AIR-CONDITIONING CONTROL APPARATUS, VEHICLE, AND AIRCONDITIONING CONTROL METHOD
20230166579 · 2023-06-01
Inventors
Cpc classification
B60H1/00878
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00271
PERFORMING OPERATIONS; TRANSPORTING
B60H2001/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An air-conditioning control apparatus includes an electronic control unit. The electronic control unit is configured to acquire temperature information of an electronic instrument provided in a vehicle cabin. The electronic control unit is configured to control air conditioning in the vehicle cabin based on the acquired temperature information of the electronic instrument.
Claims
1. An air-conditioning control apparatus comprising an electronic control unit configured to acquire temperature information of an electronic instrument provided in a vehicle cabin, and control air conditioning in the vehicle cabin based on the acquired temperature information of the electronic instrument.
2. The air-conditioning control apparatus according to claim 1, wherein the electronic control unit is configured to store a location of the electronic instrument, and control air conditioning at the location of the electronic instrument based on the stored location of the electronic instrument.
3. The air-conditioning control apparatus according to claim 1, wherein the electronic control unit is configured to regulate a temperature in the vehicle cabin by using air flow from an air conditioner.
4. The air-conditioning control apparatus according to claim 3, wherein the electronic control unit is configured to acquire a temperature or an ambient temperature of the electronic instrument based on the temperature information of the electronic instrument, and when the temperature or the ambient temperature of the electronic instrument is higher than or equal to a predetermined first temperature, operate the air conditioner such that the air conditioner produces air flow with a temperature lower than the predetermined first temperature to the electronic instrument.
5. The air-conditioning control apparatus according to claim 3, wherein the electronic control unit is configured to acquire a temperature or an ambient temperature of the electronic instrument based on the temperature information of the electronic instrument, and when the temperature or the ambient temperature of the electronic instrument is higher than or equal to a predetermined second temperature, restrict air flow to the electronic instrument, produced by the air conditioner.
6. The air-conditioning control apparatus according to claim 3, wherein the electronic control unit is configured to acquire a temperature or an ambient temperature of the electronic instrument based on the temperature information of the electronic instrument, when the air conditioner produces cool air flow and the temperature or the ambient temperature of the electronic instrument is higher than or equal to a predetermined first temperature, operate the air conditioner such that the air conditioner produces air flow with a temperature lower than the predetermined first temperature to the electronic instrument, and when the air conditioner produces warm air flow and the temperature or the ambient temperature of the electronic instrument is higher than or equal to a predetermined second temperature, restrict air flow to the electronic instrument, produced by the air conditioner.
7. A vehicle comprising: an air conditioner configured to regulate a temperature in a vehicle cabin; an electronic instrument provided in the vehicle cabin; a sensor configured to detect temperature information of the electronic instrument; and an electronic control unit configured to acquire the temperature information of the electronic instrument, detected by the sensor, and control the air conditioner based on the acquired temperature information of the electronic instrument.
8. An air-conditioning control method executed by an electronic control unit, the air-conditioning control method comprising: acquiring temperature information of an electronic instrument provided in a vehicle cabin; and controlling air conditioning in the vehicle cabin based on the acquired temperature information of the electronic instrument.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Features, advantages, and technical and industrial significance of exemplary embodiments of the disclosure will be described below with reference to the accompanying drawings, in which like signs denote like elements, and wherein:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF EMBODIMENTS
[0027] Hereinafter, an embodiment of the disclosure will be described with reference to the accompanying drawings.
Configuration of Vehicle
[0028]
[0029] The air conditioner 3 is a device that regulates the temperature in the vehicle cabin of the vehicle 2. The air conditioner 3 includes a heat exchanger and has both heating and cooling functions. When the air conditioner 3 is set to a heating mode to use the heating function, the air conditioner 3 produces air flow (warm air flow) adjusted to a set temperature. When the air conditioner 3 is set to a cooling mode to use the cooling function, the air conditioner 3 produces air flow (cool air flow) adjusted to a set temperature. The air conditioner 3 may be configured to be able to regulate not only the temperature and rate of air flow but also the direction of air flow. In other words, the air conditioner 3 may be configured to be able to regulate the temperature in the vehicle cabin by producing air flow. The air conditioner 3 is configured to use the heating function or the cooling function based on a signal output from the ECU 6. As a more specific example, the air conditioner 3 is configured to regulate the temperature, rate, direction, and the like of air flow based on a signal output from the ECU 6.
