This application is based on and claims priority to Chinese Patent Application No. 201822112078.9, filed Dec. 14, 2018, the entire contents of which are incorporated herein by reference.
This application relates to the field of air processing equipment, in particular to an air conditioner indoor unit and an air conditioner having the same.
In the relevant technology, the door is set on the housing of the air conditioner indoor unit, and the door slides relative to the housing to expose or cover the air outlet. However, the sliding door is relatively monotonous, lacking the sense of science and technology. Moreover, the air supply mode of the above air conditioner indoor unit is relatively single, and the indoor temperature distribution is uneven, which seriously affects the user's experience.
The purpose of this application is to address at least one of the technical problems in the existing technology. Therefore, one of the purposes of this application is to propose an air conditioner indoor unit, which has the advantages of good air supply effect and strong sense of science and technology.
The application also proposes an air conditioner having such air conditioner indoor unit.
The air conditioner indoor unit in accordance with the embodiment of this application includes: the housing, on which the air inlet, the first air outlet and the second air outlet are mounted, and in which the air duct flow paths connected between the air inlet and the first air outlet and between the air inlet and the second air outlet respectively are equipped; the fan assembly, which is arranged in the housing to guide the air flow in the air duct flow path; the first drive mechanism and the first door, where the first drive mechanism is mounted in the housing, the first drive mechanism is connected to and drives the first door to move so that the first door has open state and closed state, the first door will be switched over to the open state when the first drive mechanism drives the first door to move outwards relative to the housing to the set position, the first door will expose the first air outlet in the open state, and the first door cooperates with the housing to cover the first outlet in the closed state; the second drive mechanism and the second door, where the second drive mechanism is connected to and drives the second door to slide relative to the housing to expose or cover the second air outlet.
The air conditioner indoor unit according to the embodiment of this application is fitted with the first door and the second door, where the first drive mechanism can realize the exposing and covering of the first air outlet by controlling the forward/backward movement of the first door, the second drive mechanism can drive the second door to slide relative to the housing to realize the exposing and covering of the second air outlet, which improves the sense of science and technology of the air conditioner indoor unit. Moreover, the air flowing from the first air outlet and the second air outlet can be mixed in the indoor space, so that the air could flow to every corner of the indoor space uniformly, and the indoor temperature could be distributed more evenly, which enhances the comfort level of the air conditioner indoor unit.
According to some embodiments of this application, the first door includes: the flow guiding member which is connected to and is driven by the first drive mechanism, and where the outer wall of the flow guiding member guides the air flow to move when the first door is in open state; and the sealing member which is connected to the flow guiding member, so that the sealing member fits with the housing to cover the first air outlet when the first door is in closed state.
In some embodiments of this application, the vertical sectional area of the flow guiding member increases gradually along the direction from the air inlet to the first air outlet.
According to some embodiments of this application, the first drive mechanism includes: the first drive motor which is installed in the housing; the first drive gear which is connected to the first drive motor so that the motor can drive the drive gear; and the first rack which extends along the moving direction of the first door, and fits with and is driven by the first drive gear, and where one end of the first rack is connected to and drives the first door.
In some embodiments of this application, the first rack is fitted with limiting groove extending along the moving direction of the first door, the first drive mechanism also includes the stop lever extending into the limiting groove, and the stop lever slide-fits with the limiting groove, so that the stop lever will reach one end of the limiting groove to limit the first door when the first door is in the open state.
In some embodiments of this application, the fan assembly includes an air outlet duct which is mounted directly opposite to the first air outlet, and has mounting space where the first drive mechanism is installed.
In some embodiments of this application, the first drive mechanism also includes a rack box that is connected to the air outlet duct, on which the guide hole is mounted, and where the first rack passes through the guide hole to reciprocate relative to the rack box.
In some embodiments of this application, the second drive mechanism drives the second door sliding in the up-down direction.
In some embodiments of this application, the second drive mechanism includes: the second drive motor; the second drive gear which is connected to and is driven by the second drive motor; and the second rack which extends along the moving direction of the second door, it meshes with and is driven by the second drive gear to move, and where one end of the second rack is connected to and drives the second door.
