Air conditioning system and control method
The air conditioning system optimizes outside air introduction using predicted temperatures and specific enthalpies to enhance energy-saving effects by minimizing thermal loads and adjusting air volumes, addressing the limitations of conventional systems.
Patent Information
- Application Number
- JP2024023189
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-19
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2044-02-19
AI Technical Summary
Conventional air conditioning systems that introduce outside air based on temperature differences between indoors and outdoors have limited energy-saving effects, particularly in commercial facilities where air conditioning is not operated at night, missing opportunities to utilize low-temperature outside air.
An air conditioning system that includes a control unit using predicted temperature or specific enthalpy of outside air to optimize the timing and location of outside air introduction, adjusting the air conditioner to introduce outside air with the smallest thermal load into the air-conditioned space.
Enhances energy-saving effects by introducing outside air at optimal temperatures or specific enthalpies, reducing energy consumption and improving efficiency by minimizing thermal loads and adjusting air volumes based on diurnal temperature differences.
Smart Images

Figure 2025126777000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an air conditioning system that introduces outside air into an air-conditioned space. [Background technology]
[0002] Conventionally, in an air conditioning system that conditions an air-conditioned space that has an opening to the outdoors, when the outdoor air temperature is on the target side of temperature adjustment relative to the temperature of the air-conditioned space, the air conditioning system has been controlled so that air flows into the air-conditioned space from the opening (see, for example, Patent Document 1). Such a method can achieve energy savings. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2020-115053 Summary of the Invention [Problem to be solved by the invention]
[0004] However, conventional air conditioning systems determine whether to introduce outside air depending on the temperature difference between indoors and outdoors at the time of control. This poses a problem in that the energy-saving effect is limited. For example, in commercial facilities where the air conditioning is not operated at night, the low-temperature outside air in the early morning in summer cannot be introduced into the air-conditioned space, and opportunities to introduce outside air are limited.
[0005] The present invention has been made to solve the above-mentioned problems, and aims to provide an air conditioning system or the like that can introduce outside air to further enhance the energy-saving effect. [Means for solving the problem]
[0006] In order to achieve the above-mentioned object, an air conditioning system according to one embodiment of the present invention comprises an air conditioning device that introduces outside air into an air-conditioned space, a first acquisition unit that acquires a predicted temperature or predicted specific enthalpy of the outside air, and a control unit that controls the timing of the air conditioning device introducing outside air into the air-conditioned space using the predicted temperature or predicted specific enthalpy of the outside air acquired by the first acquisition unit, and the control unit controls the air conditioning device so that the outside air that has the smallest thermal load on the air-conditioned space is introduced into the air-conditioned space.
[0007] With this configuration, it becomes possible to introduce outside air at an optimum temperature or optimum specific enthalpy into the air-conditioned space, thereby further increasing the energy-saving effect.
[0008] In addition, in an air conditioning system according to one aspect of the present invention, the air conditioning device is capable of introducing outside air taken in through a plurality of outside air inlets located at different positions into the air-conditioned space, and further includes a second acquisition unit that acquires the current temperature or current specific enthalpy of the outside air at each of the plurality of outside air inlets, and the control unit may control the air conditioning device so that, when the outside air is introduced into the air-conditioned space by the air conditioning device, the outside air taken in through the outside air inlet that has the smallest heat load on the air-conditioned space is introduced into the air-conditioned space using the current temperature or current specific enthalpy of the outside air acquired by the second acquisition unit.
[0009] With this configuration, it is possible to introduce outside air into the air-conditioned space from the outside air inlet with the most suitable temperature or specific enthalpy among the multiple outside air inlets, thereby further improving the energy saving effect.
[0010] In addition, an air conditioning system according to one aspect of the present invention may further include a third acquisition unit that acquires the temperature or specific enthalpy of the air-conditioned space, and the control unit may control the air conditioning device so that outside air is introduced into the air-conditioned space within a range in which the temperature or specific enthalpy acquired by the third acquisition unit does not exceed a target value in the direction of adjustment of the temperature or specific enthalpy.
[0011] With this configuration, for example, when cooling the air-conditioned space and the temperature of the outside air is lower than the target temperature of the air-conditioned space, it is possible to prevent excessive outside air from being taken into the air-conditioned space, thereby reducing the energy required to introduce outside air.
[0012] In addition, in an air conditioning system according to one embodiment of the present invention, the control unit may control the air conditioning device so that the amount of outside air introduced into the air-conditioned space during the outside air introduction period increases the greater the daily difference in predicted temperature or predicted specific enthalpy acquired by the first acquisition unit.
[0013] This configuration allows for the introduction of more outside air when the effectiveness of introducing outside air is high. For example, even if night purging is performed uniformly in summer, energy savings may not be achieved. This is because the outdoor temperature may not drop significantly at night or rise significantly during the day. If more outside air is introduced when introducing outside air is not effective, extra energy will be consumed to introduce the outside air. However, by adjusting the amount of outside air introduced according to the diurnal difference in the predicted outside air temperature or predicted specific enthalpy, such extra energy consumption can be reduced.