[0030]
[0031] The electronic instrument 4 is a device provided in the vehicle cabin. The electronic instrument 4 can be disposed in, for example, a space under a seat. The electronic instrument 4 is a device that generates heat and includes, for example, an integrated circuit. The electronic instrument 4 may have a heat radiation structure so as to have a temperature lower than a predetermined upper limit temperature (an example of a first temperature) in order for the integrated circuit and the like to stably operate. The upper limit temperature is a preset threshold for determining whether the electronic instrument 4 stably operates. The upper limit temperature is set so as to be higher than a target temperature in the vehicle cabin and is, for example, higher than or equal to 70° C.
[0032]
[0033] The sensor 5 is a detector that detects temperature information of the electronic instrument 4. The sensor 5, for example, detects the temperature or heat generation amount of the electronic instrument 4 as the temperature information. The sensor 5 may be mounted on, for example, the substrate of the integrated circuit of the electronic instrument 4 as a chip. The sensor 5 may be disposed in the casing of the electronic instrument 4. The sensor 5 may be disposed on the outer surface of the casing of the electronic instrument 4 or near the electronic instrument 4. In this case, the sensor 5 detects the ambient temperature of the electronic instrument 4 as the temperature information of the electronic instrument 4. The ambient temperature is the temperature of the space in which the electronic instrument 4 is disposed. The temperature information detected by the sensor 5 is output to the ECU 6.
[0034] The ECU 6 executes control related to the air conditioner 3. The ECU 6 is an electronic control unit that includes a central processing unit (CPU), a read only memory (ROM), a random access memory (RAM), a controller area network (CAN) communication circuit, and the like. The ECU 6 is connected to a network that communicates by using, for example, the CAN communication circuit, and is connected so as to be able to communicate with components of the vehicle 2. The ECU 6, for example, inputs and outputs data by operating the CAN communication circuit based on a signal output from the CPU, stores data in the RAM, and runs a program stored in the ROM. Thus, the ECU 6 implements control related to the air conditioner 3. The ECU 6 may implement control related to the air conditioner 3 by loading a program onto the RAM and running the program loaded on the RAM. The ECU 6 may be made up of a plurality of electronic control units.
[0035] The ECU 6 includes an acquisition unit 11, a control unit 12, and a storage unit 13. The acquisition unit 11, the control unit 12, and the storage unit 13 make up the air-conditioning control apparatus 1.
[0036] The acquisition unit 11 acquires the temperature information of the electronic instrument 4. The acquisition unit 11 acquires the temperature information of the electronic instrument 4 via communication. As an example, the acquisition unit 11 acquires the temperature information of the electronic instrument 4, detected by the sensor 5.
[0037] The control unit 12 controls air conditioning in the vehicle cabin based on the temperature information of the electronic instrument 4, acquired by the acquisition unit 11. As an example, the control unit 12 controls the air conditioner 3 based on the temperature information of the electronic instrument 4. The control unit 12 may turn down heating when the temperature of the electronic instrument 4 or the ambient temperature of the electronic instrument 4 is higher than a set temperature in the vehicle cabin. Turning down heating may be, for example, for the control unit 12 to reduce the air volume or to decrease the temperature of air flow below a set temperature.
[0038] The control unit 12 may change the direction of air flow based on the temperature information of the electronic instrument 4. In this case, the control unit 12 references the storage unit 13. The storage unit 13 stores the location of the electronic instrument 4. The storage unit 13 may store the identification number of the electronic instrument 4 and the location in association with each other. For example, when an ECU with the identification number “1” is disposed in the space under a driver seat, the storage unit 13 stores the identification number “1” and space coordinates under the driver seat in association with each other. For example, when an ECU with the identification number “2” is disposed in the space under a front passenger seat, the storage unit 13 stores the identification number “2” and space coordinates under the front passenger seat in association with each other.
[0039] The control unit 12 controls air conditioning at the location of the electronic instrument 4 based on the location of the electronic instrument 4, stored in the storage unit 13. For example, when the temperature or the ambient temperature of the ECU with the identification number “2” is higher than or equal to a set temperature (an example of a second temperature) in the vehicle cabin, the control unit 12 restricts temperature-regulated air flow (warm air flow) to the ECU with the identification number “2”. Restricting air flow is to reduce the volume of air flow or to shift an object off from the direction of air flow such that the object is not hit by air flow.