In some embodiments of this application, the fan assembly includes the first fan and the second fan, where the first fan and the first outlet are set facing each other, while the second fan and the second outlet are set facing each other.
In some embodiments of this application, the first fan is a diagonal fan, and the second fan is a counter-rotating fan.
According to some embodiments of this application, the first outlet is above the second outlet.
The air conditioner according to embodiments of this application includes the air conditioner indoor unit in the aforesaid embodiment of this application.
In the air conditioner according to embodiments of this application, by setting the air conditioner indoor unit mentioned above, not only the air conditioner's sense of science and technology can be improved, but also the cooling and heating effect of air conditioner can be enhanced, which promotes the user's comfort greatly, and thus enhances the market competitiveness of air conditioner.
Additional aspects and benefits of this application will be presented in the following sections, which will become apparent from the following descriptions or through the practice of this application.
The above and/or additional aspects and advantages of this application will become apparent and easy to understand from the description of embodiments in combination with the attached drawings below, where:
The embodiments of this application are described in detail below, and examples of the embodiments are shown in the attached drawings, throughout which the identical or similar labels are used to denote the identical or similar elements or elements having identical or similar functions. The embodiments described below by reference to the attached drawings are illustrative and are used only to interpret this application but should not be construed as limiting this application.
The following part refers to
As shown in
Where, first air inlet 12a, first air outlet 11a, and second air outlet 11b can be arranged at housing 1, and housing 1 may contain the air duct flow paths that connect the air inlet 12a to the first air outlet 11a, and connect the air inlet 12a to the second air outlet 11b respectively, and the fan assembly 2 may be placed in the housing 1 to guide the air flow circulating in the air duct flow path. Specifically, when the air conditioner indoor unit 100 works, the fan assembly 2 can be rotated to create negative pressure in the air duct flow path so that the air flow can enter the air path through the air inlet 12a under the effect of such negative pressure, and can be discharged through the first air outlet 11a and the second air outlet 11b after circulating in the air path. The air flow can be discharged only through the first air outlet 11a or the second air outlet 11b, or be discharged through both of them.
As shown in
As shown in
Specifically, the first drive mechanism 4 can drive the first door 3 moving forward and backward to expose or cover the first air outlet 11a. When the air conditioner indoor unit 100 works, the first drive mechanism 4 can drive the first door 3 forward to the set position, at which point the first door 3 can expose the first air outlet 11a so that the air flow can be discharged through the first air outlet 11a. When the air conditioner indoor unit 100 stops working, the first drive mechanism 4 can drive the first door 3 backward, and the first door 3 can cooperate with the housing 1 to cover the first air outlet 11a.
As shown in
Optionally, the working statuses of the first door 3 and the second door 5 can be controlled separately. When the air needs to be discharged through the first air outlet 11a, the first door 3 can be driven by the first drive mechanism 4 so as to switch the first door 3 to the open state, at which point the first air outlet 11a will be exposed. When the air needs to be discharged through the second air outlet 11b, the second door 5 can be driven by the second drive mechanism 6 to slide relative to the housing 1 to expose the second air outlet 11b. Of course, it can be understood that the first door 3 and the second door 5 can also move jointly, that is, the first door 3 and the second door 5 can move simultaneously, so that the first air outlet 11a and the second air outlet 11b can be exposed or covered simultaneously.
Therefore, through the above settings, the first drive mechanism 4 can realize the exposing and covering of the first air outlet 11a by controlling the forward and backward movement of first door 3, while the second drive mechanism 6 can drive the second door 5 to slide relative to the housing 1 to realize the exposing and covering of second air outlet 11b, which improves the sense of science and technology of the air conditioner indoor unit 100. In addition, the air flow blown out from the first air outlet 11a can be distributed along the circumferential direction of the first door 3, the air flows blown out from the first air outlet 11a and the second air outlet 11b can be mixed in the indoor space, so that the air flows can be circulated uniformly to each corner of the indoor space, and the indoor temperature will be more even. Furthermore, the first door 3 can prevent the air flow from blowing directly to the users in the room to avoid discomfort, which enhances the use comfort of the air conditioner indoor unit 100 significantly.
