solutions.To better solve the problem,a new multi-satellite onboard scheduling and coordinating framework based on multi-solution integration is proposed.This method uses high computational power on the ground and generates multiple solutions,changing the complex onboard rescheduling problem to a solution selection problem.With this method,it is possible that little time is used to generate a solution that is as good as the solutions on the ground.We further propose several multi-satellite coordination methods based on the multi-agent Markov decision process(MMDP)and mixed-integer programming(MIP).These methods enable the satellite to make independent decisions and produce high-quality solutions.Compared with the traditional centralized scheduling method,the proposed distributed method reduces the cost of satellite communication and increases the response speed for emergent tasks.Extensive experiments show that the proposed multi-solution integration framework and the distributed coordinating strategies are efficient and effective for onboard scheduling considering emergent tasks. 展开更多
关键词 agile satellite scheduling emergent task onboard rescheduling distributed coordinating multi-solution integration
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多智能体协同研究进展综述:博弈和控制交叉视角 被引量:4
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作者 秦家虎 马麒超 +4 位作者 李曼 张聪 付维明 刘轻尘 郑卫新 《自动化学报》 北大核心 2025年第3期489-509,共21页
多智能体协同应用广泛,并被列为新一代人工智能(Artificial intelligence,AI)基础理论亟待突破的重要内容之一,对其开展研究具有鲜明的科学价值和工程意义.随着人工智能技术的进步,传统的单一控制视角下的多智能体协同已无法满足执行大... 多智能体协同应用广泛,并被列为新一代人工智能(Artificial intelligence,AI)基础理论亟待突破的重要内容之一,对其开展研究具有鲜明的科学价值和工程意义.随着人工智能技术的进步,传统的单一控制视角下的多智能体协同已无法满足执行大规模复杂任务的需求,融合博弈与控制的多智能体协同应运而生.在这一框架下,多智能体协同具有更高的灵活性、适应性和扩展性,为多智能体系统的发展带来更多可能性.鉴于此,首先从协同角度入手,回顾多智能体协同控制与估计领域的进展.接着,围绕博弈与控制的融合,介绍博弈框架的基本概念,重点讨论在微分博弈下多智能体协同问题的建模与分析,并简要总结如何应用强化学习算法求解博弈均衡.选取多机器人导航和电动汽车充电调度这两个典型的多智能体协同场景,介绍博弈与控制融合的思想如何用于解决相关领域的难点问题.最后,对博弈与控制融合框架下的多智能体协同进行总结和展望. 展开更多
关键词 多智能体系统 协同控制 博弈优化 多移动机器人导航 电动汽车充电调度
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基于机会约束目标规划的电热联合系统协调调度研究 被引量:1
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作者 李志伟 胡文昊 +3 位作者 董沛毅 周靖仁 丛志涵 赵书强 《华北电力大学学报(自然科学版)》 北大核心 2025年第2期41-50,共10页
