This application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2018-199238, filed on Oct. 23, 2018, the entire contents of which are incorporated herein by reference.
The embodiments discussed herein are related to a computer-readable recording medium recording a torque control program, a torque control method, and a torque control apparatus.
An air-conditioning apparatus for heating and cooling a room performs a pre-cooling operation or a pre-heating operation.
Examples of the related art include Japanese Laid-open Patent Publication No. 2013-190164.
According to an aspect of the embodiments, a non-transitory computer-readable recording medium stores therein a control program for causing a computer to execute a process including: calculating cooling capacity information and thermal insulation information, based on an outdoor temperature, a room temperature of a space subjected to air-conditioning, and history information regarding an operation of an air-conditioning apparatus that performs air-conditioning control in the space, the cooling capacity information being information regarding a capacity of the air-conditioning apparatus for cooling the space, the thermal insulation information being information regarding a thermal insulation state of the space from outside; and switching, when the air-conditioning apparatus performs air conditioning in the space, based on the outdoor temperature and the room temperature of the space, an operation mode between a first operation mode in which the operation is performed based on the cooling capacity information and a second operation mode in which the operation is performed based on the cooling capacity information and the thermal insulation information.
The object and advantages of the invention will be realized and attained by means of the elements and combinations particularly pointed out in the claims.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are not restrictive of the invention.
For example, an air-conditioning apparatus for heating and cooling a room performs a pre-cooling operation or a pre-heating operation so that the indoor temperature reaches a target temperature by specified time in order to improve the comfort of a user and reduce the cost such as an electric bill due to a wasteful operation. For example, a pre-cooling operation or a pre-heating operation is performed before set time on the assumption that the time at which a user is present in a room is not necessarily the set time but varies and performs a cooling operation or a heating operation toward a target temperature in response to detection of presence of the user in the room.
However, the temperature in a target room or the like varies greatly depending on a heat storage state at the time of the start of the operation. Consequently, a situation may occur in which the temperature reaches the target temperature before the specified time or the temperature does not reach the target temperature by the specified time. Accordingly, it is hard to say that appropriate air-conditioning control is performed.
In one aspect, a computer-readable recording medium, a torque control method, and a torque control apparatus that enable appropriate air-conditioning control to be performed may be provided.
Embodiments of a torque control program, a torque control method, and a torque control apparatus disclosed herein will be described in detail below with reference to the drawings. Note that these embodiments do not limit the present disclosure. Each of the embodiments may be appropriately combined with another embodiment within a scope without contradiction.
[Example of Overall Configuration]
The room 1 includes a flat wall 1b, an air-conditioning apparatus 2, an outdoor unit 3, and a sensor 4. The flat wall 1b is an example of an outer wall for isolating an indoor space 1a from the outside. The air-conditioning apparatus 2 is installed in the indoor space 1a. The outdoor unit 3 is installed outside the room 1. The sensor 4 is installed in the indoor space 1a. The flat wall 1b is affected by an outdoor temperature and stores heat. The air-conditioning apparatus 2 is an air conditioner or the like for performing cooling or heating in the room 1. The air-conditioning apparatus 2 performs air-conditioning control in accordance with an instruction from the control apparatus 10. The outdoor unit 3 is an outdoor unit of the air-conditioning apparatus 2. The outdoor unit 3 includes a sensor that measures the outdoor temperature and collects an outdoor temperature history. The sensor 4 is a person sensor that detects whether a user is in the indoor space 1a. The sensor 4 collects a result indicating whether the user is detected, detection time, and so on.
The control apparatus 10 is an example of a torque control apparatus that manages the individual devices installed in the room 1 and performs air-conditioning control on the air-conditioning apparatus 2. The control apparatus 10 acquires the outdoor temperature history from the outdoor unit 3. The control apparatus 10 acquires information about the presence of the user in the room 1 (hereinafter, referred to as user presence information) including time at which the user started to be in the room 1 (hereinafter, referred to as presence start time) and time at which the user exited from the room 1 (hereinafter, referred to as exit time) from the sensor 4. The control apparatus 10 acquires history information or the like of the air-conditioning control performed in the indoor space 1a from the air-conditioning apparatus 2.