[0014] Furthermore, a control method according to one aspect of the present invention is a control method for an air conditioning device that introduces outside air into an air-conditioned space, and includes the steps of acquiring a predicted temperature or predicted specific enthalpy of the outside air, and controlling the timing of introducing the outside air into the air-conditioned space by the air conditioning device using the acquired predicted temperature or predicted specific enthalpy of the outside air, and in the step of controlling the timing of introducing the outside air, includes the step of controlling the air conditioning device so that the outside air that has the smallest thermal load on the air-conditioned space is introduced into the air-conditioned space. [Effects of the Invention]
[0015] According to an air conditioning system or the like according to one aspect of the present invention, it becomes possible to introduce outside air of an optimum temperature or specific enthalpy into an air-conditioned space, thereby further enhancing the energy-saving effect. [Brief explanation of the drawings]
[0016] [Figure 1] FIG. 1 is a schematic diagram showing the configuration of an air conditioning system according to an embodiment of the present invention. [Figure 2] FIG. 2 is a functional block diagram showing a configuration related to control of the air conditioning system according to the embodiment. [Figure 3] FIG. 2 is an external perspective view showing an example of a building in which an air-conditioned space exists according to the embodiment. [Figure 4] FIG. 10 is a diagram showing a change in predicted outside air temperature in the embodiment. [Figure 5] A flowchart showing the operation of the air conditioning system according to the embodiment. [Figure 6] FIG. 10 is a functional block diagram showing another example of the configuration related to control of the air conditioning system according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0017] An air conditioning system and a method for controlling an air conditioner according to the present invention will be described below using embodiments. In the following embodiments, components and steps denoted by the same reference numerals are the same or equivalent, and repeated description may be omitted. The air conditioning system according to this embodiment uses a predicted temperature of the outside air to introduce outside air at a temperature suitable for introduction into the air-conditioned space.
[0018] FIG. 1 is a schematic diagram showing the configuration of an air conditioning system 1 according to this embodiment, and FIG. 2 is a functional block diagram showing the configuration related to control of the air conditioning system 1. The air conditioning system 1 includes an air conditioner 10, a first acquisition unit 20, a second acquisition unit 30, and a control unit 40, and may further include a duct 61 for supply air (SA) to the air-conditioned space 3 and a duct 62 for return air (RA) from the air-conditioned space 3, as necessary. The air-conditioned space 3 is a space to be air-conditioned by the air-conditioning system 1. The air-conditioned space 3 is not particularly limited, and may be, for example, an office, a commercial facility, a store, a station, an airport, an underground mall, or the like.
[0019] The air conditioner 10 introduces outside air (OA) taken in through an outside air inlet into the air-conditioned space 3. In this embodiment, as shown in FIG. 1 , a case will be mainly described in which the air conditioner 10 can introduce outside air OA1 to OA3 taken in through three outside air inlets 51 to 53, respectively, into the air-conditioned space 3. The air conditioner 10 may also adjust the temperature of the air supplied to the air-conditioned space 3, for example. In this embodiment, a case will mainly be described in which the air conditioner 10 both introduces outside air into the air-conditioned space 3 and adjusts the temperature of the air in the air-conditioned space 3.
[0020] The outdoor air inlets 51-53 are intakes for taking outdoor air into the ducts 14b-14d. The outdoor air inlets 51-53 may be located at different positions, for example. The different positions may be different positions in at least one of the vertical and horizontal directions. As an example, as shown in FIG. 3 , the outdoor air inlets 51-53 may be located at different positions in a building 5 containing the air-conditioned space 3. The outdoor air inlets 51-53 are preferably located so that the outdoor air temperature differs at each position. Therefore, for example, when the outdoor air inlets 51-53 are located on the wall of the building 5 containing the air-conditioned space 3, at least two of the outdoor air inlets 51-53 may be located on wall surfaces facing different directions. Specifically, the outdoor air inlet 51 may be located on the north-facing wall of the building 5, and the outdoor air inlet 53 may be located on the west-facing wall of the building 5. Although the present embodiment will be described mainly with reference to a case where three outside air inlets 51 to 53 are used, the number of outside air inlets may be, for example, one, or any number equal to or greater than two. Ideally, it is preferable to provide an outside air inlet on each wall facing each direction of the building. It is even more preferable, for example, to provide outside air inlets at different vertical positions on each wall. As an example, an outside air inlet may be provided at an upper position and a lower position on each of the north-facing, east-facing, south-facing, and west-facing walls of the building. In this case, the number of outside air inlets is eight.
[0021] For example, the air conditioner 10 may include fans 11 and 12, a coil 13, a return air duct 14a, outside air introduction ducts 14b to 14d, an exhaust air (EA) duct 14e, and dampers 15a to 15e provided in the ducts 14a to 14e, respectively. For example, one end of the exhaust air duct 14e may be connected to the return air duct 14a at a position between the damper 15a and the fan 12.
[0022] The blower 11 sends return air or outside air to the air-conditioned space 3. In addition, when the temperature or humidity of the air is adjusted by the coil 13, the adjusted air is sent to the air-conditioned space 3 by the blower 11.
[0023] The blower 12 exhausts the return air from the air-conditioned space 3 and / or sends it to the blower 11. The ratio of exhaust air to sending it to the blower 11 may be changed by adjusting the airflow rates of the dampers 15a and 15e, for example.
