Experimental equipment for air conditioner

By transferring heat between the indoor and outdoor units, the problem of high energy consumption in air conditioning experimental equipment was solved, enabling efficient low-temperature testing, reducing energy consumption, and improving equipment reliability.

CN223815241UActive Publication Date: 2026-01-20XIAOMI TECH (WUHAN) CO LTD +2
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Patent Information

Application Number
CN202520311756.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-20
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

Existing air-conditioning experimental equipment consumes a lot of energy in laboratory temperature control, resulting in excessive energy consumption.

Method used

The system uses a combination of indoor and outdoor units for heating. The indoor unit transfers heat from the outdoor unit room to the indoor unit room, while the outdoor unit provides a low-temperature environment for the outdoor unit room. Low-temperature testing is conducted using the heat generated by the indoor and outdoor unit rooms themselves, reducing reliance on external air conditioning systems.

Benefits of technology

This reduces the energy consumption of air conditioning experiments, shortens the low-temperature testing time of the tested equipment, and improves the reliability and efficiency of the experimental equipment.

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Abstract

The utility model relates to experimental equipment for an air conditioner, the experimental equipment comprises an inner unit chamber and an outer unit chamber, an inner unit is arranged in the inner unit chamber, an outer unit is arranged in the outer unit chamber, and the inner unit and the outer unit are matched to heat the inner unit chamber; the outdoor unit cools the outdoor unit chamber so as to provide a low-temperature environment for the outdoor unit, and the indoor unit and the outdoor unit are matched to form tested equipment. The experimental equipment for the air conditioner is favorable for reducing the energy consumption of an air conditioner experiment.
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Description

TECHNICAL FIELD

[0001] The present disclosure relates to the technical field of air conditioning, in particular, to an air conditioning experiment device. BACKGROUND

[0002] In the related art, an air conditioner needs to be experimented before leaving factory. Currently, some manufacturers install large air conditioning systems in laboratories to adjust the temperature of the laboratory to realize temperature variation operation test. However, such a setting will result in high energy consumption of air conditioner experiment. CONTENT OF THE INVENTION

[0003] The purpose of the present disclosure is to provide an air conditioning experiment device which is helpful to reduce the energy consumption of air conditioner experiment.

[0004] In order to achieve the above purpose, the present disclosure provides an air conditioning experiment device, comprising an indoor unit room and an outdoor unit room, an indoor unit is arranged in the indoor unit room, an outdoor unit is arranged in the outdoor unit room, and the indoor unit and the outdoor unit cooperate to heat the indoor unit room.

[0005] The outdoor unit cools the outdoor unit room to provide a low-temperature environment for the outdoor unit itself, and the indoor unit and the outdoor unit cooperate to test the device.

[0006] Optionally, a heat transfer channel is arranged between the indoor unit room and the outdoor unit room, and the heat transfer channel is used for mutual heat transfer or heat transfer from one to the other.

[0007] Optionally, the heat transfer channel comprises an air flow channel for connecting the indoor unit room and the outdoor unit room.

[0008] Optionally, the air flow channel comprises a first air flow channel and a second air flow channel, the first air flow channel is used for flowing air in the indoor unit room into the outdoor unit room, and the second air flow channel is used for flowing air in the outdoor unit room into the indoor unit room.

[0009] Optionally, the first air flow channel is adjacent to the top of the experiment device, and the second air flow channel is adjacent to the bottom of the experiment device.

[0010] Alternatively, the first air flow channel and the second air flow channel are both adjacent to the top of the experiment device.

[0011] Optionally, the air flow channel is provided with a plugging adjusting member for opening or closing the air flow channel, or adjusting the opening degree of the air flow channel when air flows through.

[0012] Optionally, the air flow channel is connected with a stop structure, and the closing adjusting member and the stop structure are detachably overlapped.

[0013] Optionally, the closing adjusting member comprises a plurality of closing adjusting plates which are detachably overlapped, and each of the closing adjusting plates is rotatably connected with the air flow channel, and the innermost closing adjusting plate and the stop structure are detachably overlapped.

[0014] Optionally, a rotation reset structure is connected between the closing adjusting member and the air flow channel, and the rotation reset structure is used to reset the closing adjusting member to close the air flow channel.

[0015] Optionally, the rotation reset structure is a rotation shaft, and a rotation axis of the rotation shaft extends in a horizontal direction and is located above a gravity center of the closing adjusting member.

[0016] Alternatively, the rotation reset structure is an elastic reset structure, and the elastic reset structure has an elastic force for driving the closing adjusting member to close the air flow channel.

[0017] Optionally, the air flow channel is provided with a closing adjusting member which is used to open or close the air flow channel or adjust an opening degree of the air flow channel when air flows through the air flow channel.

[0018] The first air flow channel and the second air flow channel are both connected with a closing adjusting member, and an opening direction of the closing adjusting member at the first air flow channel is opposite to an opening direction of the closing adjusting member at the second air flow channel.

[0019] Optionally, the air flow channel is connected with a fan which is used to provide power for air flow.

