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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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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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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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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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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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Optimal design of dynamic and control performance for planar manipulator 被引量:6
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作者 YOU Wei KONG Min-xiu +1 位作者 SUN Li-ning DU Zhi-jiang 《Journal of Central South University》 SCIE EI CAS 2012年第1期108-116,共9页
A design and optimization approach of dynamic and control performance for a two-DOF planar manipulator was proposed.After the kinematic and dynamic analysis,several advantages of the mechanism were illustrated,which m... A design and optimization approach of dynamic and control performance for a two-DOF planar manipulator was proposed.After the kinematic and dynamic analysis,several advantages of the mechanism were illustrated,which made it possible to obtain good dynamic and control performances just through mechanism optimization.Based on the idea of design for control(DFC),a novel kind of multi-objective optimization model was proposed.There were three optimization objectives:the index of inertia,the index describing the dynamic coupling effects and the global condition number.Other indexes to characterize the designing requirements such as the velocity of end-effector,the workspace size,and the first mode natural frequency were regarded as the constraints.The cross-section area and length of the linkages were chosen as the design variables.NSGA-II algorithm was introduced to solve this complex multi-objective optimization problem.Additional criteria from engineering experience were incorporated into the selecting of final parameters among the obtained Pareto solution sets.Finally,experiments were performed to validate the linear dynamic structure and control performances of the optimized mechanisms.A new expression for measuring the dynamic coupling degree with clear physical meaning was proposed.The results show that the optimized mechanism has an approximate decoupled dynamics structure,and each active joint can be regarded as a linear SISO system.The control performances of the linear and nonlinear controllers were also compared.It can be concluded that the optimized mechanism can achieve good control performance only using a linear controller. 展开更多