Common air-conditioning control will be described. In this embodiment, cooling will be described as an example. In the common air-conditioning control, the earliest presence start time identified from the user presence information of a user is set as specified time, and a pre-cooling operation is performed so that the indoor temperature reaches a target temperature by the specified time. However, a change in the temperature in the indoor space 1a greatly varies depending on a heat storage state of the flat wall 1b of the target room 1 at the time when the operation is started.
Since the heat stored in the outer wall in the daytime is dissipated to the indoor space in the afternoon, the room temperature increases although the outdoor temperature decreases. Therefore, when the specified time is set to time at or after the evening time, the room temperature may not decrease sufficiently by the time when the user is in the room as illustrated in (b) of FIG. 2, because cooling is performed to the target temperature in a state where the room temperature has increased.
Accordingly, when the pre-cooling operation is performed until the specified time based only on the indoor temperature, the outdoor temperature, and the target temperature, a situation may occur where the room temperature reaches the target temperature before the specified time or the room temperature does not reach the target temperature by the specified time. Thus, the discomfort of the user is rather increased or an unnecessary electric bill is caused.
Accordingly, the control apparatus 10 according to the first embodiment calculates cooling capacity information and thermal insulation information based on the outdoor temperature, the room temperature of the room 1, and the history information about the operation of the air-conditioning apparatus 2. The cooling capacity information is information regarding a capacity of the air-conditioning apparatus 2 for cooling the room 1. The thermal insulation information is information regarding a thermal insulation state of the room 1 from the outside. The control apparatus 10 performs, when the air-conditioning apparatus 2 performs air conditioning, based on the outdoor temperature and the room temperature, control for switching an operation mode between a first operation mode in which an operation is performed based on the cooling capacity information and a second operation mode in which the operation is performed based on the cooling capacity information and the thermal insulation information.
For example, the control apparatus 10 determines whether a current state is a state where there is a heat exchange between the indoor space and the outside, and pre-cooling is performed using a cooling period corresponding to the operation mode according to the state. Thus, the control apparatus 10 may perform appropriate air-conditioning control.
[Functional Configuration]
The storage unit 12 is an example of a storage device that stores data and a program. The storage unit 12 is, for example, a memory, a hard disk, or the like. The storage unit 12 stores a past history database (DB) 13, a setting information DB 14, and a parameter DB 15.
The past history DB 13 is a database for storing history information regarding air-conditioning control. For example, the past history DB 13 stores various kinds of history information such as details of air-conditioning control performed by the air-conditioning apparatus 2, the room temperature measured by the air-conditioning apparatus 2, the outdoor temperature measured by the outdoor unit 3, and the user presence information of the user detected by the sensor 4. The kinds of information are each stored in the past history DB 13 in association with a date and time. Thus, the kinds of history information of the respective devices may be associated with each other.
The setting information DB 14 is a database for storing the target temperature and the specified time. For example, the target temperature may be arbitrarily set by the user or the like. The specified time is information specifying the time at which the room temperature reaches the target temperature. The specified time may be arbitrarily set by the user. Alternatively, the earliest presence start time, an average time of the presence start times, or the like may be set as the specified time from the past history.
The parameter DB 15 is a database for storing various parameters calculated by the control unit 20, various parameters set in advance, and so on. For example, the parameter DB 15 stores α that indicates thermal insulation performance of the room 1, β that indicates a relationship between a volume and a specific heat of air in the room 1, and σ (=αβ) that denotes a heat storage factor corresponding to the room 1.
The control unit 20 is a processing unit that manages the entire control apparatus 10 and is, for example, a processor or the like. The control unit 20 includes an acquisition unit 21, a setting unit 22, a parameter calculation unit 23, a pattern processing unit 24, and an air-conditioning control unit 25. The acquisition unit 21, the setting unit 22, the parameter calculation unit 23, the pattern processing unit 24, and the air-conditioning control unit 25 are examples of electronic circuits included in the processor or examples of processes executed by the processor.
The acquisition unit 21 is a processing unit that acquires various kinds of data from the individual devices in the room 1. For example, the acquisition unit 21 acquires the details of the air-conditioning control and the room temperature from the air-conditioning apparatus 2, acquires the outdoor temperature from the outdoor unit 3, and acquires the user presence information (whether or not the user is present in the room 1 and the presence start time) from the sensor 4. The acquisition unit 21 stores the acquired information in the past history DB 13. The acquisition unit 21 may acquire the information periodically or may acquire the information when there is a change in the information to be acquired. Each of the devices may spontaneously transmit the corresponding information.