[0020] Optionally, at least one of the first air flow channel and the second air flow channel is provided with a fan which is used to provide power for air flow.

[0021] Optionally, the experimental equipment is provided with an external heat exchange channel which is used to exchange heat between the experimental equipment and an external environment.

[0022] Optionally, the external heat exchange channel comprises an external air inlet channel and an external air outlet channel, the external air inlet channel is used to make air outside the experimental equipment enter the experimental equipment, and the external air outlet channel is used to make air inside the experimental equipment flow out to outside of the experimental equipment.

[0023] Optionally, the external air inlet channel is communicated with one of the indoor machine room and the outdoor machine room, and the external air outlet channel is communicated with one of the indoor machine room and the outdoor machine room.

[0024] Optionally, the external air inlet channel and the external air outlet channel are both in communication with the external machine chamber.

[0025] Optionally, a fan is connected to the external air outlet channel, and the fan is configured to send air in the external machine chamber to the outside of the experimental equipment.

[0026] Optionally, a heat exchange device is arranged in one of the internal machine chamber and the external machine chamber, and the heat exchange device is configured to heat or cool air.

[0027] Optionally, a partition wall is arranged between the internal machine chamber and the external machine chamber, and the partition wall is connected to a mounting rack, and the internal machine is fixed to the mounting rack.

[0028] Optionally, the experimental equipment is provided with a refrigerant outlet configured to discharge refrigerant leaked from the internal machine or the external machine.

[0029] Optionally, the temperature of the internal machine chamber is configured to be 16℃-32℃.

[0030] Optionally, the temperature of the external machine chamber is configured to be -35℃-10℃.

[0031] With the above technical solution, in the air-conditioning experimental equipment provided by the present disclosure, the internal machine and the external machine cooperate to heat, that is, the internal machine and the external machine can transfer heat from the external machine chamber to the internal machine chamber, that is, the internal machine increases the temperature of the internal machine chamber, and the external machine decreases the temperature of the external machine chamber. Thus, the external machine can cool the external machine chamber to provide a low-temperature environment for the external machine itself. In this way, by transferring heat from the external machine chamber to the internal machine chamber, the heat of the external machine chamber and the internal machine chamber itself can be used to provide a low-temperature environment for the external machine to test the external machine at low temperature, thereby reducing or even avoiding the energy consumption caused by using an external air conditioning system to cool the external machine chamber. In addition, the internal machine and the external machine as a whole are tested as a tested device, and the air-conditioning experimental equipment can test the tested device at low temperature to test the reliability of the tested device at low temperature and long-term operation, thereby shortening the factory test time of the tested device.

[0032] Other features and advantages of the present disclosure will be described in detail in the following specific embodiments. BRIEF DESCRIPTION OF DRAWINGS

[0033] The accompanying drawings are included to provide a further understanding of the present disclosure and constitute a part of the specification, and together with the specific embodiments below, serve to explain the present disclosure but do not constitute a limitation thereof. In the drawings:

[0034] Figure 1 is a front view of an air-conditioning experimental equipment provided according to an embodiment of the present disclosure;

[0035] Figure 2 FIG. 1 is a side view schematic diagram of a partial structure of an air- conditioning experimental device according to an embodiment of the present disclosure;

[0036] Figure 3 FIG. 2 is a front view schematic diagram of a blocking adjustment member in an air- conditioning experimental device according to an embodiment of the present disclosure;

[0037] Figure 4 FIG. 3 is a side view schematic diagram of a blocking adjustment member in an air- conditioning experimental device according to an embodiment of the present disclosure;

[0038] Figure 5 FIG. 4 is another front view schematic diagram of a blocking adjustment member in an air- conditioning experimental device according to an embodiment of the present disclosure;

[0039] Figure 6 FIG. 5 is another side view schematic diagram of a blocking adjustment member in an air- conditioning experimental device according to an embodiment of the present disclosure;

[0040] Figure 7 FIG. 6 is an enlarged view of part A in FIG. 5. Figure 6

[0041] Legend of Reference Signs

[0042] 11 - inner machine chamber, 12 - outer machine chamber, 2 - heat transfer passage, 21 - air flow channel, 211 - first air flow channel, 212 - second air flow channel, 3 - blocking adjustment member, 31 - blocking adjustment plate, 4 - stop structure, 5 - rotation reset structure, 6 - fan, 7 - external heat exchange passage, 71 - external air inlet passage, 72 - external air outlet passage, 8 - heat exchange device, 91 - mounting frame, 10 - inner machine, 20 - outer machine, 100 - partition wall. DETAILED DESCRIPTION

[0043] The specific embodiments of the present disclosure will be described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are merely intended to illustrate and explain the present disclosure, and are not intended to limit the present disclosure.

[0044] In the present disclosure, the orientation words such as "up, down, top, bottom" are defined based on the direction of gravity of the air-conditioning experimental device, wherein up corresponds to top and down corresponds to bottom. "Inner, outer" refers to the inner and outer of the contour of each component. The terms "first, second" are used to distinguish one element from another element, and do not have sequentiality and importance. In addition, the following description, when referring to the drawings, the same reference signs in different drawings represent the same or similar elements, and the present disclosure does not make redundant descriptions.