According to embodiments of this application, the air conditioner indoor unit 100 includes the first door 3 and the second door 5, so that the first drive mechanism 4 can realize the exposing and covering of the first air outlet 11a by controlling the forward and backward movement of first door 3, while the second drive mechanism 6 can drive the second door 5 to slide relative to the housing 1 to realize the exposing and covering of second air outlet 11b, which improves the sense of science and technology of the air conditioner indoor unit 100. In addition, the air flows blown out from the first air outlet 11a and the second air outlet 11b can be mixed in the indoor space, so that the air flows can be circulated uniformly to each corner of the indoor space, and the indoor temperature will be more even, which enhances the use comfort of the air conditioner indoor unit 100 significantly.
As shown in
Specifically, when the first door 3 is in the open state, the air outlet area of first air outlet 11a can be formed between the flow guiding member 31 and the housing 1. The air flow can be blown out along the outer wall of flow guiding member 31. The flow guiding member 31 can serve to guide air flow, which not only can reduce the circulation resistance of the air flow, improve the air outlet efficient of the first air outlet 11a, but also can distribute the air properly. The air flow can be distributed around the circumferential direction of flow guiding member 31, so that the indoor temperature distribution will be more uniform.
When the first door 3 is in the closed state, the sealing member 32 can cooperate with the housing 1 to seal the first air outlet 11a, so as to protect the air conditioner indoor unit 100 and prevent the dust and dirt from entering air conditioner indoor unit 100 through the first air outlet 11a. Optionally, the first air outlet 11a can be formed to have a circular shape, and the sealing member 32 can be formed to have a disk shape. The outer diameter of the sealing member 32 can be larger than the diameter of the first air outlet 11a, so as to improve the sealing effect of first air outlet 11a. Optionally, the sealing member 32 may be either integrated with the flow guiding member 31, or connected to the guiding member 31 by screw fastening or riveting.
As shown in
For example, as shown in
As shown in
Specifically, the air conditioner indoor unit 100 can have the first normal air supply mode and the first breezeless mode. When the air conditioner indoor unit 100 is in the first normal air supply mode, the first door 3 will be in the open state, and can be driven by the first drive mechanism 4 to move forward to the set position to expose the first air outlet 11a so that a part of the air can be dispersed around the flow guiding member 31 to the first air outlet 11a, while another part of the air can flow into the air guide channel and be discharged through multiple first micro air outlets 32a. When the air conditioner indoor unit 100 is in the first breezeless mode, the first door 3 will be in the closed state, and the air can flow into the air guide channel and be discharged through multiple first micro air outlets 32a. It could be understood that multiple first micro air outlets 32a can divide the air flow into several small branch air flows, and the first micro air outlets 32a with a small diameter can slow down the air flow, so that the air can flow out slowly through multiple micro air outlets. It thus can realize the breezeless air supply effect, prevent the air from being blown directly to the users, thus causing discomfort, and make the indoor temperature distribution more uniform, which improves the user experience significantly.
Optionally, when the air conditioner indoor unit 100 is in the cooling mode, it can be adjusted to the first breezeless mode to prevent the cool air from being blown directly to indoor users, and the cool air can be circulated to the indoor space slowly through multiple first micro air outlets 32a. When the air conditioner indoor unit 100 is in the heating mode, it can be adjusted to the first normal air supply mode since the air density of the warm air is relatively small and the circulation speed is relatively slow, so that the warm air can be circulated quickly into the indoor space through the first air outlet 11a, thereby improving the heating efficiency of the air conditioner indoor unit 100.
As shown in
Optionally, the first drive mechanism 4 can include two one-to-one matching pairs of first drive gear 41 and first rack 42, which can be spaced and connected to the first door 3 respectively, and which thus makes the matching structure between the first drive mechanism 4 and the first door 3 firmer, and the operation of the first door 3 more stable. Further, the first drive mechanism 4 can include a first drive motor 45, the first drive motor 45 is a two-axle motor, two shafts of which rotate in the same direction and are connected to the first drive gears 41, respectively. Thus, the above settings can make the overall structure of the first drive mechanism 4 more compact and also improve the operational uniformity of the two first racks 42. Of course, the first drive mechanism 4 can also include two first drive motors 45 that can operate synchronously, and each of the drive motors 45 is a single-axle motor and is connected to the corresponding first drive gear 41.