关键词 mechanism optimization dynamic optimization design for control multi-objective optimization
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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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基于电碳耦合的多园区综合能源系统双层博弈优化模型 被引量:2
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作者 王永利 周含芷 +2 位作者 姜斯冲 张云飞 李雨洋 《可再生能源》 北大核心 2025年第3期388-399,共12页
随着用户侧分布式能源的不断发展,多主体资源间逐渐呈现互动态势。由于分布式能源设备自主调控以及新能源、负荷等主体的运营方式多样化明显,亟须建立多主体博弈优化模型,满足多样化利益诉求。文章以多园区综合能源系统为研究对象,构建... 随着用户侧分布式能源的不断发展,多主体资源间逐渐呈现互动态势。由于分布式能源设备自主调控以及新能源、负荷等主体的运营方式多样化明显,亟须建立多主体博弈优化模型,满足多样化利益诉求。文章以多园区综合能源系统为研究对象,构建双层博弈优化调度模型。首先,综合考虑园区在生产经营活动中所产生的碳排放量,构建考虑等效抵消机制的阶梯碳-绿证交易模型;其次,依据园区实际合作情况,构建多园区博弈优化模型,研究系统运营商动态定价与园区优化运行调度问题;最后,通过算例分析验证所构建模型能够在保证经济性的同时降低系统碳排放量,实现了经济与碳减排效益相统一。 展开更多
关键词 多园区综合能源系统 双层博弈优化调度模型 阶梯碳-绿证交易机制 动态定价
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基于鲁棒优化的再制造作业车间动态调度模型与算法研究
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作者 张帅 徐惠芬 +2 位作者 张文宇 毛灿 景鑫 《运筹与管理》 北大核心 2025年第4期113-119,I0048-I0056,共16页
针对具有柔性工艺规划的再制造作业车间多重不确定性和扰动事件影响的问题,提出了一种新的基于鲁棒优化的再制造作业车间动态调度模型,将再制造调度过程分为预调度阶段和动态调度阶段。预调度阶段采用离散场景集来描述再制造作业车间中... 针对具有柔性工艺规划的再制造作业车间多重不确定性和扰动事件影响的问题,提出了一种新的基于鲁棒优化的再制造作业车间动态调度模型,将再制造调度过程分为预调度阶段和动态调度阶段。预调度阶段采用离散场景集来描述再制造作业车间中的多重不确定性,并使用鲁棒优化方法来构建数学模型。动态调度阶段设计了一种混合型重调度策略,以避免扰动事件所导致的再制造系统效率降低的问题。在此基础上,提出了一种采用二维不等长编码方案的扩展型生物地理学优化算法,引入了正弦迁移模型并采用新的迁移算子和新的变异算子来引导种群进行高效迁移,还设计了一种局部搜索策略以提高算法性能。最后,通过仿真实验验证了上述模型和算法的有效性和优越性。 展开更多
关键词 再制造作业车间 预调度 动态调度 鲁棒优化 扰动事件 生物地理学优化算法
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基于动态电碳定价的虚拟电厂联盟主从博弈调度策略
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作者 张强 马山刚 金福宝 《科学技术与工程》 北大核心 2025年第28期12050-12058,共9页
在电市场、碳市场背景下,虚拟电厂研究不断深入,为实现同一配电网内各区域电能互济及运用价格机制引导各用户主体安全运行,提出一种动态电碳定价的虚拟电厂联盟主从博弈调度策略。首先,设计一种由联盟运营商拟定电碳价,各虚拟电厂主体... 在电市场、碳市场背景下,虚拟电厂研究不断深入,为实现同一配电网内各区域电能互济及运用价格机制引导各用户主体安全运行,提出一种动态电碳定价的虚拟电厂联盟主从博弈调度策略。首先,设计一种由联盟运营商拟定电碳价,各虚拟电厂主体根据价格制定内部运行计划的虚拟电厂联盟交互框架;其次,采用信息间隙决策理论对源荷侧不确定性处理,基于主从博弈建立虚拟电厂联盟优化调度模型;最后,采用粒子群算法嵌套CPLEX求解器求解,通过算例分析论证所提策略的合理性和有效性。仿真结果表明:虚拟电厂联盟在日运行成本,碳排量,综合收益等方面都得到了改善。 展开更多