The setting unit 22 is a processing unit that sets the target temperature and the specified time. For example, the setting unit 22 sets a temperature accepted from the user as the target temperature and stores the target temperature in the setting information DB 14. The setting unit 22 sets the earliest presence start time as the specified time with reference to the past history DB 13 and stores the specified time in the setting information DB 14. The setting unit 22 identifies the presence start time of each day with reference to the past history DB 13 to calculate an average time, sets the average time as the specified time, and stores the specified time in the setting information DB 14.
The parameter calculation unit 23 is a processing unit that calculates cooling capacity information regarding the cooling capacity of the air-conditioning apparatus 2 and thermal insulation information regarding a thermal insulation state of the room 1 from the outside, based on the outdoor temperature, the room temperature, and the history information regarding the operation of the air-conditioning apparatus 2. For example, the parameter calculation unit 23 defines a physical model regarding a cooling period of the indoor space 1a in consideration of a heat exchange between the indoor space 1a and the outside, calculates various parameters in the physical model, and stores the various parameters in the parameter DB 15. For example, the parameter calculation unit 23 calculates the heat storage factor (σ) mentioned above.
In such a state, a relational expression q1 in which the outdoor temperature influences the room temperature may be defined by equation (1). In equation (1), α is a constant denoting thermal insulation performance. The heat quantity q2 of the air-conditioning apparatus 2 may be defined by equation (2). In equation (2), W denotes the capacity of the air-conditioning apparatus 2 and is a constant determined based on the design document of the air-conditioning apparatus 2, common heat transfer technology, or the like. A relational expression for cooling the room 1 may be defined by equation (3). In equation (3), β is a constant calculated from the volume and a specific heat of air in the room 1.
The heat storage factor σ (=αβ) is determined. For example, equation (4) is obtained by substituting equation (1) and equation (2) in equation (3). Equation (5) is then obtained by solving equation (4) using a constant coefficient linear differential equation of the first order. Equation (6) is then obtained by deriving a general solution for equation (5). When θ0 denotes the room temperature at time t=0, θ0=C is satisfied. Equation (7) is obtained by substituting θ0=C in equation (6).
On the other hand, a function of the outdoor temperature may be defined by equation (8). For example, the function of the outdoor temperature may be defined by using the heat storage factor (σ), the initial value (θ1) of the outdoor temperature, and the cooling capacity information (βW). When W=0, the air-conditioning apparatus 2 is stopped and W′=σθ1. As indicated by equation (9), σ is defined by substituting W′=σθ1 in equation (7) and expanding equation (7) to equation (9).
A change in the heat storage factor σ to be calculated will be described.
The cooling capacity (βW) per unit time of the air-conditioning apparatus 2 is calculated when the air-conditioning apparatus 2 is in operation. For example, a definition of the cooling capacity (βW) denoted by equation (10) is calculated by expanding equation (7). The cooling capacity (βW) is calculated by substituting the heat storage factor σ in equation (10).
Referring back to
The selection unit 24a is a processing unit that performs selection of the operation mode corresponding to the heat storage state at the current time point. For example, the selection unit 24a selects one of the first operation mode, the second operation mode, and the third operation mode by using the room temperature and the outdoor temperature. For example, when a condition that “the current room temperature is higher than an average room temperature of the past by a threshold or more” is not satisfied, the selection unit 24a selects the first operation mode. When the condition that “the current room temperature is higher than the average room temperature of the past by the threshold or more” is satisfied and when the outdoor temperature is higher than the room temperature (the outdoor temperature>the room temperature), the selection unit 24a selects the second operation mode. When the condition that “the current room temperature is higher than the average room temperature of the past by the threshold or more” is satisfied and when the outdoor temperature is lower than the room temperature (the outdoor temperature<the room temperature), the selection unit 24a selects the third operation mode. The current room temperature refers to a room temperature at time when the calculation of the cooling period of pre-cooling is started or the like.
For example, when there is no heat exchange between the indoor space and the outside, the selection unit 24a selects the first operation mode. When there is a heat exchange between the indoor space and the outside, the selection unit 24a selects the second operation mode or the third operation mode based on a relationship between the outdoor temperature and the room temperature.