[0045] According to some embodiments of the present disclosure, an air-conditioning experimental device is provided, referring to Figure 1 ​As shown in FIG. 1, the air conditioning experimental equipment includes an inner machine room 11 and an outer machine room 12, the inner machine 10 is arranged in the inner machine room 11, the outer machine 20 is arranged in the outer machine room 12, and the inner machine 10 and the outer machine 20 cooperate to heat the inner machine room 11.

[0046] The outer machine 20 is used to cool the outer machine room 12 to provide a low-temperature environment for the outer machine 20 itself.

[0047] According to the above technical solution, in the air conditioning experimental equipment provided by the present disclosure, the inner machine 10 and the outer machine 20 cooperate to heat, that is, the inner machine 10 and the outer machine 20 can transfer the heat of the outer machine room 12 to the inner machine room 11, that is, the inner machine 10 can increase the temperature of the inner machine room 11, and the outer machine 20 can decrease the temperature of the outer machine room 12. Thus, the outer machine 20 can cool the outer machine room 12 to provide a low-temperature environment for the outer machine 20 itself. In this way, by transferring the heat of the outer machine room 12 to the inner machine room 11, the heat of the outer machine room 12 and the inner machine room 11 itself can be used to provide a low-temperature environment for the outer machine 20 to test the outer machine 20 at a low temperature, thereby reducing or even avoiding the energy consumption caused by using an external air conditioning system to cool the outer machine room 12. In addition, the inner machine 10 and the outer machine 20 are tested as a whole, and the air conditioning experimental equipment can be used to test the tested device at a low temperature to test the reliability of the tested device at a low temperature and for a long time, thereby shortening the factory test time of the tested device.

[0048] In some embodiments, referring to FIG. 1, Figure 1 As shown in FIG. 1, the inner machine room 11 and the outer machine room 12 can be provided with a heat transfer channel 2 therebetween, and the heat transfer channel 2 is used for mutual heat transfer between the two or for heat transfer from one to the other. In this way, by using the heat transfer channel 2, mutual heat transfer between the inner machine room 11 and the outer machine room 12 or heat transfer from one to the other can be achieved, so that the temperature of any one of the inner machine room 11 and the outer machine room 12 can be balanced, which is beneficial to avoid the temperature of the inner machine room 11 being too high or too low or the temperature of the outer machine room 12 being too low, thereby facilitating long-term testing of the outer machine 20 and improving the reliability of the air conditioning experimental equipment.

[0049] It should be noted that the heat transfer channel 2 is used for heat transfer from one to the other between the inner machine room 11 and the outer machine room 12, which can be understood as that the inner machine room 11 transfers heat to the outer machine room 12 through the heat transfer channel 2, or the outer machine room 12 transfers heat to the inner machine room 11 through the heat transfer channel 2.

[0050] In some embodiments, the heat transfer passage can be provided with a heat transfer control structure to enable the inner chamber and / or the outer chamber to be in a corresponding experimental temperature range. Here, since the heat transfer passage is provided with the heat transfer control structure, the heat transfer control structure can control the inner chamber 11 to transfer an appropriate amount of heat to the outer chamber 12, or control the outer chamber 12 to transfer an appropriate amount of heat to the inner chamber 11. The temperature of any one of the inner chamber 11 and the outer chamber 12 can be balanced, which helps to avoid the temperature of the inner chamber 11 being too high or too low, or the temperature of the outer chamber 12 being too low or too high, i.e. the heat transfer control structure provided by the heat transfer passage can enable the inner chamber and / or the outer chamber to be in a corresponding experimental temperature range.

[0051] Next, the structure of the heat transfer passage 2 will be described in detail to explain how the heat transfer control structure enables the inner chamber and / or the outer chamber to be in a corresponding experimental temperature range.

[0052] In some embodiments of the present disclosure, with reference to Figure 1 As shown in FIG. 1, the heat transfer passage 2 can include an air flow channel 21 for connecting the inner chamber 11 and the outer chamber 12. In this way, the air flow channel 21 can enable the mutual flow of air between the inner chamber 11 and the outer chamber 12, or enable the flow of air from one to the other, whereby heat transfer can be achieved by the flow of air, and the flow of air can improve the efficiency of heat transfer. Of course, in other embodiments, the heat transfer passage 2 can also include a heat exchange medium, which can be made of a medium with a good thermal conductivity, whereby rapid heat transfer can also be achieved. In addition, the heat exchange medium can have a one-way heat conduction function, or be provided in a structure with a one-way heat conduction function to achieve one-way heat conduction, which is not limited by the present disclosure. As described above, the air flow channel 21 or the heat exchange medium are both feasible embodiments of the heat transfer control structure, and can enable the inner chamber and / or the outer chamber to be in a corresponding experimental temperature range.