[0024] Coil 13 is a heat exchanger for adjusting the temperature of the air. Coil 13 may be supplied with cold water or hot water from heat source equipment 9 having, for example, a boiler or a refrigerator. When cooling is performed by air conditioner 10, cold water may be supplied to coil 13 from heat source equipment 9, and when heating is performed by air conditioner 10, hot water may be supplied to coil 13 from heat source equipment 9. Coil 13 may also adjust the humidity of the air, i.e., dehumidify, for example. In this case, cold water at a temperature equal to or lower than the dew point temperature of the air passing through coil 13 may be supplied to coil 13.
[0025] The volume of supply air supplied to the air-conditioned space 3 may be adjusted, for example, by the fan 11, or by a variable air volume (VAV) device provided in the duct 61 through which the supply air passes. When adjusting the volume of air by the fan 11, the air conditioner 10 may use a fan 11 that can adjust the volume of air, such as an inverter-controlled fan 11 or a fan 11 that uses a DC motor.
[0026] The dampers 15a to 15e may be, for example, motor dampers, and the air volume may be adjusted by the control unit 40. For example, by adjusting the air volume of the dampers 15a and 15e, it is possible to change the proportion of the return air that is exhausted. Also, for example, by adjusting the air volume of the dampers 15b to 15d, it is possible to change the outside air inlet that takes in outside air and the air volume of the outside air.
[0027] The first acquisition unit 20 acquires a predicted outdoor air temperature. This predicted temperature may be a predicted air temperature at the location or area where the air-conditioned space 3 is located. The predicted temperature acquired by the first acquisition unit 20 may be, for example, a predicted air temperature for a predetermined period from the present. The predetermined period may be, for example, 24 hours or longer. It is preferable that this predetermined period includes a time period during which the temperature is suitable for introducing air into the air-conditioned space 3. The predicted outdoor air temperature acquired by the first acquisition unit 20 preferably indicates future changes in the outdoor air temperature over time, as shown in FIG. 4, for example. The predicted outdoor air temperature may be a predicted outdoor air temperature for each predetermined time period, for example, every hour. The first acquisition unit 20 may acquire the predicted outdoor air temperature from, for example, the Japan Meteorological Agency or a private company that provides weather information. As an example, the first acquisition unit 20 may acquire the predicted outdoor air temperature at the location or area where the air-conditioned space 3 is located via a communication line such as the Internet. As another example, the first acquisition unit 20 may acquire the predicted outside air temperature by predicting the outside air temperature at the location where the air-conditioned space 3 is located using weather information such as past outside air temperatures at the location where the air-conditioned space 3 is located and weather information such as future weather in the area where the air-conditioned space 3 is located.
[0028] The second acquisition unit 30 acquires the current temperature of the outside air at each of the plurality of outside air inlets 51-53. For example, the second acquisition unit 30 may acquire the current temperature of the outside air measured by the temperature sensors 31-33 arranged in the plurality of outside air inlets 51-53, respectively, from the temperature sensors 31-33. The acquisition of this current temperature may be, for example, receiving the current temperature transmitted from the temperature sensors 31-33 via a wired or wireless communication line. Note that, as an example, the second acquisition unit 30 may include the temperature sensors 31-33. In this case, the acquisition of the current temperature by the second acquisition unit 30 may be by measuring the current temperature.
[0029] It is preferable that the temperature sensors 31 to 33 measure the temperature of the outside air near the outside air inlets 51 to 53. For example, the temperature sensors 31 to 33 may be disposed inside the ducts 14b to 14d near the outside air inlets 51 to 53, or may be disposed outside the ducts 14b to 14d near the outside air inlets 51 to 53.
[0030] The control unit 40 uses the predicted outside air temperature acquired by the first acquisition unit 20 to control the timing of introducing outside air into the air-conditioned space 3 by the air conditioner 10. Based on the predicted outside air temperature, the control unit 40 can identify the timing at which the outside air will have the most favorable temperature to introduce into the air-conditioned space 3. Then, based on the identification result, the control unit 40 may control the air conditioner 10 so that the outside air at that favorable temperature is introduced into the air-conditioned space 3.
[0031] The control unit 40 may control the air conditioner 10 so that the outside air with the smallest heat load on the air-conditioned space 3 is introduced into the air-conditioned space 3. The outside air with the smallest heat load on the air-conditioned space 3 may be considered to be the outside air that, when introduced into the air-conditioned space 3, can minimize the heat load on the air-conditioned space 3. More specifically, for example, when cooling the air-conditioned space 3, the control unit 40 may control the air conditioner 10 so that the coldest outside air is introduced into the air-conditioned space 3, and when heating the air conditioner 10, the control unit 40 may control the air conditioner 10 so that the hottest outside air is introduced into the air-conditioned space 3. The case when cooling the air-conditioned space 3 may refer to a season when cooling is performed on the air-conditioned space 3. Therefore, when the control unit 40 controls the air conditioner 10 to introduce outside air, the air temperature does not necessarily need to be adjusted by the air conditioner 10. The same applies to a case when heating the air-conditioned space 3.
[0032] Controlling the air conditioner 10 so that the outside air with the lowest temperature is introduced into the air-conditioned space 3 may mean controlling the air conditioner 10 so that the outside air during the time period with the lowest predicted temperature is introduced into the air-conditioned space 3. Note that because this introduction of outside air is performed based on the predicted temperature, it is possible that the outside air with the lowest temperature actually is not introduced into the air-conditioned space 3, but it is considered possible to introduce outside air with at least a temperature close to the lowest into the air-conditioned space 3. The same applies when controlling the air conditioner 10 so that the outside air with the highest temperature is introduced into the air-conditioned space 3.
