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    • 1. 发明专利
    • Operation pattern creation apparatus and method therefor as well as program
    • 作为程序的操作模式创建装置和方法
    • JP2012154563A
    • 2012-08-16
    • JP2011014310
    • 2011-01-26
    • Mitsubishi Heavy Ind Ltd三菱重工業株式会社
    • MAEHARA NORIYASUTSUGANO YOSHIE
    • F24F11/02
    • PROBLEM TO BE SOLVED: To provide an operation pattern creation apparatus and a method therefor as well as a program for creating a suitable operation pattern from the viewpoint of running cost regarding heat load patterns provided as a condition, in a heat source system including a plurality of models of heat source machines and creating an operation pattern further reduced in running cost by optimizing electric power demand.SOLUTION: By a first processing for creating an operation pattern corresponding to a heat load pattern provided as a condition by employing the running cost as a parameter, and correction of the operation pattern by changing constraints of the electric power demand regarding the operation pattern created in the first processing, an operation pattern capable of further reducing the running cost is searched for.
    • 要解决的问题:为了提供一种操作模式制作装置及其方法以及用于从作为条件提供的热负荷模式的运行成本的观点出发创建合适的操作模式的程序,在热源系统 包括多个型号的热源机,并通过优化电力需求创建进一步降低运行成本的操作模式。 解决方案:通过以通过采用运行成本作为参数来创建与作为条件提供的热负荷模式相对应的操作模式的第一处理,以及通过改变关于操作的电力需求的约束来校正操作模式 搜索在第一处理中创建的图案,搜索能够进一步降低运行成本的操作模式。 版权所有(C)2012,JPO&INPIT
    • 3. 发明专利
    • Heat source system configuration search apparatus and method therefor as well as program
    • 热源系统配置搜索装置和方法作为程序
    • JP2012154550A
    • 2012-08-16
    • JP2011013364
    • 2011-01-25
    • Mitsubishi Heavy Ind Ltd三菱重工業株式会社
    • MAEHARA NORIYASUTSUGANO YOSHIE
    • F24F11/02G06F17/50
    • Y02B30/52
    • PROBLEM TO BE SOLVED: To efficiently decide a suitable combination of heat source machines satisfying a predetermined heat load from a plurality of heat source machine candidates and volumetric ratios thereof.SOLUTION: A solution is searched for until a gene satisfying a predetermined convergence condition is searched for with a computer executing the steps: a step of setting a plurality of combinations of a model of a heat source machine capable of supplying a heat load provided as a condition from among heat source machine candidates comprising a plurality of models and a volumetric ratio thereof and generating a gene cluster with each of the combination as a gene; a step of calculating running cost when the predetermined heat load is supplied, for each of the genes; a step of selecting genes sequentially by a predetermined count from a gene of low running cost; a step of setting selected genes of the predetermined count as initial points in a search space and using the downhill simplex method to determine one convergence point from the initial points; and a step of employing the convergence point as an elite, and performing crossover and mutation to generate a new gene cluster.
    • 要解决的问题:为了有效地确定来自多个热源机器候补的满足预定热负荷的热源机的适当组合和其体积比。 解决方案:搜索解决方案,直到用执行以下步骤的计算机搜索满足预定收敛条件的基因:设置能够提供热负荷的热源机器的模型的多个组合的步骤 作为来自包含多个模型和体积比的热源机器候选物的条件提供,并且以组合中的每一个作为基因产生基因簇; 对于每个基因,当提供预定的热负荷时计算运行成本的步骤; 从低运行成本的基因中按预定计数依次选择基因的步骤; 将预定计数的选定基因设置为搜索空间中的初始点,并使用下坡单工法从初始点确定一个收敛点的步骤; 并采用收敛点作为精英的步骤,并进行交叉和突变以产生新的基因簇。 版权所有(C)2012,JPO&INPIT
    • 4. 发明专利
    • Operation control system and operating method of heat accumulation type air conditioner and heat source device
    • 热空气调节器和热源装置的操作控制系统和操作方法
    • JP2003050037A
    • 2003-02-21
    • JP2001236951
    • 2001-08-03
    • Mitsubishi Heavy Ind Ltd三菱重工業株式会社
    • KAWACHI MOTOKONOMURA MASUMIIBA HIROYUKIMAEHARA NORIYASU
    • F24F5/00F24F11/02
    • PROBLEM TO BE SOLVED: To provide an operation control system, improving an operation efficiency by determining the peak-cut value of a heat accumulation type air conditioner employed in parallel to a heat source device while considering the load factor and the number of operating sets of the heat source device. SOLUTION: The operation control system is provided with a heat accumulating amount control unit 1 for controlling the accumulating amount of heat, a predictive calculation unit 2 for predicting a predictive demanding heat amount for a given period, an instrument operation operating unit 3 for operating the number of operating sets and the load factor of the heat source device 8 based on the predictive demanding heat amount and a peak-cut operation unit 4 for operating the peak-cut value whereat the heat source device 8 can be operated within an objective load factor based on the heat accumulating amount, the predictive demanding heat amount and the operation efficiency. The peak-cut operation unit 4 operates an operation constitution and the peak-cut value which permit the operation within the range of the objective load factor when the peak-cut value and the number of operating sets of the heat source device 8 are changed.
    • 要解决的问题:提供一种操作控制系统,通过确定与热源装置并联使用的蓄热式空调器的峰值,提高操作效率,同时考虑负载因子和操作组的数量 热源装置。 解决方案:操作控制系统设置有用于控制累积热量的蓄热量控制单元1,用于预测给定期间的预测要求热量的预测计算单元2,用于操作 基于预测要求热量的热源装置8的操作组数和负载系数,以及用于操作热切换值8的峰值切割操作单元4,其中热源装置8能够在目标负载因子 基于蓄热量,预测要求的热量和操作效率。 峰值切断操作单元4在改变热源装置8的峰值和操作组的数量时,操作允许在目标负载因子的范围内的操作的操作构造和峰值切换值。
    • 7. 发明专利
    • GAS TURBINE BLADE COOLING AIR GENERATING SYSTEM
    • JP2002089285A
    • 2002-03-27
    • JP2000278224
    • 2000-09-13
    • MITSUBISHI HEAVY IND LTD
    • TSUJI TADASHIMORI HIDETAKAMAEHARA NORIYASU
    • F02C7/18F02C6/00F02C7/224F25B27/02
    • PROBLEM TO BE SOLVED: To provide a gas turbine blade cooling air generating system capable of surely supplying low-temperature air for cooling blades and improving efficiency of a gas turbine. SOLUTION: Air at about 490 deg.C, which has been bled from a compressor 11, is first divided into two systems of a heat exchange 14 for heating fuel and a low-pressure steam generating heat exchanger 15. The air temperature lowers in each of the heat exchangers 14, 15, and enters a hot water generating heat exchanger 16 for driving absorption refrigerating machines to be cooled more. In the heat exchanger 16, hot water is produced by heat exchange with the air. The hot water is used as a heat source for absorption refrigerating machines 19, 20. The air from the heat exchanger 16 enters a heat exchanger 17 for heating fuel, and raises the temperature of fuel. The outlet air enters a heat exchanger 18, which is cooled by cold water of the absorption refrigerating machines, and cooled down to about 15 deg.C. The air is pressurized by the compressor 20, and the generated heat is utilized as a heat source for the low- pressure steam generating heat exchanger 15. Then the air is cooled by cooling water of an absorption refrigerating machine 21 and supplied to the gas turbine.