Integrated cabinet air conditioner
By designing the switchable working position of the electric heater in the integrated cabinet air conditioner, the air resistance and heat exchange efficiency problems caused by the fixed setting of the electric heater are solved, and more efficient heat exchange effects and stable operation of electrical components are achieved.
Patent Information
- Application Number
- CN202421874467.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-08-05
AI Technical Summary
The electric heater of the existing integrated cabinet air conditioner is fixedly arranged in the air duct where the evaporator is located, resulting in less time when the ambient temperature is lower than the minimum operating temperature of the electrical components, and less time for the electric heater to use, but the fixed setting produces additional air resistance, affecting the air volume and heat exchange effect.
An integrated cabinet air conditioner is designed, and through the drive control mechanism and the motion control mechanism, the electric heater can switch movement between the first working position and the second working position. The first working position is located in the first air duct where the evaporator is located, and the second working position is located in the second air duct where the condenser and compressor are located. In this way, the electric heater enters the first air duct only when needed for heating, avoiding additional air resistance when not needed.
By dynamically adjusting the position of the electric heater, additional air resistance in the air duct is avoided when unnecessary, and the heat exchange effect and heat exchange efficiency are improved, ensuring that the electrical components operate within the appropriate temperature range.
Smart Images

Figure CN222881293U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of air conditioners, in particular to an integrated cabinet air conditioner. Background Art
[0002] At present, the rise of 5G communication technology has led to the popularization of 5G base station construction across the country. Due to the high density of electrical components inside 5G base stations and the high heat generated by the electrical components, the previous fan cooling can no longer meet the cooling needs of communication base stations, so the demand for integrated cabinet air conditioners is increasing.
[0003] As the seasons change, the ambient temperature is too low, which will cause the ambient temperature to be lower than the minimum operating temperature of the electrical components in the communication base station, which will have an adverse effect on the operation of the electrical components in the communication base station. Therefore, the existing integrated cabinet air conditioner is equipped with an electric heater in the air duct where the evaporator is located. Therefore, when the ambient temperature is too low, the electric heater is turned on to heat the airflow entering the air duct. The heated airflow is sent into the communication base station to increase the internal ambient temperature of the communication base station to ensure the normal operation of the electrical components in the communication base station.
[0004] However, the electric heater of the existing integrated cabinet air conditioner is fixedly installed in the air duct where the evaporator is located. Since the time period when the ambient temperature is lower than the minimum operating temperature of the electrical components in the communication base station is relatively short, the electric heater is turned on and used for a relatively short time. The electric heater is always fixedly installed in the air duct where the evaporator is located, which generates additional wind resistance, causing the air volume in the air duct to decrease, thereby affecting the heat exchange effect and efficiency. Utility Model Content
[0005] In order to achieve the main purpose of the utility model, the utility model provides an integrated cabinet air conditioner that can control the electric heater to switch between a first working position and a second working position according to demand, can heat the airflow in the first air duct where the evaporator is located, and can avoid generating additional wind resistance in the first air duct where the evaporator is located, thereby improving the heat exchange effect and heat exchange efficiency.
[0006] In order to achieve the main purpose of the utility model, the utility model provides an integrated cabinet air conditioner, including a casing, a partition, an evaporator, an evaporating fan, a condenser, a condensing fan, a compressor, a baffle, a drive control mechanism, an electric heater and a motion control mechanism. The partition is arranged in the casing to divide the inner cavity of the casing into a first air duct and a second air duct. The peripheral wall of the casing is penetrated with a first air inlet and a first air outlet respectively connected to the first air duct. The evaporating fan is arranged at the first air inlet, the evaporator is arranged in the first air duct, and the peripheral wall of the casing is penetrated with a second air inlet and a second air outlet respectively connected to the second air duct. The condensing fan is arranged at the second air inlet, the condenser and the compressor are respectively arranged in the second air duct, the partition is penetrated with a through slot, the drive control mechanism can control the movement of the baffle so that the baffle opens or closes the through slot, the motion control mechanism can control the electric heater to pass through the through slot so that the electric heater switches between a first working position and a second working position, the first working position is located in the first air duct and between the first air inlet and the evaporator, and the second working position is located in the second air duct.