[0053] In some embodiments of the present disclosure, with reference to Figure 1As shown in FIG. 1, the air flow passage 21 can include a first air flow passage 211 for flowing air in the inner machine chamber 11 into the outer machine chamber 12, and a second air flow passage 212 for flowing air in the outer machine chamber 12 into the inner machine chamber 11. When the inner machine 10 and the outer machine 20 cooperate to heat the inner machine chamber 11, the first air flow passage 211 can be used to raise the temperature of the outer machine chamber 12, and the second air flow passage 212 can be used to lower the temperature of the inner machine chamber 11. Of course, the air flow passage 21 can include only the first air flow passage 211 or only the second air flow passage 212 when the air flow passage 21 is connected to the inner machine chamber 11 and the outer machine chamber 12.

[0054] In some embodiments, the first air flow passage 211 and the second air flow passage 212 are used as one-way flow passages.

[0055] In some embodiments, in the embodiment in which the air flow passage 21 includes the first air flow passage 211 and the second air flow passage 212, the first air flow passage 211 can be adjacent to the top of the experimental apparatus, and the second air flow passage 212 can be adjacent to the bottom of the experimental apparatus. Figure 1 As shown in FIG. 1, when the inner machine 10 and the outer machine 20 cooperate to heat the inner machine chamber 11, the first air flow passage 211 can be adjacent to the top of the experimental apparatus, and the second air flow passage 212 can be adjacent to the bottom of the experimental apparatus. Here, because the first air flow passage 211 introduces hotter air into cooler air, the first air flow passage 211 is disposed higher to facilitate the introduction of hotter air into cooler air based on the characteristic that high-temperature gas rises. Similarly, because the second air flow passage 212 introduces cooler air into hotter air, the second air flow passage 212 is disposed lower to facilitate the introduction of cooler air into hotter air based on the characteristic that low-temperature gas sinks.

[0056] Of course, in other embodiments, the first air flow passage 211 and the second air flow passage 212 can both be adjacent to the top of the experimental apparatus. In this way, the higher position can avoid other components blocking the first air flow passage 211 and the second air flow passage 212, and can achieve a concentrated arrangement of the first air flow passage 211 and the second air flow passage 212.

[0057] In some embodiments of the present disclosure, referring to FIG. 1, the air flow passage 21 can include a first air flow passage 211 and a second air flow passage 212, the first air flow passage 211 being used to flow air in the inner machine chamber 11 into the outer machine chamber 12, so that, when the inner machine 10 and the outer machine 20 cooperate to heat, and air in the inner machine chamber 11 flows into the outer machine chamber 12, the temperature of the outer machine chamber 12 can be raised to avoid the temperature of the outer machine chamber 12 being too low. The second air flow passage 212 is used to flow air in the outer machine chamber 12 into the inner machine chamber 11, so that, when the inner machine 10 and the outer machine 20 cooperate to heat, and air in the outer machine chamber 12 flows into the inner machine chamber 11, the temperature of the inner machine chamber 11 can be lowered to avoid the temperature of the inner machine chamber 11 being too high. Of course, the air flow passage 21 can include only the first air flow passage 211 or only the second air flow passage 212 when the air flow passage 21 is connected to the inner machine chamber 11 and the outer machine chamber 12. Figure 1As shown in FIG. 1, the air flow channel 21 can be provided with a blocking adjustment member 3, and the heat transfer control structure can include the blocking adjustment member 3 for opening or closing the air flow channel 21 or adjusting the opening degree of the air flow channel 21 when the air flows through. In this way, when heat exchange is needed to be performed by using the air flow channel 21, the blocking adjustment member 3 can be used to open the air flow channel 21, and the opening degree of the air flow channel 21 can be adjusted to adjust the heat exchange efficiency, and the heat exchange efficiency can be increased by increasing the opening degree of the air flow channel 21 and decreased by decreasing the opening degree of the air flow channel 21, so that the heat exchange efficiency can be flexibly adjusted. Correspondingly, when heat exchange by using air is needed to be stopped, the air flow channel 21 can be closed, so that the reliability of the air use experimental device can be improved. Here, the heat transfer control structure can control the opening and closing of the blocking adjustment member and the adjustment of the opening degree to control the heat transfer and the transfer efficiency.

[0058] In some embodiments of the present disclosure, reference is made to Figure 1 and Figure 3 to Figure 5 As shown in FIG. 1, the blocking adjustment member 3 can be rotationally connected to the air flow channel 21, that is, the blocking adjustment member 3 can be used to open or close the air flow channel 21 by rotation, and the air flow channel 21 can be connected with a stop structure 4, and the blocking adjustment member 3 and the stop structure 4 are separably overlapped, wherein when the blocking adjustment member 3 is separated from the stop structure 4 or spaced, the blocking adjustment member 3 is in an open position for opening the air flow channel 21, and when the blocking adjustment member 3 is overlapped with the stop structure 4, the blocking adjustment member 3 is in a closed position for closing the air flow channel 21, and at this time, since the blocking adjustment member 3 is overlapped with the stop structure 4, the stop structure 4 can limit the blocking adjustment member 3 from rotating in the opposite direction to open the air flow channel 21, so that the self-locking of the blocking adjustment member 3 can be achieved. When at least one of the first air flow channel 211 and the second air flow channel 212 is provided with the blocking adjustment member 3 and the stop structure 4, the first air flow channel 211 and the second air flow channel 212 can be ensured to be used as one-way flow channels.