In the examples shown in
It should be noted that the first drive mechanism 4 is not limited to this design, as long as it can drive the first door 3 forward and backward. For example, the first drive mechanism 4 can also be a linear motor or hydraulic drive cylinder. One end of the linear motor or hydraulic drive cylinder can be connected to the housing 1, and the other end can be connected to the first door 3, which can also drive the first door 3 to switch flexibly between the open state and the closed state.
As shown in
Optionally, the contact sensor (not shown in the figure) can be mounted on the outer wall of the stop lever 43, and can be connected to communicate with the first drive motor 45. When the first drive mechanism 4 drives the first door 3 to move, the first drive motor 45 can drive the first drive gear 41 to rotate, and the first drive gear 41 meshes with and drives the first rack 42 to move; when the first rack 42 is moving, the stop lever 43 may slide-fit with the limiting groove 421 on the first rack 42. When the first rack 42 moves to the set position, the contact sensor on the stop lever 43 will contact with one end of the limiting groove 421, and transfer the contact signal to the first drive motor 45 that will stop working after receiving such signal. Therefore, the intelligent control of the first drive mechanism 4 can be achieved through the above settings, making the operation of the first drive mechanism 4 more convenient.
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For example, as shown in
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According to some embodiments of this application as shown in
As shown in
In this case, the open and closed states of the first door 3 and the second door 5 can be controlled respectively. When the air conditioner indoor unit 100 is in cooling mode, the second drive mechanism 6 can drive the second door 5 to slide to cover the second air outlet 11b, while the first drive mechanism 4 can drive the first door 3 to move forward to expose the first air outlet 11a. It could be understood that the cool air can enter the upper half of the indoor space through the first air outlet 11a since the first air outlet 11a is above the second air outlet 11b; the cool air can circulate slowly from top to bottom in the indoor space as the cool air density is relatively big, which not only improves the cooling effect, but also prevents the cool air from being blown to the indoor users directly through the second air outlet 11b, resulting in discomfort.
When the air conditioner indoor unit 100 is in the heating mode, the second drive mechanism 6 can drive the second door 5 to slide to expose the second air outlet 11b, while the first drive mechanism 4 can drive the first door 3 to move forward to expose the first air outlet 11a. Now the first air outlet 11a and the second air outlet 11b output air simultaneously. It could be understood that the heating efficiency of the air conditioner indoor unit 100 may be enhanced, and the warm air can circulate smoothly to the floor and warm the feet, which improves the use experience of the user when the first air outlet 11a and the second air outlet 11b output the air at the same time as the warm air density is relatively small and its circulation speed is relatively low.
It is noted that the first air outlet 11a and second air outlet 11b of the air conditioner indoor unit 100 are not limited to this setting. For example, multiple first air outlets 11a and multiple second air outlets 11b can be set on the air conditioner indoor unit 100, which can be set according to the actual use demand. There is no specific restriction in this application.
In a specific example of this application, the second air outlet 11b is located above the first air outlet 11a, where at the first air outlet 11a there is a first door 3 which can be connected to the first drive mechanism 4; the first drive mechanism 4 can drive the first door 3 to reciprocate to expose or cover the first air outlet 11a. The second door 5 is set at the second air outlet 11b, and can be connected to the second drive mechanism 6 which drives the second door 5 to reciprocate to expose or cover the second air outlet 11b. In this case, the second door 5 can expose the second air outlet 11b by sliding from top to bottom, and cover the second air outlet 11b by sliding from bottom to top, or cover the second air outlet 11b by sliding from top to bottom and expose the second air outlet 11b by sliding from bottom to top.
In some embodiments of this application, the second drive mechanism 6 can drive the second door 5 to slide in the up-down direction, so that the air outlet area of the second air outlet 11b can be adjusted conveniently. It could be understood that the second air outlet 11b can be extended in the up-down direction, and the air outlet area of second air outlet 11b can be adjusted by controlling the sliding displacement of second door 5 in the up-down direction, which makes the operation more convenient when the height of air conditioner indoor unit 100 is relatively large. Of course, the second drive mechanism 6 can also drive the second door 5 to slide along the left-right direction and along a direction that has a tilt angle with respect to the left-right direction and the up-down direction. The settings can be selected according to the actual use needs, for which there is no specific restriction in this application.