[0007] It can be seen from the above scheme that during the operation of the integrated cabinet air conditioner of the utility model, if it is necessary to heat the airflow in the first air duct where the evaporator is located, the drive control mechanism controls the movement of the baffle so that the baffle opens the through slot, and the motion control mechanism controls the electric heater to pass through the through slot, that is, the electric heater moves from the second working position in the second air duct through the through slot of the partition to the first working position in the first air duct, and then the drive control mechanism controls the movement of the baffle so that the baffle closes the through slot to avoid the first air duct and the second air duct from being connected and affecting the heat exchange effect and efficiency, and then the electric heater located at the first working position is turned on to heat the airflow in the first air duct where the evaporator is located, to avoid the ambient temperature being lower than the minimum operating temperature of the electrical components and affecting the operating performance of the electrical components, thereby maintaining the ambient temperature in a suitable operating temperature range.
[0008] When the integrated cabinet air conditioner of the utility model does not need to heat the airflow in the first air duct where the evaporator is located, the drive control mechanism controls the movement of the baffle so that the baffle opens the through slot, and the motion control mechanism controls the electric heater to pass through the through slot, that is, the electric heater moves from the first working position in the first air duct through the through slot of the partition to the second working position in the second air duct for placement, thereby preventing the electric heater from generating additional wind resistance in the first air duct where the evaporator is located, thereby improving the heat exchange effect and heat exchange efficiency, and then the drive control mechanism controls the movement of the baffle so that the baffle closes the through slot, thereby preventing the first air duct and the second air duct from being connected in series and affecting the heat exchange effect and efficiency.
[0009] Therefore, the integrated cabinet air conditioner of the utility model can control the electric heater to switch between the first working position and the second working position according to demand, can heat the airflow in the first air duct where the evaporator is located, and can avoid generating additional wind resistance in the first air duct where the evaporator is located, thereby improving the heat exchange effect and efficiency.
[0010] A further solution is that a first slide groove is provided on one side of the through groove, the first slide groove extends in the moving direction of the baffle plate, and one side of the baffle plate is movably located in the first slide groove.
[0011] A further solution is that the second working position is arranged close to the compressor.
[0012] It can be seen from the above scheme that when the integrated cabinet air conditioner of the utility model needs to heat the compressor in the second air duct where the condenser is located, the driving control mechanism controls the movement of the baffle so that the baffle opens the through slot, and the motion control mechanism controls the electric heater to pass through the through slot, that is, the electric heater moves from the first working position in the first air duct through the through slot of the partition to the second working position in the second air duct, and then the driving control mechanism controls the movement of the baffle so that the baffle closes the through slot to avoid the first air duct and the second air duct being connected to affect the heat exchange effect and efficiency, and then turns on the electric heater located at the second working position to heat the compressor in the second air duct where the condenser is located, thereby solving the problem of difficulty in starting the compressor at low temperature, or, if the electric heater is placed at the second working position, there is no need to perform the aforementioned related control actions, and the compressor can be heated by directly turning on the electric heater, so that the integrated cabinet air conditioner of the utility model can heat the compressor in the second air duct where the condenser is located to ensure normal startup of the compressor.
[0013] A further solution is that the integrated cabinet air conditioner also includes a cover, which is located in the second air duct and covers the outer periphery of the compressor, and a through hole is opened through the peripheral wall of the cover, and the second working position is located outside the cover and is arranged close to the through hole.
[0014] A further solution is that the integrated cabinet air conditioner also includes a support frame and a movable seat, the support frame is arranged in the second air duct, the motion control mechanism includes a lifting control mechanism and a lateral movement control mechanism, the lifting control mechanism is arranged on the support frame and can control the movable seat to move in the vertical direction, so that the movable seat switches between the second working position and the relative position with the through slot, the lateral movement control mechanism is arranged on the movable seat and can control the electric heater to move in the horizontal direction through the through slot, so that the electric heater switches between the first working position and the second air duct.
[0015] A further solution is that the support frame is provided with a second slide groove, the second slide groove extends in the vertical direction, and one side of the movable seat is movably located in the second slide groove.