[0059] It should be noted that when the blocking adjustment member 3 rotates clockwise to open the air flow channel 21, the opposite direction mentioned above refers to counterclockwise rotation. When the blocking adjustment member 3 rotates counterclockwise to open the air flow channel 21, the opposite direction mentioned above refers to clockwise rotation.

[0060] In some embodiments of the present disclosure, reference is made to Figure 1 and Figure 3 to Figure 7As shown in FIG. 1, the blocking adjustment member 3 can include a plurality of separable overlapping blocking adjustment plates 31, and each of the plurality of blocking adjustment plates 31 is rotationally connected with the air flow channel 21, so that when the plurality of blocking adjustment plates 31 simultaneously open the air flow channel 21, the flow area of the air flow channel 21 can be increased. Among them, the innermost blocking adjustment plate 31 and the stop structure 4 are separably overlapped, so that when the plurality of blocking adjustment plates 31 close the air flow channel 21, the plurality of blocking adjustment plates 31 are overlapped together, and the innermost blocking adjustment plate 31 is overlapped with the stop structure 4. At this time, such a design can prevent the plurality of blocking adjustment plates 31 from rotating in the opposite direction to open the air flow channel 21.

[0061] It should be noted that the innermost blocking adjustment plate 31 can be understood as the blocking adjustment plate 31 that opens or closes the air flow channel 21 last among the plurality of blocking adjustment plates 31.

[0062] In some embodiments, referring to Figure 4 As shown in FIG. 1, the stop structure 4 can be configured as a stop protrusion. Of course, referring to Figure 6 As shown in FIG. 1, the stop structure 4 can also be configured as a protruding portion protruding from the air flow channel 21, and the present disclosure does not make too many limitations on this.

[0063] In some embodiments of the present disclosure, referring to Figure 1 and Figure 7 As shown in FIG. 1, a rotation reset structure 5 can be connected between the blocking adjustment member 3 and the air flow channel 21, and the rotation reset structure 5 is used to reset the blocking adjustment member 3 to close the air flow channel 21. That is, when the blocking adjustment member 3 opens the air flow channel 21, the rotation reset structure 5 can store a reset force, and when it is needed to close the air flow channel 21, the rotation reset structure 5 can reset the blocking adjustment member 3 to close the air flow channel 21 by the reset force, so that the reliable closing of the air flow channel 21 by the blocking adjustment member 3 can be realized.

[0064] In some embodiments, referring to Figure 7 As shown in FIG. 1, the rotation reset structure 5 can be configured as a rotation shaft, and the rotation axis of the rotation shaft extends in the horizontal direction and is located above the center of gravity of the blocking adjustment member 3, so that when the blocking adjustment member 3 opens the air flow channel 21, part of the gravity of the blocking adjustment member 3 can be converted into the reset force by the rotation shaft, thereby facilitating the automatic reset of the blocking adjustment member 3 by the rotation shaft cooperating with the gravity of the blocking adjustment member 3.

[0065] In some embodiments, the rotating reset structure 5 can also be configured as an elastic reset structure, which can have an elastic force to drive the blocking adjustment member 3 to close the air flow channel 21, that is, when the blocking adjustment member 3 opens the air flow channel 21, the elastic reset structure can store the elastic force to achieve automatic reset of the blocking adjustment member 3. In this case, the elastic reset structure can be configured as a torsion spring to adapt to the rotation of the blocking adjustment member 3. Of course, the elastic reset structure can also be configured as a tension spring.

[0066] In some embodiments of the present disclosure, referring to Figure 1 In some embodiments of the present disclosure, referring to

[0067] In some embodiments of the present disclosure, referring to Figure 1 In some embodiments of the present disclosure, referring to

[0068] In some embodiments of the present disclosure, referring to Figure 1 and Figure 3As shown in FIG. 1, at least one of the first air flow channel 211 and the second air flow channel 212 is provided with a fan 6 for powering air flow. Rotation of the fan 6 can drive air flow, thereby improving reliability of heat exchange. In some embodiments, the first air flow channel 211 can be provided with the fan 6, and the second air flow channel 212 can be provided without the fan 6, or the second air flow channel 212 can be provided with the fan 6, and the first air flow channel 211 can be provided without the fan 6, or both the first air flow channel 211 and the second air flow channel 212 can be provided with the fan 6.