[0033] More specifically, when the acquired predicted outside air temperature is that shown in FIG. 4 and the air-conditioned space 3 is being cooled, the control unit 40 identifies the time point T1 at which the temperature is lowest among the predicted temperatures. Then, at the identified time point T1, the control unit 40 may control the air conditioner 10 so that outside air is introduced into the air-conditioned space 3. Furthermore, when the acquired predicted outside air temperature is that shown in FIG. 4 and the air-conditioned space 3 is being heated, the control unit 40 identifies the time point T2 at which the temperature is highest among the predicted temperatures. Then, at the identified time point T2, the control unit 40 may control the air conditioner 10 so that outside air is introduced into the air-conditioned space 3.
[0034] Furthermore, the control unit 40 may use the current temperature of the outside air acquired by the second acquisition unit 30 to control the air conditioner 10 so that, when the air conditioner 10 introduces outside air into the air-conditioned space 3, the outside air is introduced into the air-conditioned space 3 through an outside air inlet that has the smallest heat load on the air-conditioned space 3. More specifically, for example, when introducing outside air into the air-conditioned space 3, the control unit 40 may identify, from among the multiple outside air inlets 51 to 53, an outside air inlet that has the most suitable outside air temperature, and control the air conditioner 10 so that the outside air is introduced into the air-conditioned space 3 through the identified outside air inlet. For example, when cooling the air-conditioned space 3, the control unit 40 may control the air conditioner 10 so that, when the air conditioner 10 introduces outside air into the air-conditioned space 3, the outside air is introduced into the air-conditioned space 3 through an outside air inlet that has the lowest current temperature of the outside air acquired by the second acquisition unit 30. Furthermore, for example, when heating is performed on the air-conditioned space 3, the control unit 40 may control the air-conditioning unit 10 so that when the air-conditioning unit 10 introduces outside air into the air-conditioned space 3, the outside air taken in from the outside air inlet having the highest current temperature of the outside air acquired by the second acquisition unit 30 is introduced into the air-conditioned space 3.
[0035] More specifically, when cooling the air-conditioned space 3 and the current outside air temperatures at the outside air inlets 51 to 53 acquired when the outside air is introduced into the air-conditioned space 3 are 21°C, 22°C, and 23°C, respectively, the outside air inlet 51 with the lowest outside air temperature may be selected as the outside air inlet for actually taking in the outside air, and the air conditioner 10 may be controlled so that the outside air is introduced from the selected outside air inlet 51. In this case, for example, the damper 51b may be opened and the dampers 51c and 51d may be closed, so that the outside air is introduced only from the outside air inlet 51.
[0036] Because the multiple outside air inlets 51 to 53 are provided at different positions, there is a possibility that the outside air temperature will differ from one another at the outside air inlets 51 to 53. Therefore, by introducing outside air into the air-conditioned space 3 from the outside air inlet with the most suitable outside air temperature, it becomes possible to introduce outside air that is more suitable for air conditioning into the air-conditioned space 3, thereby further promoting energy conservation.
[0037] Here, when outside air is being introduced into the air-conditioned space 3 as described above, for example, damper 15a of return air duct 14a may be closed and damper 15e of exhaust air duct 14e may be open. By doing so, the air in the air-conditioned space 3 can be efficiently replaced with outside air. Also, when outside air is being introduced into the air-conditioned space 3, for example, the air volumes of fans 11 and 12 may be approximately the same.
[0038] Furthermore, when outdoor air is introduced into the air-conditioned space 3 as described above, it is usually preferable that a larger proportion of outdoor air is introduced into the air-conditioned space 3. For example, it is preferable that 30% or more of the volume of the air-conditioned space 3 be replaced with outdoor air, more preferably that 50% or more be replaced with outdoor air, even more preferably that 70% or more be replaced with outdoor air, and even more preferably that 90% or more be replaced with outdoor air.
[0039] On the other hand, when the daily range of the predicted temperature, i.e., the difference between the maximum and minimum temperatures in a day, is small, there is little benefit to introducing outside air into the air-conditioned space 3 all at once during a specific period. Therefore, the control unit 40 may control the air conditioner 10 so that the amount of outside air introduced into the air-conditioned space 3 during the period when the outside air is introduced increases, the larger the daily range of the predicted temperature acquired by the first acquisition unit 20. In this case, the smaller the daily range of the predicted temperature acquired by the first acquisition unit 20, the less outside air will be introduced into the air-conditioned space 3 during the period when the outside air is introduced.
[0040] The daily range of the predicted temperature may be, for example, the value obtained by subtracting the minimum temperature H1 from the maximum temperature H2 when the predicted temperature is as shown in FIG. 4. The daily range is typically a positive real number. For example, the control unit 40 may calculate the daily range using the predicted temperature acquired by the first acquisition unit 20, and use information correlating the daily range with the amount of outdoor air introduced into the air-conditioned space 3 to identify the amount of outdoor air to be introduced that corresponds to the calculated daily range, and control the air conditioner 10 so that outdoor air corresponding to the identified amount is introduced into the air-conditioned space 3. The information correlating the daily range with the amount of outdoor air introduced into the air-conditioned space 3 may be, for example, a table correlating the two, or a function for calculating the amount of outdoor air to be introduced from the daily range.