[0016] A further solution is that the integrated cabinet air conditioner also includes a transfer seat, the motion control mechanism also includes a rotation control mechanism, the lateral movement control mechanism can control the transfer seat to move in the horizontal direction through the through slot, the rotation control mechanism is arranged on the transfer seat and can control the electric heater to rotate around the horizontal direction, so that the electric heater can switch between vertical placement and horizontal placement.
[0017] A further solution is that the integrated cabinet air conditioner also includes a supporting seat, the rotation control mechanism can control the supporting seat to rotate around the horizontal direction, the motion control mechanism also includes a folding control mechanism, the electric heater includes a first heating part and a second heating part, and the folding control mechanism is arranged on the supporting seat and can control the first heating part and the second heating part to move toward or away from each other.
[0018] A further solution is that the integrated cabinet air conditioner also includes a support arm, which extends in the moving direction of the transfer seat and is arranged across the lower end of the through groove. The support arm is provided with a third slide groove, which extends in the moving direction of the transfer seat, and the slide rail of the transfer seat is movably located in the third slide groove.
[0019] A further solution is that a avoidance groove is provided on the lower end surface of the baffle plate, and the avoidance groove is sleeved on the support arm. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a structural diagram from the first perspective of an embodiment of the integrated cabinet air conditioner of the utility model.
[0021] Figure 2 This is a structural diagram from a second viewing angle of an embodiment of the integrated cabinet air conditioner of the utility model.
[0022] Figure 3 It is a cross-sectional view of an embodiment of the integrated cabinet air conditioner of the utility model.
[0023] Figure 4 It is an exploded view of an embodiment of the integrated cabinet air conditioner of the utility model.
[0024] Figure 5 This is a first partial structural diagram of an embodiment of the integrated cabinet air conditioner of the utility model.
[0025] Figure 6 This is a second partial structural diagram of an embodiment of the integrated cabinet air conditioner of the utility model.
[0026] Figure 7 This is a structural diagram of the first working state of the electric heater in the embodiment of the integrated cabinet air conditioner of the utility model.
[0027] Figure 8 This is a structural diagram of the second working state of the electric heater in the embodiment of the integrated cabinet air conditioner of the utility model.
[0028] Fig. 9 It is a structural diagram of the coordination between the support frame and the support arm in the embodiment of the integrated cabinet air conditioner of the utility model.
[0029] Fig.10 It is a schematic diagram of the working state of the baffle in the embodiment of the integrated cabinet air conditioner of the utility model.
[0030] Fig.11 This is a schematic diagram of the first working state of the integrated cabinet air conditioner embodiment of the utility model.
[0031] Fig.12 This is a schematic diagram of the second working state of the integrated cabinet air conditioner embodiment of the utility model.
[0032] Fig.13 This is a schematic diagram of the third working state of the integrated cabinet air conditioner embodiment of the utility model.
[0033] Fig.14 This is a schematic diagram of the fourth working state of the integrated cabinet air conditioner embodiment of the utility model.
[0034] Fig.15 This is a schematic diagram of the fifth working state of the integrated cabinet air conditioner embodiment of the utility model.
[0035] Fig.16 This is a schematic diagram of the sixth working state of the integrated cabinet air conditioner embodiment of the utility model.
[0036] The present invention will be further described below with reference to the accompanying drawings and embodiments. DETAILED DESCRIPTION
[0037] See also Figures 1 to 10The present embodiment discloses an integrated cabinet air conditioner 10, comprising a housing 11, a partition 25, an evaporator 17, an evaporation fan 12, a condenser 16, a condensation fan 13, a compressor 14, a baffle 19, a drive control mechanism, an electric heater 18 and a motion control mechanism, wherein the partition 25 is arranged in the housing 11 to separate the inner cavity of the housing 11 into a first air duct 115 and a second air duct 116. In this embodiment, the peripheral wall of the housing 11 is provided with a first air inlet 111 and a first air outlet 112 respectively connected to the first air duct 115, the evaporation fan 12 is arranged at the first air inlet 111, and the evaporator 17 is arranged in the first air duct 115. In addition, the peripheral wall of the housing 11 is provided with a second air inlet 113 and a second air outlet 114 respectively connected to the second air duct 116, the condensation fan 13 is arranged at the second air inlet 113, and the condenser 16 and the compressor 14 are arranged in the second air duct 116. At the same time, in this embodiment, the partition 25 is penetrated by a through slot 251, and the drive control mechanism can control the movement of the baffle 19 so that the baffle 19 opens or closes the through slot 251. The motion control mechanism can control the electric heater 18 to pass through the through slot 251 so that the electric heater 18 switches between a first working position and a second working position. The first working position is located in the first air duct 115 and between the first air inlet 111 and the evaporator 17, and the second working position is located in the second air duct 116.