[0069] Next, the disclosure will introduce the specific use process of the air flow channel 21 in combination with the above specific embodiments. Referring to FIG. 1, Figure 1 to Figure 7 As shown in FIG. 1, when the inner unit 10 cooperates with the outer unit 20 to heat, and when mutual heat exchange between the inner unit chamber 11 and the outer unit chamber 12 is required, the fan 6 in the first air flow channel 211 is started, the fan 6 pushes the plurality of blocking adjustment plates 31 on the first air flow channel 211 to open, so that the air in the inner unit chamber 11 flows into the outer unit chamber 12, and then the air in the outer unit chamber 12 becomes positive pressure, and the positive pressure air pushes the plurality of blocking adjustment plates 31 on the second air flow channel 212 to open, so that the air in the outer unit chamber 12 flows into the inner unit chamber 11, at this time, mutual heat exchange between the inner unit chamber 11 and the outer unit chamber 12 can be achieved, in addition, since the air in the inner unit chamber 11 enters the outer unit chamber 12, and the air in the outer unit chamber 12 enters the inner unit chamber 11, the above arrangement can also achieve air pressure balance of the inner unit chamber 11 and air pressure balance of the outer unit chamber 12. When mutual heat exchange between the inner unit chamber 11 and the outer unit chamber 12 is required to be stopped, the fan 6 is stopped, at this time, the rotating shaft can convert the gravity of the blocking adjustment plate 31 into a reset force, so that the plurality of blocking adjustment plates 31 are automatically reset to close the first air flow channel 211 or the second air flow channel 212, and then the blocking adjustment plate 31 can be self-locked by the arrangement of the stop structure 4.

[0070] In some embodiments of the disclosure, referring to FIG. 1, Figure 1 As shown in FIG. 1, the experimental device can also be provided with an external heat exchange channel 7 for heat exchange between the experimental device and the external environment, so that heat exchange between the experimental device and the external environment can facilitate adjustment of the temperature of the inner unit chamber 11 or the outer unit chamber 12 in the experimental device.

[0071] In some embodiments, referring to FIG. 1, Figure 1As shown in FIG. 7, the external heat exchange channel 7 can include an external air inlet channel 71 and an external air outlet channel 72. The external air inlet channel 71 is configured to allow air outside the experimental device to enter the experimental device, for example, to enter the inner machine chamber 11 or the outer machine chamber 12 of the experimental device. The external air outlet channel 72 is configured to allow air inside the experimental device to flow out to the outside of the experimental device, for example, to flow out of the inner machine chamber 11 or the outer machine chamber 12 of the experimental device. In this way, by using heat exchange between the experimental device and the external air, the temperature of the inner machine chamber 11 can be prevented from being too high or too low, or the temperature of the outer machine chamber 12 can be prevented from being too low. In addition, the arrangement of the external air inlet channel 71 and the external air outlet channel 72 can also ensure the air pressure balance of the experimental device and prevent air pressure fluctuations. In some other embodiments, the external heat exchange channel 7 can only include the external air inlet channel 71, which is configured to allow air outside the experimental device to enter the experimental device. In this way, the external air and the air inside the experimental device are mixed to achieve the effect of adjusting the temperature inside the experimental device.

[0072] In some embodiments of the present disclosure, with reference to Figure 1 As shown in FIG. 7, the external air inlet channel 71 can be in communication with one of the inner machine chamber 11 and the outer machine chamber 12, and the external air outlet channel 72 can be in communication with one of the inner machine chamber 11 and the outer machine chamber 12. In this way, when it is necessary to lower or raise the temperature of the inner machine chamber 11, the external air inlet channel 71 can be in communication with the inner machine chamber 11, and at this time, the external air outlet channel 72 can be in communication with either of the inner machine chamber 11 and the outer machine chamber 12. Similarly, when it is necessary to raise or lower the temperature of the outer machine chamber 12, the external air inlet channel 71 can be in communication with the outer machine chamber 12, and the external air outlet channel 72 can be in communication with either of the inner machine chamber 11 and the outer machine chamber 12. In some embodiments, a damper can be arranged at the external air inlet channel 71, and the damper is configured to open or close the external air inlet channel 71. In this way, the external air inlet channel 71 can be flexibly opened or closed. The opening and closing principle of the damper is well known to those skilled in the art, and will not be described here in detail.

[0073] In some embodiments, with reference to Figure 1 As shown in FIG. 7, the external air inlet channel 71 and the external air outlet channel 72 can both be in communication with the outer machine chamber 12. In this way, the heat exchange between the outer machine chamber 12 and the external air, for example, the external atmosphere, can be quickly achieved to quickly raise or lower the temperature of the outer machine chamber 12.

[0074] In some embodiments, with reference to Figure 1As shown in FIG. 1, the external air inlet passage 71 is adjacent to the bottom of the outer machine chamber 12, and the external air outlet passage 72 is adjacent to the top of the outer machine chamber 12. When the inner machine 10 cooperates with the outer machine 20 to generate heat, the above arrangement facilitates the air in the outer machine chamber 12 to be discharged from the top of the outer machine chamber 12. Of course, when the inner machine 10 cooperates with the outer machine 20 to generate heat, the external air inlet passage 71 can also be adjacent to the top of the outer machine chamber 12, and the external air outlet passage 72 can also be adjacent to the bottom of the outer machine chamber 12, so that, due to the lower temperature of the air in the outer machine chamber 12, such an arrangement facilitates the air in the outer machine chamber 12 to be automatically discharged to the outside atmosphere, and the air in the outside atmosphere to be automatically introduced into the outer machine chamber 12.