[0041] Next, the operation of the air conditioning system 1 will be described with reference to the flowchart of FIG. (Step S101) The control unit 40 determines whether to perform processing to determine the timing of introducing outside air. If the processing to determine the timing of introducing outside air is to be performed, the process proceeds to step S102; if not, the process proceeds to step S104. The control unit 40 may, for example, periodically determine to perform processing to determine the timing of introducing outside air. As an example, the control unit 40 may determine to perform processing to determine the timing of introducing outside air at a predetermined time (for example, midnight or 2:00 AM) every day.
[0042] (Step S102) The first acquisition unit 20 acquires the predicted outside air temperature.
[0043] (Step S103) The control unit 40 determines the time to introduce outside air using the predicted outside air temperature acquired in step S102. For example, in the cooling season, the time period when the predicted outside air temperature is lowest may be determined as the time to introduce outside air, and in the heating season, the time period when the predicted outside air temperature is highest may be determined as the time to introduce outside air. Then, the process returns to step S101. Note that the result of the determination of the time to introduce outside air may be expressed as a period from the time of determination, such as "three hours later," or may be expressed as a time, such as "5:00 AM." In the former case, for example, a timer may start timing from the time of determination.
[0044] (Step S104) The control unit 40 determines whether the time to introduce outside air determined in step S103 has arrived. If the time to introduce outside air has arrived, the process proceeds to step S105; if not, the process returns to step S101. For example, if the determined result of the time to introduce outside air is a period from the determined time, such as "three hours later," and a timer has been measuring time since the determined time, the control unit 40 may determine that the time to introduce outside air has arrived when the timer value reaches the determined result. Alternatively, for example, if the determined result of the time to introduce outside air is a time, such as "5:00 AM," the control unit 40 may determine that the time to introduce outside air has arrived when the time on a clock unit (not shown) reaches the determined result.
[0045] (Step S105) The second acquisition unit 30 acquires the current temperature of the outside air at each of the plurality of outside air inlets 51-53.
[0046] (Step S106) The control unit 40 determines the outdoor air inlet corresponding to the most suitable temperature among the current temperatures acquired in step S105 as the outdoor air inlet to be used for introducing outdoor air. For example, in the cooling season, the outdoor air inlet corresponding to the lowest outdoor air temperature may be determined as the outdoor air inlet to be used for introducing outdoor air, and in the heating season, the outdoor air inlet corresponding to the highest outdoor air temperature may be determined as the outdoor air inlet to be used for introducing outdoor air.
[0047] (Step S107) The control unit 40 controls the air conditioner 10 so that outside air is introduced into the air-conditioned space 3 from the outside air inlet determined in step S106. By this control, for example, a predetermined volume of outside air may be introduced into the air-conditioned space 3. Then, the process returns to step S101.
[0048] Although not included in the flowchart of FIG. 5, the temperature of the air supplied to the air-conditioned space 3 may be adjusted by the air conditioner 10 as appropriate. This temperature adjustment may be performed so that the temperature of the air in the air-conditioned space 3 becomes a desired temperature. The air temperature adjustment may be performed, for example, simultaneously with the introduction of outside air, or may be performed separately from the introduction of outside air. Furthermore, the order of the processing in the flowchart of FIG. 5 is an example, and the order of the steps may be changed as long as the same results are obtained. Furthermore, in the flowchart of FIG. 5, the processing may end due to an interrupt such as power off or end of processing.
[0049] Next, the operation of the air conditioning system 1 according to this embodiment will be described using a specific example. Note that in this specific example, control in the season when the air-conditioned space 3 is cooled will be mainly described.
[0050] First, at midnight, the control unit 40 determines that processing for determining the timing of introducing outside air should be performed, and sends an instruction to the first acquisition unit 20 to acquire a predicted outside air temperature (step S101). Upon receiving this instruction, the first acquisition unit 20 accesses a server that provides weather information via the Internet, acquires from the server a predicted temperature, which is a prediction result of the air temperature for one day corresponding to the area where the air-conditioned space 3 is located, and sends this to the control unit 40 (step S102). The predicted temperature is assumed to be, for example, the one shown in FIG. 4.
[0051] Upon receiving the predicted temperature, the control unit 40 determines the time T1 of the lowest temperature as the time to introduce outside air (step S103). Assume that this time T1 is, for example, 5:00 AM. The control unit 40 may store, for example, "5:00 AM," which is the time to introduce outside air, in a memory unit or the like.
[0052] Thereafter, at 5:00 AM, which is the time to introduce outside air, the control unit 40 determines that outside air should be introduced into the air-conditioned space 3, and instructs the second acquisition unit 30 to acquire the current temperature for each of the plurality of outside air inlets 51-53 (step S104). Upon receiving this instruction, the second acquisition unit 30 acquires the current temperatures of the outside air at the outside air inlets 51-53 from the temperature sensors 31-33 arranged at the plurality of outside air inlets 51-53, respectively, and passes these values to the control unit 40 (step S105). It is assumed that the current temperatures acquired by the temperature sensors 31-33 are 21°C, 22°C, and 23°C, respectively.