[0038] During operation of the integrated cabinet air conditioner 10 of this embodiment, if it is necessary to heat the airflow in the first air duct 115 where the evaporator 17 is located, the drive control mechanism controls the movement of the baffle 19 so that the baffle 19 opens the through slot 251, and the motion control mechanism controls the electric heater 18 to pass through the through slot 251, that is, the electric heater 18 moves from the second working position in the second air duct 116 through the through slot 251 of the partition 25 to the first working position in the first air duct 115, and then the drive control mechanism controls the movement of the baffle 19 so that the baffle 19 closes the through slot 251 to avoid the first air duct 115 and the second air duct 116 being connected to each other and affecting the heat exchange effect and efficiency, and then the electric heater 18 located at the first working position is turned on to heat the airflow in the first air duct 115 where the evaporator 17 is located to avoid the ambient temperature being lower than the minimum operating temperature of the electrical components and affecting the operating performance of the electrical components, thereby maintaining the ambient temperature in a suitable operating temperature range.
[0039] When the integrated cabinet air conditioner 10 of this embodiment does not need to heat the airflow in the first air duct 115 where the evaporator 17 is located, the drive control mechanism controls the movement of the baffle 19 so that the baffle 19 opens the through slot 251, and the motion control mechanism controls the electric heater 18 to pass through the through slot 251, that is, the electric heater 18 moves from the first working position in the first air duct 115 through the through slot 251 of the partition 25 to move to the second working position in the second air duct 116 for placement, so as to avoid the electric heater 18 from generating additional wind resistance in the first air duct 115 where the evaporator 17 is located, thereby improving the heat exchange effect and heat exchange efficiency, and then the drive control mechanism controls the movement of the baffle 19 so that the baffle 19 closes the through slot 251, so as to avoid the first air duct 115 and the second air duct 116 from being connected in series and affecting the heat exchange effect and efficiency.
[0040] Therefore, the integrated cabinet air conditioner 10 of this embodiment can control the electric heater 18 to switch between the first working position and the second working position according to demand, can heat the airflow in the first air duct 115 where the evaporator 17 is located, and can avoid generating additional wind resistance in the first air duct 115 where the evaporator 17 is located, thereby improving the heat exchange effect and heat exchange efficiency.
[0041] Specifically, the second working position of the present embodiment is also arranged near the compressor 14. Thus, when the integrated cabinet air conditioner 10 of the present embodiment needs to heat the compressor 14 in the second air duct 116 where the condenser 16 is located, the drive control mechanism controls the baffle 19 to move so that the baffle 19 opens the through slot 251, and then the motion control mechanism controls the electric heater 18 to pass through the through slot 251, that is, the electric heater 18 moves from the first working position in the first air duct 115 through the through slot 251 of the partition 25 to the second working position in the second air duct 116, and then the drive control mechanism controls the baffle 19 to move so that the baffle 19 closes the through slot 251, thereby preventing the first air duct 115 and the second air duct 116 from being heated. The duct 116 is connected and affects the heat exchange effect and efficiency, and then the electric heater 18 located at the second working position is turned on to heat the compressor 14 in the second air duct 116 where the condenser 16 is located, thereby solving the problem of difficulty in starting the compressor 14 at low temperature. Alternatively, if the electric heater 18 is placed at the second working position, there is no need to perform the aforementioned related control actions, and the electric heater 18 can be directly turned on to heat the compressor 14, so that the integrated cabinet air conditioner 10 of this embodiment can heat the compressor 14 in the second air duct 116 where the condenser 16 is located to ensure normal startup of the compressor 14.