The calculation unit 24b is a processing unit that calculates a cooling period by using a calculation equation corresponding to the operation mode selected by the selection unit 24a. For example, when the first operation mode is selected, the calculation unit 24b uses equation (11) below.
Cooling period={(Room temperature−Target temperature)×β}/Cooling capacity per unit time equation (11)
In equation (11), the “room temperature” may be obtained from the air-conditioning apparatus 2, the “target temperature” may be obtained from the setting information DB 14, and “β” is a constant defined by equation (3). The “cooling capacity per unit time” corresponds to “βW” denoted by equation (10) and is equal to, for example, 257.6 or the like.
The calculation unit 24b uses equation (12) below when the second operation mode is selected. The calculation unit 24b uses equation (13) below when the third operation mode is selected.
Cooling period=Equation (11)+(Heat dissipation from wall to indoor space+Influence (σ) of outdoor temperature)/Cooling capacity per unit time equation (12)
Cooling period=Equation (11)+(Heat dissipation from wall to indoor space/Cooling capacity per unit time) equation (13)
The “heat dissipation from wall to indoor space” in equations (12) and (13) corresponds to “q1” defined by equation (1). The “influence (σ) of outdoor temperature” is the heat storage factor calculated using equation (9) and is equal to, for example, 1.47 or the like.
A relationship between each operation mode and the cooling period will be described.
Cooling takes longer as the influence of heat dissipation from the outer wall (the flat wall 1b) to the indoor space increases. Therefore, the cooling period increases in an order of the first operation mode, the second operation mode, and the third operation mode. For example, a period taken for the room temperature to stabilize at the target temperature (set temperature) is the shortest in the first operation mode, and the period taken for the room temperature to stabilize at the target temperature (set temperature) is the longest in the third operation mode.
Referring back to
The air-conditioning control unit 25 may perform the air-conditioning control in two stages. For example, the air-conditioning control may be performed based on a first target temperature in a pre-cooling period by the presence start time (specified time) and a second target temperature set after the presence of the user in the room is started. As for the second target temperature, an indoor temperature set by the user is set as the target temperature (for example, 27° C.). As for the first target temperature, for example, an indoor temperature of 28.5° C. is set as the indoor temperature at which the operation load of the air-conditioning apparatus 2 is smaller than that of the second target temperature and the comfort is not greatly deteriorated. The target temperature stored in the setting information DB 14 described above corresponds to the first target temperature.
[Process Flows]
A process performed by the control apparatus 10 described above will be described next. An overall process, a parameter acquisition process, and a selection process will be described herein.
(Overall Process)
The setting unit 22 of the control apparatus 10 then sets the presence start time of the user (specified time) based on the past history or a manual setting made by the user (S103). The setting unit 22 subsequently sets an operation target based on the past history or a manual setting made by the user (S104). The operation target is, for example, the first target temperature, the second target temperature, or the like.
The selection unit 24a of the control apparatus 10 then performs the selection process (S105). Thereafter, the calculation unit 24b sets the pre-cooling operation start time by using the result of the calculation of the cooling period (S106). When the pre-cooling operation start time is reached (S107: Yes), the air-conditioning control unit 25 starts the pre-cooling operation (S108).
Upon an elapse of a certain period thereafter (S109: Yes), the air-conditioning control unit 25 of the control apparatus 10 determines whether the user is present in the room 1 by using the information acquired from the sensor 4 installed in the room 1 or the like (S110).
If the user is present in the room (S110: Yes), the air-conditioning control unit 25 performs operation control to maintain the state in a second state (S111). For example, the air-conditioning control unit 25 instructs the air-conditioning apparatus 2 to perform cooling or the like such that the room temperature reaches the second target temperature. The air-conditioning apparatus 2 performs cooling or the like in accordance with the instruction from the air-conditioning control unit 25.
If the air-conditioning control unit 25 accepts a stop instruction from the user or the like thereafter (S112: Yes), the air-conditioning control unit 25 stops the operation of the air-conditioning apparatus 2 (S113). The air-conditioning apparatus 2 may directly accept the stop instruction from the user, or the air-conditioning control unit 25 may accept the stop instruction via the air-conditioning apparatus 2, a communication device, or the like.