[0053] Upon receiving the current temperatures, the control unit 40 determines the outdoor air inlet 51 corresponding to 21°C, the lowest of the received temperatures, as the outdoor air inlet to be used to introduce outdoor air (step S106). The control unit 40 then controls the air conditioner 10 so that outdoor air is introduced into the air-conditioned space 3 through the outdoor air inlet 51 (step S107). It is assumed that, at this point, the temperature of the air supplied to the air-conditioned space 3 has not been adjusted. In this case, the control unit 40 controls the dampers 15a, 15c, and 15d to be closed and the dampers 15b and 15e to be opened. The control unit 40 also operates the fans 11 and 12 to introduce outdoor air OA1 from the outdoor air inlet 51 into the air-conditioned space 3 and to exhaust all return air from the air-conditioned space 3. This introduction of outdoor air may be continued, for example, until a predetermined volume of outdoor air has been introduced into the air-conditioned space 3.
[0054] As described above, the air conditioning system 1 according to this embodiment can introduce outside air at an optimal temperature into the air-conditioned space 3. As a result, air conditioning can be performed more efficiently. For example, the introduction of outside air can further reduce the energy consumption of the heat source device 9 when air-conditioning the air-conditioned space 3, thereby further enhancing the energy-saving effect. Furthermore, when performing air conditioning such as cooling in the air-conditioned space 3, a certain amount of outside air must be introduced into the air-conditioned space 3 for ventilation, even if the outside air temperature is not suitable for air conditioning. As a result, there is a problem that the efficiency of the air conditioning decreases. On the other hand, for example, in the season when air conditioning is performed, by introducing a large amount of outside air with the lowest temperature into the air-conditioned space 3 in advance in the early morning, the amount of outside air introduced can be reduced when cooling is performed during the daytime. In other words, by introducing outside air at an optimal temperature, the amount of ventilation during normal air conditioning can be reduced, thereby improving the efficiency of the air conditioning.
[0055] Furthermore, by introducing outside air from the outside air inlet with the most suitable current temperature among the multiple outside air inlets, energy conservation can be further promoted. Also, for example, if a large amount of outside air is introduced when the daily temperature difference is small, the fans 11 and 12 will operate unnecessarily, which will result in a countermeasure to energy conservation. However, by increasing the amount of outside air introduced as the predicted daily temperature difference increases, such a situation can be prevented.
[0056] In the present embodiment, the case where the outdoor air inlet through which the outdoor air is introduced is determined using the current temperature of the outdoor air at each of the plurality of outdoor air inlets 51-53 has been mainly described, but this is not necessarily the case. The outdoor air inlet through which the outdoor air is introduced may also be determined using the current specific enthalpy of the outdoor air at each of the plurality of outdoor air inlets 51-53. In this case, the second acquisition unit 30 may acquire the current specific enthalpy of the outdoor air at each of the plurality of outdoor air inlets 51-53 instead of the current temperature of the outdoor air at each of the plurality of outdoor air inlets 51-53. The specific enthalpy can be calculated using, for example, two values from among the dry-bulb temperature, the wet-bulb temperature, the relative humidity, and the absolute humidity. Therefore, the second acquisition unit 30 may acquire current values measured by two types of sensors (e.g., a temperature sensor for measuring dry-bulb temperature and a humidity sensor for measuring relative humidity) arranged at each of the outdoor air inlets 51-53, and calculate the current specific enthalpy using the two acquired current values. Measurement of the current values by the two types of sensors is preferably performed near the outdoor air inlets 51-53, similar to measurement of the current temperature by the temperature sensors 31-33. Furthermore, the second acquisition unit 30 may acquire the current specific enthalpy calculated using the current values measured by the two types of sensors arranged at each of the outdoor air inlets 51-53 from a specific enthalpy acquisition device that performed the calculation. The second acquisition unit 30 may acquire the two current values from the two types of sensors or the current specific enthalpy from the specific enthalpy acquisition device by receiving transmitted information via a wired or wireless communication line, for example. As an example, the second acquisition unit 30 may have two types of sensors arranged at each of the plurality of outside air inlets 51 to 53. In this case, the second acquisition unit 30 may acquire the current specific enthalpy by measuring the current value using the two types of sensors and calculating the specific enthalpy using the measurement results.Furthermore, even when the outside air inlet for introducing the outside air is determined using the current specific enthalpy of the outside air, it is preferable that the multiple outside air inlets 51 to 53 are provided so that the specific enthalpy of the outside air at each position is different.
[0057] When the second acquisition unit 30 acquires the current specific enthalpy of the outside air at each of the multiple outside air inlets 51 to 53, the control unit 40 may use the current specific enthalpy of the outside air acquired by the second acquisition unit 30 to control the air conditioning unit 10 so that when the air conditioning unit 10 introduces the outside air into the air-conditioned space 3, the outside air taken in from the outside air inlet that has the smallest heat load of the outside air on the air-conditioned space 3 is introduced into the air-conditioned space 3. More specifically, when the air conditioning device 10 introduces outside air into the air-conditioned space 3, the control unit 40 may, for example, control the air conditioning device 10 so that, if cooling is performed on the air-conditioned space 3, the outside air is introduced into the air-conditioned space 3 through an outside air inlet having the lowest current specific enthalpy of the outside air acquired by the second acquisition unit 30, and, if heating is performed on the air-conditioned space 3, control the air conditioning device 10 so that the outside air is introduced into the air-conditioned space 3 through an outside air inlet having the highest current specific enthalpy of the outside air acquired by the second acquisition unit 30. In this way, if cooling is performed, the outside air with the lowest specific enthalpy, for example, outside air with a low temperature and humidity, can be introduced into the air-conditioned space 3, and if heating is performed, the outside air with the highest specific enthalpy, for example, outside air with a high temperature and humidity, can be introduced into the air-conditioned space 3.