[0075] Optionally, referring to Figure 1 As shown in FIG. 1, the external air outlet passage 72 can be connected with a fan 6, which is used to send the air in the outer machine chamber 12 to the outside of the experimental equipment. In this way, the heat exchange efficiency between the outer machine chamber 12 and the outside of the experimental equipment can be further improved.

[0076] In some embodiments of the present disclosure, referring to Figure 1 As shown in FIG. 1, one of the inner machine chamber 11 and the outer machine chamber 12 is provided with a heat exchange device 8, which is used to heat or cool the air. In this way, the air in the inner machine chamber 11 or the outer machine chamber 12 can be directly heated or cooled by using the heat exchange device 8, so that the temperature of the inner machine chamber 11 or the outer machine chamber 12 can also be prevented from being too high or too low.

[0077] In some embodiments of the present disclosure, the heat exchange device 8 can be configured as an air conditioning system, i.e., the heat exchange device 8 can blow hot air or cold air to heat or cool the air in the inner machine chamber 11 or the outer machine chamber 12. Since the heat exchange is performed by using the heat transfer passage 2, the heat exchange device 8 is not mainly used to provide a low-temperature environment for the outer machine 20, and therefore, the heat exchange device 8 can also reduce the energy consumption during air conditioning experiments. Of course, in other embodiments, the heat exchange device 8 can include a heat exchange medium, which can be configured as a medium with good thermal conductivity and large specific heat capacity, so that the air can also be heated or cooled.

[0078] In some embodiments of the present disclosure, referring to Figure 2 As shown in FIG. 1, a partition wall 100 is arranged between the inner machine chamber 11 and the outer machine chamber 12, and the partition wall 100 is connected with a mounting bracket 91, and the inner machine 10 is fixed to the mounting bracket 91, so that the inner machine 10 can be conveniently hung on the partition wall 100. At this time, the inner machine 10 can be configured as a hanging machine. Herein, in some embodiments, referring to Figure 1As shown in the drawings, in the embodiment in which the experimental device includes the first air flow channel 211 and the second air flow channel 212, the first air flow channel 211 and the second air flow channel 212 can both be arranged on the partition wall 100 and can both pass through the partition wall 100 to communicate the indoor unit chamber 11 and the outdoor unit chamber 12.

[0079] In some embodiments of the present disclosure, the experimental device can be provided with a refrigerant outlet (not shown in the drawings) for discharging the refrigerant leaked from the indoor unit 10 or the outdoor unit 20. In this way, the refrigerant can be prevented from remaining in the indoor unit chamber 11 or the outdoor unit chamber 12, thereby endangering the health of the test personnel. In addition, the refrigerant remaining in the indoor unit chamber 11 or the outdoor unit chamber 12 can also play a role in explosion-proofing the indoor unit chamber 11 or the outdoor unit chamber 12, so as to prevent the refrigerant remaining in the indoor unit chamber 11 or the outdoor unit chamber 12 from exploding when reaching a certain concentration.

[0080] In some embodiments of the present disclosure, the temperature of the indoor unit chamber 11 can be configured to be 16-32℃, for example, 23-28℃, and specifically, for example, 24℃, 25℃, 26℃, 27℃, and the like, that is, the indoor unit chamber 11 can be roughly configured as a normal-temperature chamber.

[0081] In some embodiments of the present disclosure, when the indoor unit 10 and the outdoor unit 20 cooperate to produce heat, the temperature of the outdoor unit chamber 12 can be configured to be -35-10℃, for example, -16-(-1)℃, and specifically, for example, -15℃, -10℃, -5℃, and the like, that is, the outdoor unit chamber 12 can be roughly configured as a low-temperature chamber to test the performance of the outdoor unit 20 at this temperature range.

[0082] In some embodiments of the present disclosure, one of the indoor unit chamber 11 and the outdoor unit chamber 12 can be provided with a gas pressure balancing structure, which can include a gas tank and a gas suction structure and a gas release structure connected to the gas tank, the gas suction structure being used to suck the air in the indoor unit chamber 11 or the outdoor unit chamber 12 into the gas tank, and the gas release structure being used to release the air in the gas tank into the indoor unit chamber 11 or the outdoor unit chamber 12, so as to facilitate the balance of the gas pressure of the indoor unit chamber 11 or the outdoor unit chamber.

[0083] The preferred embodiments of the present disclosure are described in detail above with reference to the drawings, but the present disclosure is not limited to the specific details in the above-described embodiments, and various simple modifications can be made to the technical solutions of the present disclosure within the technical concept of the present disclosure, and these simple modifications all belong to the protection scope of the present disclosure.

[0084] In addition, it should be noted that each specific technical feature described in the above specific embodiments can be combined in any appropriate manner without contradiction, and in order to avoid unnecessary repetition, the present disclosure will not further describe various possible combinations.

[0085] Furthermore, any combination of various embodiments of the present disclosure can be made, as long as it does not deviate from the idea of the present disclosure, and it should be considered as disclosed in the present disclosure.