On the other hand, if the user is not present in the room 1 in S110 (S110: No), the air-conditioning control unit 25 continues the pre-cooling operation (S114). Thereafter, the air-conditioning control unit 25 determines whether the state of the indoor space has become the first state (S115). For example, the air-conditioning control unit 25 acquires the room temperature or the like from the air-conditioning apparatus 2, and determines whether the room temperature has reached the first target temperature.
If the state of the indoor space has become the first state (S115: Yes), the air-conditioning control unit 25 performs operation control for maintaining the first state (S116). For example, the air-conditioning control unit 25 instructs the air-conditioning apparatus 2 to perform cooling or the like so as to maintain the room temperature at the first target temperature. The air-conditioning apparatus 2 performs cooling control or the like in accordance with the instruction from the air-conditioning control unit 25.
On the other hand, if the state of the indoor space has not become the first state (S115: No), the air-conditioning control unit 25 causes the air-conditioning apparatus 2 to operate at a fixed capacity until a period of the presence start time passes (S117).
If the presence of the user in the room is not detected and the period of the presence start time has not passed (S118: No), the control apparatus 10 repeats S109 and subsequent steps. If the control apparatus 10 determines that the period of the presence start time has passed without detection of the user's presence in the room (S118: Yes), the control apparatus 10 determines that the user will not be in the room thereafter, stops the operation of the air-conditioning apparatus 2, and ends the pre-cooling operation (S119).
(Parameter Acquisition Process)
If the air-conditioning apparatus 2 is stopped (S202: No), the parameter calculation unit 23 calculates the heat storage factor (σ) (S203). If the air-conditioning apparatus 2 is in operation (S202: Yes), the parameter calculation unit 23 calculates the cooling capacity (βW) of the air-conditioning apparatus 2 (S204). The parameter calculation unit 23 then stores the calculated parameter in the parameter DB 15 (S205).
(Selection Process)
If the condition that “the current room temperature is higher than the average room temperature of the past by the threshold or more” is not satisfied (S301: No), the selection unit 24a selects the first operation mode and the calculation unit 24b calculates the cooling period by using the calculation equation corresponding to the first operation mode (S302).
On the other hand, if the condition that “the current room temperature is higher than the average room temperature of the past by the threshold or more” is satisfied (S301: Yes), the selection unit 24a determines whether the current room temperature is higher than the outdoor temperature (S303).
If the current room temperature is lower than the outdoor temperature (S303: No), the selection unit 24a selects the second operation mode and the calculation unit 24b calculates the cooling period by using the calculation equation corresponding to the second operation mode (S304).
If the current room temperature is higher than the outdoor temperature (S303: Yes), the selection unit 24a selects the third operation mode and the calculation unit 24b calculates the cooling period by using the calculation equation corresponding to the third operation mode (S305).
[Advantages]
As described above, the control apparatus 10 may more accurately estimate the cooling period taken for the temperature to stabilize than with a common method, by using the cooling capacity (βW) of the air-conditioning apparatus 2 that is calculated in consideration of the heat storage factor σ (=αβ) and the characteristics of the room 1. For example, when pre-cooling is started in the nighttime, pre-cooling is started earlier than in the daytime because heat dissipation from the outer wall is to be taken into consideration. When pre-cooling is performed in the daytime, heat dissipation to the indoor space does not have to be taken into consideration in pre-cooling. Thus, the temperature reaches the target temperature by the specified time even if pre-cooling is started later than in the nighttime.
While the first embodiment of the present disclosure has been described above, the present disclosure may be carried out in various different embodiments other than the first embodiment described above.
[Target Space]
In the first embodiment described above, a room of a company or the like has been described as an example; however, the target space is not limited thereto. For example, various spaces such as the inside of a train, a car, or the like, a machine room, and the inside of a plane may be set as the target space.
[Control Apparatus]
In the first embodiment, the example has been described in which the control apparatus 10 and the air-conditioning apparatus 2 are realized as different apparatuses; however, the configuration is not limited thereto. For example, even if the air-conditioning apparatus 2 is an apparatus including the control apparatus 10, the air-conditioning apparatus 2 may perform processing in substantially the same manner. The control apparatus 10 may include the above-described various sensors such as the sensor 4. The specific method of the air-conditioning control is an example, and various known methods may be adopted.
[Cloud]
The air-conditioning control described above may be realized by using a cloud system.
