Device and method for performing electrical power demand control
11431173 ยท 2022-08-30
Assignee
Inventors
- Yuichi Higuchi (Osaka, JP)
- Hiroshi Amano (Osaka, JP)
- Yosuke Tajika (Hyogo, JP)
- Taichi Shimizu (Osaka, JP)
Cpc classification
H02J13/00
ELECTRICITY
H02J3/144
ELECTRICITY
Y02P80/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02J2310/18
ELECTRICITY
International classification
Abstract
Power demand control is performed without a decrease in productivity. A device for performing electric power demand control includes: a processor; and a storage medium including an instruction for causing the processor to obtain a sum of energy consumption of a plurality of manufacturing devices, obtain a production capacity from production information on each manufacturing device, and perform electric power demand control on a manufacturing system based on the production capacity and the sum of energy consumption. To perform electric power control includes determining that electric power demand control is necessary if the sum of energy consumption reaches a predetermined threshold and excluding one of the manufacturing devices having a smallest production capacity from a target of electric power demand control.
Claims
1. A device for performing electric power demand control on a manufacturing system including a plurality of manufacturing devices, the plurality of manufacturing devices being connected in series, the device comprising: one or more processors; and one or more non-transitory computer-readable storage media including an instruction for causing the one or more processor to: receive values of power consumption of the plurality of manufacturing devices, obtain a sum of energy consumption of the plurality of manufacturing devices from the values of power consumption, receive production information on each of the plurality of manufacturing devices, obtain a production capacity of each of the plurality of manufacturing devices from the production information, and perform electric power control on the manufacturing system based on the production capacity of each of the plurality of manufacturing devices and the sum of energy consumption of the plurality of manufacturing devices, wherein the performing electric power control on the manufacturing system includes determining that electric power demand control is necessary if the sum of energy consumption reaches a predetermined threshold and excluding one of the plurality of manufacturing devices having a smallest production capacity from a target of electric power demand control.
2. The device according to claim 1, wherein the performing electric power control on the manufacturing system includes causing one of the plurality of manufacturing devices that is not excluded from the target of electric power demand control to transition to a non-operating state.
3. The device according to claim 1, wherein the performing electric power control on the manufacturing system includes: predicting a sum of energy consumption of the plurality of manufacturing devices consumed in a predetermined period to determine that electric power demand control is necessary if the predicted energy consumption exceeds target energy consumption, and excluding one of the plurality of manufacturing devices having a smallest production capacity from the target of electric power demand control.
4. A computer-implemented method for performing electric power demand control on a manufacturing system including a plurality of manufacturing devices, the plurality of manufacturing devices being connected in series, the method comprising: causing the processor to receive values of power consumption of the plurality of manufacturing devices; causing the processor to obtain a sum of energy consumption of the plurality of manufacturing devices from the values of power consumption; causing the processor to receive production information on each of the plurality of manufacturing devices; causing the processor to obtain a production capacity of each of the plurality of manufacturing devices from the production information; and causing the processor to perform electric power control on the manufacturing system based on the production capacity of each of the plurality of manufacturing devices and the sum of energy consumption of the plurality of manufacturing devices, wherein the performing electric power control on the manufacturing system includes: determining that electric power demand control is necessary if the sum of energy consumption reaches a predetermined threshold and excluding one of the plurality of manufacturing devices having a smallest production capacity from a target of electric power demand control.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
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(6)
DESCRIPTION OF EMBODIMENTS
(7) An embodiment of the present disclosure will be described hereinafter with reference to the drawings. In the drawings, like reference characters have been used to designate identical or equivalent elements.
(8)
(9) The control device 130 performs electric power demand control on the manufacturing system 110, and controls operations of the manufacturing devices 112, 114, and 116 individually. The control device 130 may be connected to the manufacturing devices 112, 114, and 116 through a communication network or without interposition of a communication network.
(10)
(11) The processor 132 communicates with other components through the bus 146. The network interface 138 transmits and receives data to/from a communication network such as the Internet. The network interface 138 is connected to the communication network by wires or wirelessly, and is connected to the manufacturing system 110 through the communication network.
(12) Each of the memory 142 and the file storage device 144 is one or more volatile or nonvolatile non-transitory computer-readable storage media. The memory 142 includes, for example, a random access memory (RAM) and a read only memory (ROM), and stores data and instructions. The file storage device 144 may include a semiconductor memory such as RAM, a ROM, an electrically erasable programmable read only memory (EEPROM), or a flash memory, a magnetic recording medium such as a hard disk drive, an optical recording medium, and a combination thereof, for example. In a case where the embodiment of the present disclosure is implemented by software, a microcode, a code of an assembly language, or a code of a higher-level language can be used. The memory 142 or the file storage device 144 stores a program including instructions described in these codes and used to implement functions of the embodiment of the present disclosure. The processor 132 operates in accordance with such a computer program to thereby achieve functions of the processor 132.