关键词 虚拟电厂 动态电碳定价 源荷不确定性 信息间隙决策理论 优化调度
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考虑飞机除冰任务的除冰车路径规划模型研究
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作者 徐一旻 王台玉冰 +2 位作者 吕伟 刘鸣秋 吴佳莉 《中国安全生产科学技术》 北大核心 2025年第8期181-188,共8页
为应对冻雨天气下机场除冰作业中车辆调度效率低、动态避障能力不足及多约束条件耦合优化困难等问题,提出1种基于混合蚁群算法的机场除冰车辆路径规划与动态调度优化模型。首先通过栅格化建模技术,将机场CAD地图转化为离散网格空间,综... 为应对冻雨天气下机场除冰作业中车辆调度效率低、动态避障能力不足及多约束条件耦合优化困难等问题,提出1种基于混合蚁群算法的机场除冰车辆路径规划与动态调度优化模型。首先通过栅格化建模技术,将机场CAD地图转化为离散网格空间,综合考虑障碍物动态分布、航班起飞优先级、除冰液有效时间窗、车辆容量限制等约束,构建多目标优化函数。其次,基于混合蚁群算法的全局寻优能力与A^(*)算法的局部路径优化特性,实现复杂环境下路径规划与避障的协同控制。实验基于真实机场脱敏地图构建仿真场景,划分20个区域并标注所有停机位坐标,验证了模型的有效性和鲁棒性。研究结果表明:该模型在确保航班时刻表约束的前提下,总行驶距离减少68%,航班延误时间减少90%,有效规避障碍物膨胀区边界的同时能动态调整多车辆协作路径。研究结果可为冻雨天气下机场除冰作业提供兼顾全局最优性与动态适应性的解决方案。 展开更多
关键词 路径规划 机场除冰车辆 动态调度 混合蚁群算法 多目标优化
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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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考虑功率可调节裕度的区域综合能源系统多时间尺度优化调度 被引量:2
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作者 李志颖 王致杰 王鸿 《太阳能学报》 北大核心 2025年第2期255-261,共7页
针对综合能源系统能源结构改变导致系统灵活性和环保性下降的问题,提出考虑功率可调节裕度的区域综合能系统多时间尺度优化调度模型。首先,重点分析净负荷预测误差和可调度机组对系统可调节能力的影响;其次,引入阶梯式碳交易机制,建立... 针对综合能源系统能源结构改变导致系统灵活性和环保性下降的问题,提出考虑功率可调节裕度的区域综合能系统多时间尺度优化调度模型。首先,重点分析净负荷预测误差和可调度机组对系统可调节能力的影响;其次,引入阶梯式碳交易机制,建立日前调度模型,以实现系统低碳经济运行;然后,以系统动态功率可调节裕度最大为目标,建立日内滚动优化调度模型;最后,构建综合能源系统,并设置多个场景,通过CPLEX进行多目标优化计算。仿真结果表明,所建优化模型提高系统的可调节裕度。因此,所提出的优化调度方法可实现系统在低碳经济运行的同时,提高系统多能源功率的可调节裕度,增强系统的灵活性。 展开更多
关键词 调度优化 综合能源系统 数学模型 灵活性供需平衡 动态功率调节裕度
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计及电-热-氢负荷与动态重构的主动配电网优化调度 被引量:2
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作者 王璐瑶 刘卫亮 +3 位作者 刘长良 刘帅 王昕 康佳垚 《太阳能学报》 北大核心 2025年第1期460-471,共12页
为提高主动配电网的综合运行品质,提出一种计及电-热-氢负荷与动态重构的主动配电网优化调度方法。首先,建立主动配电网系统数学模型,分析电动汽车、地板辐射供暖/供冷系统、氢储能系统的运行规律与可调潜力;其次,考虑电-热-氢负荷调节... 为提高主动配电网的综合运行品质,提出一种计及电-热-氢负荷与动态重构的主动配电网优化调度方法。首先,建立主动配电网系统数学模型,分析电动汽车、地板辐射供暖/供冷系统、氢储能系统的运行规律与可调潜力;其次,考虑电-热-氢负荷调节与网络重构,以各子系统出力与支路开关状态为决策变量,建立以降低运行成本、减小峰谷差、减少污染气体为目标的确定性优化调度模型;然后,采用信息间隙决策理论描述源荷不确定性,建立风险规避型调度模型,在保障一定期望目标的前提下使系统具有良好的鲁棒性;最后,基于IEEE-33节点系统分别对各调度方案进行对比分析,验证所提方法的有效性。 展开更多
关键词 氢能 主动配电网 优化调度 信息间隙决策理论 动态重构 可调潜力
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基于数字孪生的电极箔化成车间调度系统研究 被引量:1
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作者 左怡鑫 袁逸萍 +1 位作者 朱广贺 刘鹏飞 《机床与液压》 北大核心 2025年第15期71-78,共8页