[0058] Furthermore, in the present embodiment, the air conditioner 10 is capable of introducing outside air taken in through a plurality of outside air inlets 51-53 into the air-conditioned space 3, and the case where the air conditioner takes in the outside air through one of the plurality of outside air inlets 51-53 that has the optimum current temperature and current specific enthalpy of the outside air has been mainly described, but this is not necessarily the case. For example, even if the air conditioner 10 is capable of introducing outside air taken in through a plurality of outside air inlets 51-53 into the air-conditioned space 3, the air conditioner 10 may take in outside air through all of the outside air inlets 51-53. Furthermore, for example, the air conditioner 10 may take in outside air through only one outside air inlet. In these cases, the air conditioning system 1 may not be provided with, for example, the second acquisition unit 30.
[0059] Although the present embodiment has been described primarily with reference to a case where the timing of introducing outdoor air is controlled using a predicted outdoor air temperature, this is not necessarily the case. The timing of introducing outdoor air may also be controlled using a predicted outdoor air enthalpy. In this case, the first acquisition unit 20 may acquire a predicted specific enthalpy instead of the predicted temperature. As described above, the specific enthalpy can be calculated using two values, for example, of the dry-bulb temperature, the wet-bulb temperature, the relative humidity, and the absolute humidity. Therefore, the first acquisition unit 20 may acquire two values, for example, of the predicted dry-bulb temperature, the predicted wet-bulb temperature, the predicted relative humidity, and the predicted absolute humidity, and calculate the predicted specific enthalpy using the two acquired values. Alternatively, the first acquisition unit 20 may acquire the predicted specific enthalpy of outdoor air from, for example, the Japan Meteorological Agency or a private company that provides weather information. Note that the first acquisition unit 20 may acquire the predicted specific enthalpy in the same manner as described above, except that the acquisition target is changed from the predicted temperature to the predicted specific enthalpy.
[0060] Even when the predicted specific enthalpy is acquired by the first acquisition unit 20, the control unit 40 may control the air conditioner 10 so that the outdoor air with the smallest heat load on the air-conditioned space 3 is introduced into the air-conditioned space 3. More specifically, for example, when cooling the air-conditioned space 3, the control unit 40 may control the air conditioner 10 so that the outdoor air with the lowest specific enthalpy is introduced into the air-conditioned space 3, and when heating the air conditioner 10, the control unit 40 may control the air conditioner 10 so that the outdoor air with the highest specific enthalpy is introduced into the air-conditioned space 3.
[0061] Furthermore, when a predicted specific enthalpy is acquired, the control unit 40 may control the air conditioner 10 so that, for example, the greater the daily range of the predicted specific enthalpy acquired by the first acquisition unit 20, the greater the amount of outside air introduced into the air-conditioned space 3 at the time of introducing the outside air. This control is similar to the control that increases the amount of outside air introduced into the air-conditioned space 3 at the time of introducing the outside air, the greater the daily range of the predicted temperature, except that the predicted temperature becomes the predicted specific enthalpy, and detailed description thereof will be omitted.
[0062] Furthermore, in this embodiment, the introduction of outside air into the air-conditioned space 3 may be controlled according to the temperature of the air-conditioned space 3 after the introduction of the outside air. In this case, the air-conditioning system 1 may further include a third acquisition unit 50 that acquires the temperature of the air-conditioned space 3, as shown in FIG. 6 . The third acquisition unit 50 may acquire the temperature of the air-conditioned space 3 measured by a temperature sensor 51 disposed in the air-conditioned space 3 from the temperature sensor 51. This acquisition of the current temperature may be, for example, reception of the current temperature transmitted from the temperature sensor 51 via a wired or wireless communication line. As an example, the third acquisition unit 50 may include the temperature sensor 51. In this case, the acquisition of the temperature of the air-conditioned space 3 by the third acquisition unit 50 may be measurement of the temperature of the air-conditioned space 3. The temperature of the air-conditioned space 3 acquired by the third acquisition unit 50 may be, for example, a representative value of temperatures of the air-conditioned space 3 measured at multiple positions. The representative value may be, for example, an average value, a median value, a maximum value, a minimum value, or the like.
[0063] When the temperature of the air-conditioned space 3 is acquired by the third acquisition unit 50, the control unit 40 may control the air conditioner 10 to introduce outside air into the air-conditioned space 3 within a range in which the acquired temperature does not exceed a target value in the temperature adjustment direction. The temperature adjustment direction may be the temperature adjustment direction in air conditioning. For example, if cooling is performed on the air-conditioned space 3, it may be a temperature decreasing direction, and if heating is performed on the air-conditioned space 3, it may be a temperature increasing direction. Furthermore, the target value may be, for example, the same as or different from the target temperature of the air conditioner 10. For example, if cooling is performed, the outside air temperature is 20°C, and the target value in the temperature adjustment direction of the air-conditioned space 3 is set to 23°C, the control unit 40 may control the introduction of outside air by the air conditioner 10 so that the temperature of the air-conditioned space 3 becomes 23°C or higher. More specifically, when the temperature acquired by the third acquisition unit 50 reaches 23°C, the control unit 40 may stop introducing outside air into the air-conditioned space 3. In this way, it is possible to avoid introducing an excessive amount of outside air into the air-conditioned space 3, and it is possible to reduce the energy required to introduce the outside air.