[0042] In order to improve the movement stability and reliability of the baffle 19, a first slide groove 252 is provided on one side of the through groove 251 of the present embodiment. The first slide groove 252 extends in the movement direction of the baffle 19, and one side of the baffle 19 is movably located in the first slide groove 252. Specifically, first slide grooves 252 are provided on opposite sides of the through groove 251 of the present embodiment, and opposite sides of the baffle 19 are movably located in two first slide grooves 252. Further, the drive control mechanism of the present embodiment is composed of a drive motor and a mechanical structure such as a screw rod / gear / rack to control the movement of the baffle 19.
[0043] In order to protect the compressor 14, the integrated cabinet air conditioner 10 of this embodiment further includes a cover 15, which is located in the second air duct 116 and covers the outer periphery of the compressor 14, and a through hole 151 is formed through the peripheral wall of the cover 15, and the second working position is located outside the cover 15 and is arranged close to the through hole 151. The arrangement of the through hole 151 enables the airflow in the cover 15 to communicate with the airflow in the second air duct 116. Specifically, the evaporator 17 of this embodiment is arranged opposite to the first air outlet 112, and the condenser 16 of this embodiment is arranged opposite to the second air outlet 114.
[0044] In order to improve the movement stability and reliability of the electric heater 18, the integrated cabinet air conditioner 10 of this embodiment also includes a support frame 20 and a movable seat 22. The support frame 20 is arranged in the second air duct 116. The motion control mechanism includes a lifting control mechanism and a transverse control mechanism. The lifting control mechanism is arranged on the support frame 20 and can control the movable seat 22 to move in the vertical direction, so that the movable seat 22 switches between the second working position and the relative position with the through slot 251. The transverse control mechanism is arranged on the movable seat 22 and can control the electric heater 18 to move in the horizontal direction through the through slot 251, so that the electric heater 18 switches between the first working position and the second air duct 116. Thus, the lifting control mechanism of this embodiment controls the movable seat 22 to drive the transverse movement control mechanism and the electric heater 18 to move in the vertical direction, so that the movable seat 22 drives the transverse movement control mechanism and the electric heater 18 to switch between the second working position and the relative position with the through slot 251, and the transverse movement control mechanism can control the electric heater 18 to move in the horizontal direction through the through slot 251, so that the electric heater 18 switches between the first working position and the second air duct 116, thereby stably and reliably controlling the electric heater 18 to switch between the first working position and the second working position.
[0045] Among them, the support frame 20 of this embodiment is provided with a second slide groove 201, and the second slide groove 201 extends in the vertical direction. One side of the moving seat 22 is movably located in the second slide groove 201, thereby improving the stability and reliability of the moving seat 22 moving in the vertical direction, and further improving the stability and reliability of the movement of the electric heater 18. Specifically, the lifting control mechanism of this embodiment is composed of a lifting motor and a mechanical structure such as a screw rod / gear / rack to control the movement of the moving seat 22 in the vertical direction, and the transverse control mechanism of this embodiment is composed of a transverse motor and a mechanical structure such as a screw rod / gear / rack to control the movement of the electric heater 18 in the horizontal direction.
[0046] In addition, the integrated cabinet air conditioner 10 of this embodiment further includes a transfer seat 23, and the motion control mechanism further includes a rotation control mechanism. The lateral movement control mechanism can control the transfer seat 23 to move through the through slot 251 in the horizontal direction, and the rotation control mechanism is arranged on the transfer seat 23 and can control the electric heater 18 to rotate around the horizontal direction, so that the electric heater 18 switches between vertical placement and horizontal placement. Thus, the rotation control mechanism on the transfer seat 23 can control the electric heater 18 to rotate around the horizontal direction, so that the electric heater 18 is in a horizontal placement state when it is located in the first working position in the first air duct 115, thereby improving the heating efficiency of the airflow in the first air duct 115, and can make the electric heater 18 be in a vertical placement state when it is located in the second working position in the second air duct 116, thereby reducing the space occupied by the electric heater 18 in the second air duct 116. Specifically, the rotation control mechanism of this embodiment is a rotary motor.