化成工艺是电极箔生产过程中的关键工艺环节。为了应对化成车间作业过程中的扰动事件,如紧急插单和生产过程信息监控不足等,导致生产偏离原调度计划且无法快速响应这些扰动问题,提出一种基于数字孪生的电极箔化成车间动态调度方法。通... 化成工艺是电极箔生产过程中的关键工艺环节。为了应对化成车间作业过程中的扰动事件,如紧急插单和生产过程信息监控不足等,导致生产偏离原调度计划且无法快速响应这些扰动问题,提出一种基于数字孪生的电极箔化成车间动态调度方法。通过构建电极箔化成车间动态调度数字孪生框架及其相应的数学模型,加快物理车间与虚拟车间的实时交互,以提升调度效率。针对化成车间生产调度问题,设计改进粒子群算法对调度问题进行求解。最后,以企业实际的紧急插单为例,验证了动态调度系统与改进粒子群算法在解决化成车间动态调度问题时的有效性。 展开更多
关键词 数字孪生 化成车间 动态调度 改进粒子群算法
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事件-时间触发的慢时变工业过程动态调度方法
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作者 任超 王凯 +1 位作者 韩洁 阳春华 《化工学报》 北大核心 2025年第1期256-265,共10页
流程工业中的慢时变现象普遍存在,持续变化的工况会导致生产调度的最优操作条件偏移,原有的决策方案不再适用。提出了一种基于事件-时间触发的动态调度方法。首先,分析了慢时变参数对长周期调度决策的影响,提出以操作变量的变化表征设... 流程工业中的慢时变现象普遍存在,持续变化的工况会导致生产调度的最优操作条件偏移,原有的决策方案不再适用。提出了一种基于事件-时间触发的动态调度方法。首先,分析了慢时变参数对长周期调度决策的影响,提出以操作变量的变化表征设备性能衰减的策略,并构建了动态触发函数,在动态调度的触发条件中融合了事件和时间触发的特点,设计了时变约束条件。其次,在调度过程中嵌入生产系统的动态信息,建立了过程过渡模型作为输入输出动力学的简化表达,从而降低了计算的复杂度。最后,采用闭环滚动的动态调度框架,依据实时的运行状态更新调度模型。在示例研究中,以工业换热网络为例验证了所提方法的有效性,该方法能提供及时的动态调度,表现出较好的经济性能,为考虑工况随时间缓慢迁移条件下的生产调度问题提供了新的解决方案。 展开更多
关键词 过程系统 动态调度 事件-时间触发 滚动优化 换热网络
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基于动态减载的风蓄联合优化运行与调频控制策略
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作者 刘新元 赵书强 +3 位作者 王金浩 薄利明 胡永强 李志伟 《现代电力》 北大核心 2025年第2期238-246,共9页
双碳目标背景下,新能源渗透率逐年升高,其出力随机波动性给电力系统频率安全稳定带来严峻挑战。从调度层面考虑新能源机组主动参与调频、与储能联合参与调频是新型电力系统演进的重要途径。对此,基于风电功率备用控制方法,提出了全风况... 双碳目标背景下,新能源渗透率逐年升高,其出力随机波动性给电力系统频率安全稳定带来严峻挑战。从调度层面考虑新能源机组主动参与调频、与储能联合参与调频是新型电力系统演进的重要途径。对此,基于风电功率备用控制方法,提出了全风况下风电动态减载控制策略,量化了不同风况的调频容量供应能力。结合抽水蓄能机组不同工况下的调频特性,以机会约束形式表征了风电出力与负荷波动的不确定性并设置系统调频备用约束,建立基于动态减载的风蓄联合优化运行模型,提出了不同工况下风蓄联合调频控制策略,通过算例验证了所提策略能够在保证系统频率安全的前提下,促进风电消纳,提高风蓄联合系统的经济性。 展开更多
关键词 功率备用控制 机会约束规划 动态减载调频 调频特性 优化调度
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基于互补约束和绝对值线性化松弛的日前无功计划优化
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作者 黄华 徐泰山 +3 位作者 高宗和 柏琳 陆进军 涂孟夫 《电力系统自动化》 北大核心 2025年第3期156-169,共14页
为高效求解大规模非线性含多时段耦合绝对值约束和整数变量的日前无功计划优化问题,提出了一种基于互补约束和绝对值线性化松弛的两阶段优化算法。通过线性化方法松弛多时段耦合绝对值约束,并基于互补条件和离散变量等价转换,将原问题... 为高效求解大规模非线性含多时段耦合绝对值约束和整数变量的日前无功计划优化问题,提出了一种基于互补约束和绝对值线性化松弛的两阶段优化算法。通过线性化方法松弛多时段耦合绝对值约束,并基于互补条件和离散变量等价转换,将原问题转换为含互补约束的连续数学规划问题。将求解步骤分为两个阶段,并采用内点法依次求解。首先,不计互补约束,快速获得离散变量近似优化解;然后,求解含互补约束的完整模型以获得离散变量和连续变量的精确优化解。此外,为减少内点法迭代时综合海森矩阵的计算量,提出了一种快速稀疏存储计算方法。IEEE 118节点等标准测试系统和实际省级电网的仿真结果表明了所提算法的有效性、快速性及其在实际大规模电力系统的工程适用性。 展开更多
关键词 日前无功计划 动态无功优化 混合整数规划 绝对值线性化松弛 互补约束 内点法
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