(13) The input device 134 may include, for example, a touch screen, a keyboard, a remote controller, and a mouse. The output device 136 may include a flat panel display such as a liquid crystal display or an organic EL display.
(14)
(15)
(16) In block 22, the processor 132 receives values of power consumption of the manufacturing devices 112, 114, and 116 constituting the manufacturing system 110 from the manufacturing devices 112, 114, and 116 or measuring instruments or the like attached to these devices, and writes the values in the memory 142.
(17) In block 24, the processor 132 obtains the sum of power consumption of the manufacturing devices 112, 114, and 116 from the received values of power consumption. The processor 132 further integrates or accumulates, for example, the obtained sum to obtain the sum of energy consumption of the manufacturing devices 112, 114, and 116 after start time t.sub.start of the period DD, that is, energy consumption in the entire manufacturing system 110 after start time t.sub.start, and writes the sum in the memory 142.
(18) In block 26, the processor 132 receives production information from the manufacturing devices 112, 114, and 116 constituting the manufacturing system 110 or measuring instruments or the like attached to these devices, and writes the information in the memory 142. The production information includes the number of manufactured products, the number of non-defective products, the number of defective products, a tact time, and so forth.
(19) In block 28, based on the received production information, the processor 132 obtains a production capacity and writes the production capacity in the memory 142. The production capacity is the number of manufactured products per unit time (manufacturing process capacity), or a tact time (time from start of a process in one cycle by the manufacturing device to end of the process). The production capacity may be a substantial tact time obtained by dividing a tact time by a non-defective ratio, or a substantial number of manufactured products per unit time obtained by multiplying the number of manufactured products per unit time by a non-defective ratio, for example.
(20) In block 30, the processor 132 determines whether electric power demand control is necessary or not. If the energy consumption of the entire manufacturing system 110 obtained in block 24, that is, the sum of energy consumption of the manufacturing devices 112, 114, and 116, reaches the determination threshold, the processor 132 determines that electric power demand control is necessary. Specifically, in the example of
(21) The processor 132 may predict energy consumption of the entire manufacturing system 110 in the period DD by linear extrapolation based on the already obtained energy consumption so that if the predicted energy consumption exceeds target energy consumption, the processor 132 determines that electric power demand control is necessary. Specifically, in the example of
(22) If it is determined that electric power demand control is necessary, the process proceeds to block 32, and otherwise, the process returns to block 22.
(23) In block 32, the processor 132 determines a manufacturing device that is not a target of electric power demand control.
(24) As shown in
(25) In block 34, the processor 132 transmits a signal instructing the manufacturing devices 112 and 114 not excluded from control targets of electric power demand control to transition to a non-operating state, to the manufacturing devices 112 and 114. That is, demand control is carried out at time t.sub.C in
(26) Consequently, as shown in
(27) A part of or a whole of components constituting the control device 130 may be constituted by one system large scale integration (LSI). The system LSI is ultra-multifunction LSI fabricated by integrating a plurality of components on one chip, specifically a computer system including a microprocessor, a ROM, a RAM, and so forth. The RAM stores a computer program. The microprocessor operates in accordance with the computer program so that the system LSI obtains its function.
(28) A part of or a whole of components constituting the control device 130 may be constituted by an IC card or a single module detachably attached to each device. The IC card or the module is a computer system constituted by a microprocessor, a ROM, a RAM, and so forth. The IC card or the module may include the ultra-multifunctional LSI described above. The microprocessor operates in accordance with the computer program so that the IC card or the module achieve functions thereof. The IC card or the module may be tamper resistant.
(29) The present disclosure may be the methods described above. The present disclosure may be a computer program implementing these methods by a computer, or a digital signal constituted by the computer program.
(30) The present disclosure may also be a computer-readable recording medium from which the computer program or the digital signal can be read by a computer, such as a flexible disk, a hard disk, a CD-ROM, an MO, a DVD, a DVD-ROM, a DVD-RAM, a blu-ray disk (BD), or a semiconductor memory. The present disclosure may be the digital signal recorded on these recording media.
(31) The present disclosure may transmit the computer program or the digital signal by way of an electrical communication line, a wireless or wired communication line, a network typified by the Internet, data broadcasting, and so forth.
(32) Many features and advantages of the present disclosure are apparent from the description, and thus, it is intended to cover all such features and advantages of the present disclosure according to the accompanying claims. Furthermore, since many changes and modifications can be readily made by those skilled in the art, the present disclosure should not be limited to the exact configuration and operation of the illustrated and described figures. Accordingly, all suitable modifications and equivalents are to fall within the scope of the present disclosure.
INDUSTRIAL APPLICABILITY
(33) As described above, the present disclosure is useful for, for example, a device and a method for performing electric power demand control.
DESCRIPTION OF REFERENCE CHARACTERS
(34) TABLE-US-00001 110 manufacturing system 112, 114, 116 manufacturing device 130 control device 132 processor 142 memory