[0040] When the temperature or the ambient temperature of the ECU with the identification number “2” is higher than or equal to the upper limit temperature, the control unit 12 operates the air conditioner 3 such that the air conditioner 3 produces air flow (cool air flow), of which the temperature is regulated to a temperature lower than the upper limit temperature, to the ECU with the identification number “2”.
Air-Conditioning Control Method
[0041]
[0042] As shown in
[0043] Subsequently, the air-conditioning control apparatus 1 determines whether it is during heating as a determination process (step S12). When the air-conditioning control apparatus 1 is operating in the heating mode (when, for example, a heating button is turned on by an occupant), the air-conditioning control apparatus 1 determines that it is during heating.
[0044] When the air-conditioning control apparatus 1 determines that it is during heating (YES in step S12), the air-conditioning control apparatus 1 estimates the ambient temperature as an ambient temperature estimating process (step S14). The air-conditioning control apparatus 1 estimates the ambient temperature of the electronic instrument 4 from the temperature of the electronic instrument 4. For example, the air-conditioning control apparatus 1 previously stores the temperature of the electronic instrument 4 and the ambient temperature of the electronic instrument 4 in association with each other. The air-conditioning control apparatus 1 is able to estimate the ambient temperature of the electronic instrument 4 based on the measured temperature of the electronic instrument 4 and the stored relationship.
[0045] Subsequently, the air-conditioning control apparatus 1 determines whether the estimated ambient temperature is higher than or equal to the target vehicle interior temperature as a determination process (step S16). When the air-conditioning control apparatus 1 determines that the ambient temperature is higher than or equal to the target vehicle interior temperature (YES in step S16), the air-conditioning control apparatus 1 restricts warm air flow to the electronic instrument 4 (see
[0046] When the air-conditioning control apparatus 1 determines that it is not during heating (NO in step S12), the air-conditioning control apparatus 1 determines whether it is during cooling as a determination process (step S22). When the air-conditioning control apparatus 1 is operating in the cooling mode (when, for example, a cooling button is turned on by the occupant), the air-conditioning control apparatus 1 determines that it is during cooling.
[0047] When the air-conditioning control apparatus 1 determines that it is during cooling (YES in step S22), the air-conditioning control apparatus 1 determines whether the temperature of the electronic instrument 4 is higher than or equal to the upper limit temperature as a determination process (step S24). When the air-conditioning control apparatus 1 determines that the temperature of the electronic instrument 4 is higher than or equal to the upper limit temperature (YES in step S24), the air-conditioning control apparatus 1 produces cool air flow intensively to the electronic instrument 4 (see
[0048] When the air-conditioning control apparatus 1 determines that it is not during cooling (NO in step S22), when the warm air restricting process (step S18), the warm air continuing process (step S20), and the intensive cool air process (step S26) complete, or when the air-conditioning control apparatus 1 determines that the temperature of the electronic instrument 4 is not higher than or equal to the upper limit temperature (NO in step S24), the flowchart shown in
Cooperative Control
[0049] By executing the flowchart shown in
[0050]
Summary of Embodiment
[0051] With the air-conditioning control apparatus 1, air conditioning in the vehicle cabin is controlled based on the temperature information of the electronic instrument 4 provided in the vehicle cabin. With this configuration, the air-conditioning control apparatus 1 is able to turn down air conditioning for heating when heat generated from the electronic instrument 4 is able to be used or turn up air conditioning for cooling in consideration of heat generated from the electronic instrument 4. Thus, the air-conditioning control apparatus 1 is able to efficiently manage heat generated from the vehicle as a whole in comparison with the case where air conditioning is performed without using the temperature information of the electronic instrument 4.
[0052] The example embodiment has been described above; however, the disclosure is not limited to the example embodiment, and various omissions, replacements, and changes are possible. For example, the air conditioner 3 may include the seat heaters 8. The functions of the air-conditioning control apparatus 1 may be provided by a program. For example, the program causes a computer to exercise the same functions as those of the acquisition unit 11 and the control unit 12. The program can be stored in a storage medium.