[0047] Moreover, the integrated cabinet air conditioner 10 of this embodiment further includes a support seat 24, the rotation control mechanism can control the support seat 24 to rotate around the horizontal direction, the motion control mechanism also includes a folding control mechanism, the electric heater 18 includes a first heating part 181 and a second heating part 182, and the folding control mechanism is arranged on the support seat 24 and can control the first heating part 181 and the second heating part 182 to move toward or away from each other. Thus, when the electric heater 18 is located at the first working position in the first air duct 115 and is in a flat lying state, the folding control mechanism controls the first heating part 181 and the second heating part 182 of the electric heater 18 to move away from each other and open, further improving the heating efficiency of the airflow in the first air duct 115; when the electric heater 18 is located at the second working position in the second air duct 116 and is in a vertical placement state, the folding control mechanism controls the first heating part 181 and the second heating part 182 of the electric heater 18 to move toward each other and fold, further reducing the occupied space of the electric heater 18 in the second air duct 116. Specifically, the folding control mechanism of this embodiment is a folding cylinder.
[0048] In order to further improve the movement stability and reliability of the electric heater 18, the integrated cabinet air conditioner 10 of this embodiment further includes a support arm 21, which extends in the moving direction of the transfer seat 23 and is arranged across the lower end of the through slot 251, and the support arm 21 is provided with a third slide slot 211, which extends in the moving direction of the transfer seat 23, and the slide rail 231 on the transfer seat 23 is movably located in the third slide slot 211. Specifically, the lower end surface of the baffle 19 of this embodiment is provided with an avoidance slot 191, which is sleeved on the support arm 21 to prevent the first air duct 115 and the second air duct 116 from being connected in series and affecting the heat exchange effect and efficiency.
[0049] First, see Fig.11 , the electric heater 18 of the integrated cabinet air conditioner 10 of this embodiment is located at the first working position in the first air duct 115, and the first heating part 181 and the second heating part 182 of the electric heater 18 are opened away from each other and are in a flat state. At this time, the electric heater 18 can be turned on to heat the airflow in the first air duct 115 where the evaporator 17 is located. When the integrated cabinet air conditioner 10 of this embodiment does not need to heat the airflow in the first air duct 115 where the evaporator 17 is located, the electric heater 18 is turned off, and then the driving control mechanism controls the baffle 19 to move upward in the vertical direction, so that the baffle 19 opens the through slot 251 of the partition 25.
[0050] Next, see 12 and Fig.13 In this embodiment, the lateral movement control mechanism of the integrated cabinet air conditioner 10 controls the transfer seat 23 to drive the rotation control mechanism, the supporting seat 24, the folding control mechanism and the electric heater 18 to move in the horizontal direction through the through slot 251 of the partition 25, so that the transfer seat 23 drives the rotation control mechanism, the supporting seat 24, the folding control mechanism and the electric heater 18 to move to the relative position of the through slot 251 in the second air duct 116, and then the driving control mechanism controls the baffle 19 to move downward in the vertical direction so that the baffle 19 closes the through slot 251 of the partition 25.
[0051] Then, see Fig.14 The folding control mechanism of the integrated cabinet air conditioner 10 of this embodiment controls the first heating part 181 and the second heating part 182 of the electric heater 18 located at a position opposite to the through slot 251 to move and fold toward each other.
[0052] Afterwards, see Fig.15 In this embodiment, the rotation control mechanism of the integrated cabinet air conditioner 10 controls the supporting seat 24, the folding control mechanism and the folded electric heater 18 to rotate around the horizontal direction, so that the folded electric heater 18 is in a vertical placement state.
[0053] Then, see Fig.16The lifting control mechanism controls the moving seat 22 to drive the transverse movement control mechanism, the transfer seat 23, the rotation control mechanism, the supporting seat 24, the folding control mechanism and the folded and vertically placed electric heater 18 to move downward in the vertical direction to the second working position in the second air duct 116, so as to place the folded and vertically placed electric heater 18, or heat the compressor 14 close to the second working position to ensure that the compressor 14 starts normally.