In this way, distributed processing may be realized, and a reduction in the operation rate or the data area of the processor of the cloud server may be realized. The air-conditioning control may be performed in real time by estimating the heat storage factor at the edge server. The control apparatus 10 described above may cause a microcomputer or the like included in a remote control of the air-conditioning apparatus 2 to download data of an operation plan and cause the remote control to perform automatic control according to the operation plan.
[Operation Modes]
In the first embodiment, the example has been described in which one of the three operation modes is selected; however, the configuration is not limited thereto. For example, the operation mode may be selected from among two operation modes (the first operation mode and the second operation mode) depending on whether the room temperature is affected by the outside. In the first embodiment, the example has been described in which the air-conditioning control is performed in two stages; however, the configuration is not limited thereto. One-stage control for performing air-conditioning control such that the room temperature reaches the target temperature by the presence start time may be adopted. The cooling period may be statically set without using the calculation equation corresponding to each mode such that the cooling period in the first operation mode is 10 minutes, the cooling period in the second operation mode is 15 minutes, and the cooling period in the third operation mode is 20 minutes.
[Application to Heating]
In the first embodiment, cooling (pre-cooling) has been described as an example; however, heating (pre-heating) may also be performed in the similar manner. In the case of heating, a situation opposite to that of cooling occurs because of heat dissipation from the outer wall having accumulated the heat to the indoor space. For example, in a time period (c in
[System]
The processing procedures, the control procedures, the specific names, and the information including the various kinds of data and parameters cited in the specification and drawings described above may be arbitrarily changed unless otherwise specified. The specific examples, distributions, numerical values, and so on described in the embodiments are merely examples and may be arbitrarily changed.
Each of the components of the apparatuses and devices illustrated in the drawings is a functional concept and does not necessarily have to be physically configured as illustrated. For example, the specific configuration regarding the dispersion and integration of each of the apparatuses and devices is not limited to the illustrated one. For example, all or some of the apparatuses and devices may be configured to be distributed or integrated functionally or physically in arbitrary units depending on various loads and usage conditions. In addition, all or arbitrary some of processing functions performed by each of the apparatuses and devices may be implemented by a CPU and a program to be analyzed and executed by the CPU, or may be implemented as hardware by wired logic.
[Hardware]
The communication device 10a is a network interface card or the like and performs communication with another server. The HDD 10b stores a program for causing the functional units illustrated in
The processor 10d reads, from the HDD 10b or the like, a program for causing substantially the same process as that of each of the processing units illustrated in
As described above, the control apparatus 10 operates as an information processing apparatus that carries out a control method by reading and executing a program. The control apparatus 10 may implement functions that are substantially the same as those of the embodiments described above by reading the program from a recording medium with a medium reading apparatus and by executing the read program. The program described in other embodiments is not limited to a program that is executed by the control apparatus 10. For example, the present disclosure may also be applied to cases where another computer or a server executes the program and where another computer and a server execute the program in cooperation with each other.
The program may be distributed via a network such as the Internet. The program may recorded on a computer-readable recording medium such as a hard disk, a flexible disk (FD), a compact disc read-only memory (CD-ROM), a magneto-optical disk (MO), a digital versatile disc (DVD), or the like, and may be executed after being read from the recording medium by a computer.
All examples and conditional language provided herein are intended for the pedagogical purposes of aiding the reader in understanding the invention and the concepts contributed by the inventor to further the art, and are not to be construed as limitations to such specifically recited examples and conditions, nor does the organization of such examples in the specification relate to a showing of the superiority and inferiority of the invention. Although one or more embodiments of the present invention have been described in detail, it should be understood that the various changes, substitutions, and alterations could be made hereto without departing from the spirit and scope of the invention.
Number | Date | Country | Kind |
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JP2018-199238 | Oct 2018 | JP | national |
Number | Name | Date | Kind |
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20150233594 | Abe | Aug 2015 | A1 |
20190017721 | Motodani et al. | Jan 2019 | A1 |
Number | Date | Country |
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2013-190164 | Sep 2013 | JP |
2013190164 | Sep 2013 | JP |
2015173868 | Nov 2015 | WO |
2017134847 | Aug 2017 | WO |
Entry |
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JP2013190164A Translation (Year: 2013). |
JPOA—Office Action of Japanese Patent Application No. 2018-199238 dated Jul. 5, 2022 with Machine Translation. |
Number | Date | Country | |
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20200124309 A1 | Apr 2020 | US |