在可再生能源大规模接入电力系统的背景下,为提高系统风电消纳能力,首先分析热电联产机组的电热运行特性,将热电联产机组侧加装储热装置和电锅炉进行电热解耦,扩大热电联产机组运行可行域的范围。其次,考虑风电不确定性出力和负荷不确... 在可再生能源大规模接入电力系统的背景下,为提高系统风电消纳能力,首先分析热电联产机组的电热运行特性,将热电联产机组侧加装储热装置和电锅炉进行电热解耦,扩大热电联产机组运行可行域的范围。其次,考虑风电不确定性出力和负荷不确定性需求,建立基于机会约束的电热联合优化调度模型,设置系统运行的正负备用容量约束为机会约束。借助目标规划对多目标模型进行转化求解,建立基于机会约束目标规划的电热联合系统协调调度模型。最后,利用算例对模型的有效性进行验证,对储热装置以及电锅炉在消纳风电中的作用进行分析。 展开更多
关键词 电热协调调度 机会约束规划 机会约束目标规划 储热
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考虑网络重构的配电网-多微电网协同运行方法 被引量:1
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作者 刘洪 鲍明阳 +3 位作者 路劭涵 段青 申屠磊璇 黄远平 《电力自动化设备》 北大核心 2025年第8期114-121,共8页
配微协同运行有利于提高电网的整体运行效率和经济性,然而配电网重构会影响潮流分布和微电网点对点交易。为此,提出一种考虑网络重构的配电网-多微电网协同运行方法。分析网络重构对配微协同的影响,建立考虑网络重构的配微协同主从博弈... 配微协同运行有利于提高电网的整体运行效率和经济性,然而配电网重构会影响潮流分布和微电网点对点交易。为此,提出一种考虑网络重构的配电网-多微电网协同运行方法。分析网络重构对配微协同的影响,建立考虑网络重构的配微协同主从博弈框架和模型,配电网作为领导者,通过电价和过网费调节微电网的交易行为;提出一种适用于网络重构的过网费分布式计算模型,将其融入协同优化模型中;针对领导者同时具有连续和离散2类策略的特点,提出一种策略分离的分布式求解方法。在改进的IEEE 33节点系统算例中验证了所提模型和方法的有效性。 展开更多
关键词 配微协同 日前调度 STACKELBERG博弈 网络重构 过网费 配电网 微电网
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含天然气压力能利用的园区综合能源系统优化调度
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作者 李红伟 陈位发 +2 位作者 杨杨 万崇山 刘玲园 《郑州大学学报(工学版)》 北大核心 2025年第4期137-144,共8页
为了有效利用天然气传输调压过程中的压力能,给出了一种基于综合利用压力能发电和冷能参与的综合能源系统方案。首先,考虑天然气压力能存在发电与制冷两种利用形式,建立了含天然气压力能利用的电-热-气-冷综合能源系统模型;其次,建立了... 为了有效利用天然气传输调压过程中的压力能,给出了一种基于综合利用压力能发电和冷能参与的综合能源系统方案。首先,考虑天然气压力能存在发电与制冷两种利用形式,建立了含天然气压力能利用的电-热-气-冷综合能源系统模型;其次,建立了以系统日运行成本费用最小为目标函数的经济优化调度模型,包含购电成本、购气成本和设备运维成本等;最后,基于MATLAB平台,调用CPLEX求解器对该混合整数非线性优化模型进行求解。结合某实际工业园区的运行数据,验证了所提模型的经济性与有效性。结果表明:与不引入天然气压力能利用相比,所提模型可降低74.9%的系统运行成本,具有良好的经济效益。 展开更多
关键词 天然气压力能 综合能源系统 发电 制冷 经济优化 协调调度
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计及V2G主动支撑的输配协同日前-实时优化调度
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作者 姜涛 吴成昊 +2 位作者 李雪 张儒峰 付麟博 《电力系统自动化》 北大核心 2025年第10期87-100,共14页
新能源发电与电动汽车的广泛应用使电力系统运行更加复杂,输电网面临功率平衡挑战,亟须挖掘各类资源的有功、无功支撑潜力。考虑到主动配电网对电动汽车等分布式资源的聚合作用,提出了一种计及车网互动(V2G)主动支撑的输配协同日前-实... 新能源发电与电动汽车的广泛应用使电力系统运行更加复杂,输电网面临功率平衡挑战,亟须挖掘各类资源的有功、无功支撑潜力。考虑到主动配电网对电动汽车等分布式资源的聚合作用,提出了一种计及车网互动(V2G)主动支撑的输配协同日前-实时优化调度方法。首先,考虑能量市场、灵活性市场和无功辅助服务市场机制,构建市场环境下电动汽车V2G响应模型,分析电动汽车有功、无功支撑潜力;然后,计及不同利益主体的信息隐私,构建输配协同日前-实时分布式优化调度模型,通过协调各类有功、无功调节资源来满足系统功率供需平衡要求;最后,在测试系统中对所提优化调度方法进行分析验证。结果表明,所提方法可实现分布式可调控资源的优化调度,提高系统运行经济性和灵活性。 展开更多
关键词 车网互动 电动汽车 输配协同 聚合 能量市场 灵活性市场 无功辅助服务 实时优化调度 分布式资源