[0054] The above embodiments are only preferred examples of the present invention and are not intended to limit the scope of implementation of the present invention. Therefore, any equivalent changes or modifications made based on the structure, features and principles of the present invention should be included in the scope of the present invention patent application.
Claims
1. An integrated cabinet air conditioner, comprising a casing, a partition, an evaporator, an evaporating fan, a condenser, a condensing fan and a compressor, wherein the partition is arranged in the casing to divide the inner cavity of the casing into a first air duct and a second air duct, a first air inlet and a first air outlet respectively connected to the first air duct are formed through the peripheral wall of the casing, the evaporating fan is arranged at the first air inlet, the evaporator is arranged in the first air duct, and a second air inlet and a second air outlet respectively connected to the second air duct are formed through the peripheral wall of the casing, the condensing fan is arranged at the second air inlet, the condenser and the compressor are respectively arranged in the second air duct, characterized in that: The integrated cabinet air conditioner also includes a baffle, a drive control mechanism, an electric heater and a motion control mechanism. The partition is penetrated by a through slot. The drive control mechanism can control the movement of the baffle so that the baffle opens or closes the through slot. The motion control mechanism can control the electric heater to pass through the through slot so that the electric heater switches between a first working position and a second working position. The first working position is located in the first air duct and between the first air inlet and the evaporator, and the second working position is located in the second air duct.
2. The integrated cabinet air conditioner according to claim 1, characterized in that: A first slide groove is provided on one side of the through groove, the first slide groove extends in the moving direction of the baffle plate, and one side of the baffle plate is movably located in the first slide groove.
3. The integrated cabinet air conditioner according to claim 1, characterized in that: The second working position is disposed close to the compressor.
4. The integrated cabinet air conditioner according to claim 3, characterized in that: The integrated cabinet air conditioner also includes a cover, which is located in the second air duct and covers the outer periphery of the compressor, and a through hole is opened through the peripheral wall of the cover, and the second working position is located outside the cover and is arranged close to the through hole.
5. The integrated cabinet air conditioner according to any one of claims 1 to 4, characterized in that: The integrated cabinet air conditioner further comprises a support frame and a moving seat, the support frame is arranged in the second air duct, the motion control mechanism comprises a lifting control mechanism and a lateral movement control mechanism, the lifting control mechanism is arranged on the support frame and can control the moving seat to move in a vertical direction, so that the moving seat switches between the second working position and the relative position with the through slot; The transverse movement control mechanism is arranged on the movable seat and can control the electric heater to move horizontally through the through slot, so that the electric heater switches between the first working position and the second air duct.
6. The integrated cabinet air conditioner according to claim 5, characterized in that: The support frame is provided with a second slide groove, which extends in a vertical direction, and one side of the movable seat is movably located in the second slide groove.
7. The integrated cabinet air conditioner according to claim 5, characterized in that: The integrated cabinet air conditioner also includes a transfer seat, and the motion control mechanism also includes a rotation control mechanism. The lateral movement control mechanism can control the transfer seat to move horizontally through the through slot. The rotation control mechanism is arranged on the transfer seat and can control the electric heater to rotate around the horizontal direction, so that the electric heater can switch between vertical placement and horizontal placement.
8. The integrated cabinet air conditioner according to claim 7, characterized in that: The integrated cabinet air conditioner also includes a supporting seat, the rotation control mechanism can control the supporting seat to rotate around the horizontal direction, the motion control mechanism also includes a folding control mechanism, the electric heater includes a first heating part and a second heating part, the folding control mechanism is arranged on the supporting seat and can control the first heating part and the second heating part to move toward or away from each other.
9. The integrated cabinet air conditioner according to claim 7 or 8, characterized in that: The integrated cabinet air conditioner also includes a support arm, which extends in the moving direction of the transfer seat and is arranged across the lower end of the through groove. The support arm is provided with a third slide groove, which extends in the moving direction of the transfer seat. The slide rail of the transfer seat is movably located in the third slide groove.
10. The integrated cabinet air conditioner according to claim 9, characterized in that: The lower end surface of the baffle is provided with an escape groove, and the escape groove is sleeved on the support arm.