[0064] In this case, too, control may be performed using specific enthalpy instead of temperature. When control using specific enthalpy is performed, the third acquisition unit 50 may acquire the specific enthalpy of the air-conditioned space 3. This acquisition of specific enthalpy may be performed, for example, in the same manner as the acquisition of specific enthalpy by the second acquisition unit 20. Furthermore, when specific enthalpy is acquired, the control unit 40 may control the air conditioner 10 so that outside air is introduced into the air-conditioned space 3 within a range in which the acquired specific enthalpy does not exceed a target value in the direction of specific enthalpy adjustment. This control is similar to the control of outside air introduction using the temperature of the air-conditioned space 3, except that the temperature is the specific enthalpy, and detailed description thereof will be omitted.
[0065] Furthermore, in the present embodiment, the case where the air conditioner 10 also adjusts the temperature of the air supplied to the air-conditioned space 3 has been mainly described, but this is not necessarily the case. The air conditioner 10 is for introducing outside air into the air-conditioned space 3, and the temperature of the air supplied to the air-conditioned space 3 may be adjusted by another air conditioner separately. In this case, the air conditioner 10 does not need to be equipped with the coil 13.
[0066] Furthermore, in the above embodiments, each process or function may be realized by centralized processing by a single device or a single system, or may be realized by distributed processing by multiple devices or multiple systems.
[0067] Furthermore, in the above embodiment, when two or more components included in the air conditioning system 1 have a communication device, an input device, etc., the two or more components may physically have a single device, or may have separate devices.
[0068] In the above embodiments, each component may be configured with dedicated hardware, or a software-implementable component may be implemented by executing a program. For example, a software-implementable component may be implemented by a program execution unit such as a CPU reading and executing a software program recorded on a recording medium such as a hard disk or semiconductor memory. During execution, the program execution unit may execute the program while accessing a storage unit or recording medium. The program may also be executed by being downloaded from a server or the like, or by being read from a predetermined recording medium (e.g., an optical disk, a magnetic disk, a semiconductor memory, etc.). The program may also be used as a program constituting a program product. The program may be executed by a single computer or multiple computers. That is, centralized processing or distributed processing may be performed.
[0069] Furthermore, the above-described embodiments are merely examples for specifically implementing the present invention, and are not intended to limit the technical scope of the present invention. The technical scope of the present invention is defined by the claims, not by the description of the embodiments, and is intended to include modifications within the literal scope of the claims and within the scope of equivalent meanings. [Explanation of symbols]
[0070] 1. Air conditioning system 3 Air-conditioned space 10 Air conditioner 20 First Acquisition Section 30 Second Acquisition Section 40 Control Unit 51~53 Outside air intake
Claims
1. an air conditioning device that introduces outside air into the air-conditioned space; a first acquisition unit that acquires a predicted temperature or a predicted specific enthalpy of the outside air; a control unit that controls a timing of introducing outside air into the air-conditioned space by the air conditioning device using the predicted temperature or predicted specific enthalpy of the outside air acquired by the first acquisition unit, The control unit controls the air conditioner so that outside air that has the smallest heat load on the air-conditioned space is introduced into the air-conditioned space.
2. the air conditioner is capable of introducing outside air taken in through a plurality of outside air inlets located at different positions into the air-conditioned space, a second acquisition unit that acquires a current temperature or a current specific enthalpy of the outside air at each of the plurality of outside air inlets; The air conditioning system of claim 1, wherein the control unit controls the air conditioning unit so that when the air conditioning unit introduces outside air into the air-conditioned space, the outside air is introduced into the air-conditioned space from an outside air inlet that has the smallest heat load on the air-conditioned space, using the current temperature or current specific enthalpy of the outside air acquired by the second acquisition unit.
3. Further, a third acquisition unit is provided that acquires a temperature or a specific enthalpy of the air-conditioned space, The air conditioning system according to claim 1, wherein the control unit controls the air conditioning device so that outside air is introduced into the air-conditioned space within a range in which the temperature or specific enthalpy acquired by the third acquisition unit does not exceed a target value in the direction of adjustment of the temperature or specific enthalpy.
4. 4. An air conditioning system as described in any one of claims 1 to 3, wherein the control unit controls the air conditioning device so that the amount of outside air introduced into the air-conditioned space at the time of introducing outside air increases, the greater the daily difference in predicted temperature or predicted specific enthalpy acquired by the first acquisition unit.
5. A control method for an air conditioning device that introduces outside air into an air-conditioned space, comprising: obtaining a predicted temperature or a predicted specific enthalpy of the outside air; and controlling a timing of introducing outside air into the air-conditioned space by the air conditioning device using the acquired predicted temperature or predicted specific enthalpy of the outside air; In the step of controlling the timing of introducing outside air, the air conditioner is controlled so that outside air that has the smallest heat load on the air-conditioned space is introduced into the air-conditioned space.
Citation Information
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