Claims

1. An air-conditioning test apparatus characterized by comprising: The machine room comprises an inner machine room and an outer machine room, the inner machine is arranged in the inner machine room, the outer machine is arranged in the outer machine room, and the inner machine and the outer machine cooperate to heat the inner machine room; The outer machine cools the outer machine room to provide a low-temperature environment for the outer machine itself, and the inner machine and the outer machine cooperate to test the equipment.

2. The air-conditioning test apparatus according to claim 1, wherein A heat transfer channel is arranged between the inner machine room and the outer machine room, and the heat transfer channel is used for mutual heat transfer or heat transfer from one to the other.

3. The air-conditioning test apparatus according to claim 2, characterized by The heat transfer channel comprises an air flow channel for connecting the inner machine room and the outer machine room.

4. The air-conditioning test facility according to claim 3, wherein The air flow channel comprises a first air flow channel and a second air flow channel, the first air flow channel is used for flowing air in the inner machine room into the outer machine room, and the second air flow channel is used for flowing air in the outer machine room into the inner machine room.

5. The air-conditioning test facility according to claim 4, wherein The first air flow channel is adjacent to the top of the experimental equipment, and the second air flow channel is adjacent to the bottom of the experimental equipment. Alternatively, the first air flow channel and the second air flow channel are both adjacent to the top of the experimental equipment.

6. The air-conditioning test facility according to claim 3, wherein The air flow channel is provided with a blocking adjustment piece, which is used to open or close the air flow channel, or adjust the opening degree of the air flow channel when the air flows.

7. The air-conditioning test apparatus according to claim 6, wherein The blocking adjustment piece is rotationally connected to the air flow channel, the air flow channel is connected with a stop structure, and the blocking adjustment piece and the stop structure are separably overlapped.

8. The air-conditioning test facility according to claim 7, wherein The blocking adjustment piece comprises a plurality of separable overlapping blocking adjustment plates, each of which is rotationally connected to the air flow channel, and the innermost blocking adjustment plate and the stop structure are separably overlapped.

9. The air-conditioning test facility according to claim 7, wherein A rotation reset structure is connected between the blocking adjustment piece and the air flow channel, and the rotation reset structure is used to reset the blocking adjustment piece to close the air flow channel.

10. The air-conditioning test facility according to claim 9, wherein The rotation reset structure is a rotation shaft, the rotation axis of the rotation shaft extends in the horizontal direction, and the rotation axis is located above the center of gravity of the blocking adjustment piece. Alternatively, the rotation reset structure is an elastic reset structure, which has an elastic force to drive the blocking adjustment piece to close the air flow channel.

11. The air-conditioning test facility according to claim 4, wherein The air flow channel is provided with a blocking adjustment piece, which is used to open or close the air flow channel, or adjust the opening degree of the air flow channel when the air flows. The first air flow channel and the second air flow channel are both connected with a blocking adjustment piece, and the opening direction of the blocking adjustment piece at the first air flow channel is opposite to that of the blocking adjustment piece at the second air flow channel.

12. The air-conditioning test apparatus according to any one of claims 3, 4, 6-11, characterized by The air flow channel is connected with a fan, which is used to provide power for air flow.

13. The air-conditioning test facility according to claim 5, wherein At least one of the first air flow channel and the second air flow channel is provided with a fan, which is used to provide power for air flow.

14. The air-conditioned laboratory equipment according to any one of claims 1-11, 13, wherein, The experimental equipment is provided with an external heat exchange channel, which is used for heat exchange between the experimental equipment and the external environment.

15. The air-conditioning test facility according to claim 14, wherein The external heat exchange channel comprises an external air inlet channel and an external air outlet channel, the external air inlet channel is used for allowing air outside the experimental equipment to enter the experimental equipment, and the external air outlet channel is used for allowing air inside the experimental equipment to flow out to outside of the experimental equipment.

16. The air-conditioning test facility according to claim 15, wherein The external air inlet channel is communicated with one of the indoor machine chamber and the outdoor machine chamber, and the external air outlet channel is communicated with one of the indoor machine chamber and the outdoor machine chamber.

17. The air-conditioning test facility according to claim 16, wherein The external air inlet channel and the external air outlet channel are both communicated with the outdoor machine chamber.

18. The air-conditioning test facility according to claim 17, wherein A fan is connected to the external air outlet channel, and the fan is used for sending air in the outdoor machine chamber to outside of the experimental equipment.

19. The air-conditioned laboratory equipment according to any one of claims 1-11, 13, wherein, A heat exchange device is arranged in one of the indoor machine chamber and the outdoor machine chamber, and the heat exchange device is used for heating or cooling air.

20. The air-conditioning test facility according to claim 1, wherein A partition wall is arranged between the indoor machine chamber and the outdoor machine chamber, the partition wall is connected with a mounting rack, and the indoor machine is fixed to the mounting rack.

21. The air-conditioning test facility according to claim 1, wherein The experimental equipment is provided with a refrigerant outlet, and the refrigerant outlet is used for discharging refrigerant leaked by the indoor machine or the outdoor machine.

22. The air-conditioning test facility according to claim 1, wherein The temperature of the indoor machine chamber is configured to be 16℃-32℃, and / or, the temperature of the outdoor machine chamber is configured to be -35℃-10℃.