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基于信息间隙决策理论的多重不确定性滚动优化调度
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作者 张明光 高燕霞 +1 位作者 张飞祥 王海滨 《兰州理工大学学报》 北大核心 2025年第1期72-82,共11页
针对区域综合能源系统(RIES)运行中存在的不确定性问题,借助滚动优化调度方法,结合信息间隙决策理论(IGDT),将其转化为运行经济性,从而构建了RIES双层鲁棒优化调度模型.模型上层求解系统不确定度;下层通过模型收益基准值,将不确定性量化... 针对区域综合能源系统(RIES)运行中存在的不确定性问题,借助滚动优化调度方法,结合信息间隙决策理论(IGDT),将其转化为运行经济性,从而构建了RIES双层鲁棒优化调度模型.模型上层求解系统不确定度;下层通过模型收益基准值,将不确定性量化,确保模型运行收益不低于期望值,实现调度动态化.通过调整模型的水平因子,得到不同的调度方案,从而获得不同的调度收益期望值.决策者可根据对风险的规避程度,选择合适的调度方案.最后,对改进IEEE33节点配电网、19节点热网及20节点天然气网组成的RIES系统进行测试,结果表明在特定场景下,与确定性模型相比,鲁棒模型可将系统规避风险的程度提高5%. 展开更多
关键词 区域综合能源系统 多源协调调度 滚动优化 信息间隙决策理论 源-荷不确定性
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多扰动情况下智能产线动态调度的应用研究
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作者 郭俊梅 马新智 李得正 《南方农机》 2025年第17期111-114,123,共5页
【目的】解决智能制造产线中设备故障频发、模块协同效率低、资源利用率不足等多重扰动导致的调度失稳问题。【方法】提出了一种规则引擎与滚动时域优化协同的双轨动态调度机制。该方法在PLC控制层部署轻量化规则引擎,通过场景判断器实... 【目的】解决智能制造产线中设备故障频发、模块协同效率低、资源利用率不足等多重扰动导致的调度失稳问题。【方法】提出了一种规则引擎与滚动时域优化协同的双轨动态调度机制。该方法在PLC控制层部署轻量化规则引擎,通过场景判断器实时响应毫秒级突发故障,触发预置规则集实现应急调度;在边缘计算层构建RHO模型,以15 min为周期动态优化任务序列与资源分配,重点解决温控模块闲置及工序协同问题。同时,通过建立以最小化最大批次完成时间为目标的状态空间模型,并使用OPC UA工业网络协议实现跨层数据贯通。【结果】该方法使关键工序平均等待时间压缩至0.3 min,较传统调度策略产能提升22.3%,实现温控模块近零闲置运行。【结论】该方法显著提高了生产调度的效率和稳定性,具有实时性强、轻量化的特点。本研究攻克了传统调度方法在多扰动协同中的适应性缺陷,为制造业智能化升级提供了兼具理论创新性与工程落地性的技术范式。 展开更多
关键词 智能产线 动态调度 规则引擎 滚动时域优化 多扰动协同
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流域水资源多目标调度协调方法研究 被引量:2
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作者 杨子桐 方国华 +2 位作者 黄显峰 叶健 金其强 《水利水运工程学报》 北大核心 2025年第4期55-67,共13页
传统的流域水资源多目标调度协调方法是通过求解多目标优化调度问题以协调各调度目标之间的关系,且大多通过水库水位进行优化调度。对于河网水系密布、城市化程度较高、以河道水位控制为主的平原区流域而言,河道水位的合理调控关乎水资... 传统的流域水资源多目标调度协调方法是通过求解多目标优化调度问题以协调各调度目标之间的关系,且大多通过水库水位进行优化调度。对于河网水系密布、城市化程度较高、以河道水位控制为主的平原区流域而言,河道水位的合理调控关乎水资源调度综合效益的发挥,因而传统方法并不适用,亟需从河道水位角度统筹协调不同调度目标之间的关系。在充分考虑流域水资源多目标调度与河道水量关系的基础上,提出河道水位控制线概念,总结以防洪、供水、生态为调度目标的河道水位控制线内涵和特征,分析其在年内的变化特征,研究基于河道水位控制线的流域水资源多目标调度协调方法。以秦淮河流域为例,构建并求解了河网水动力水质模型,模型确定性系数均值达到0.87;计算得出不同水文频率下河道水位控制线方案指标值,确定不同频率防洪控制线为7.85 m及以下、不同频率供水控制线为8.05 m及以上,汛期生态控制线为6.90 m、非汛期生态控制线为6.55 m,研究了基于东山站水位控制线的秦淮河流域防洪-供水-生态协调方法。研究结果表明,可通过提前调整河道水位合理分配河网水资源量,实现流域水资源的多目标调度协调,并提高水资源的综合利用效益。 展开更多
关键词 河道水量分析 河道水位控制线 多目标调度协调方法 秦淮河流域
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