As shown in
Optionally, the second drive mechanism 6 can include two one-to-one matching pairs of second drive motor, second drive gear 61 and second rack 62. Both second racks 62 are extended in the up-down direction and are spaced in the left-right direction. Both second racks 62 are connected to the inner walls of second door 5. When the second drive mechanism 6 works, two second drive motors rotate synchronously and two second racks 62 drive the second door 5 to slide relative to the housing 1, thereby making the operation of the second door 5 more stable.
In a specific example of this application, the air conditioner indoor unit 100 can also include the door mount plate 8 on which the second drive mechanism 6 can be mounted. In this case, the second rack 62 can be mounted on the front wall of the door mount plate 8 and attached to the inner wall of the second door 5. The door mount plate 8 includes the slide track (not shown in the figure) while the second door 5 slide-fits with the slide track. Therefore, the above settings can facilitate the installation and fixation of the second drive mechanism 6, and besides, the second door 5 can cooperate with the slide track to reduce the sliding resistance of the second door 5, thus making its operation smoother and reducing the working load of the second drive motor.
It should be noted that this is not the only structural design of the second drive mechanism 6, as long as it can drive second door 5 to slide relative to the housing 1. For example, the second drive mechanism 6 can also be a linear motor or hydraulic drive cylinder, one end of which can be connected to the housing 1 and the other end can be connected to the second door 5, which can also drive the second door 5 to slide relative to the housing 1.
As shown in
Optionally, the first fan 22 can be an axial fan, a diagonal fan or a counter-rotating fan. Optionally, the second fan 23 can be an axial fan, a diagonal fan or a counter-rotating fan.
In some embodiments of this application, the first fan 22 can be a diagonal fan, and the second fan 23 can be a counter-rotating fan, which improves the air supply effect of the air conditioner indoor unit 100. Understandably, the diagonal fan adopts the mode of axial air inlet and air outlet inclined at a certain angle along the axial direction for air supply. Moreover, the air outlet volume of the diagonal fan is relatively large, which not only improves the air outlet volume of first fan 22, but also increases the air outlet angle of first fan 22, thereby expanding the air supply range of the first fan 22.
This counter-rotating fan can include two wind wheels mounted on the opposite sides, whose blades are distributed in the opposite directions. When the counter-rotating fan is working, if two wind wheels rotate in opposite directions, the air supply speeds of two wind wheels can be cancelled out in the tangential directions of their rotation directions, while the air supply speeds of two wind wheels can overlap in the axial directions, which can increase the axial air supply speed of the second fan 23, extend the air supply distance of the second fan 23 and enable the second fan 23 to supply air for long distance. If two wind wheels of the counter-rotating fan rotate in the same direction, the air supply speeds of two wind wheels may overlap in the tangential direction of their rotation directions, and the air supply speeds of two wind wheels can be cancelled out in the axial direction, so that the air can be dispersed all around the second fan 23 and be prevented from being blown directly to the indoor user through the second air outlet 11b, thereby realizing breezeless air outlet effect and improving the use comfort of the user.
In this case, when only one wind wheel is working, the counter-rotating fan can be used to realize breezeless air outlet effect. Specifically, when one wind wheel of the counter-rotating fans is rotating, another inactive wind wheel also can rotate under the effect of the air flow. At this time, the two wind wheels will rotate in the same direction; according to the above description, the counter-rotating fan also can realize breezeless effect at this moment.
Besides, when two wind wheels in the counter-rotating fan rotate simultaneously at low speed, they can realize the breezeless air outlet effect regardless of their rotation directions. It could be understood that the air can flow out slowly through the first air outlet 11a, thus realizing breezeless effect since two wind wheels in counter-rotating fan rotate at low speed, and the circulation speed of air is relatively low.
Therefore, through the above settings, the first fan 22 can be turned on when the air supply angle needs to be increased. The first fan 22 can achieve the effect of air supply in a wide range. When it is required to supply air for long distance, the second fan 23 can be turned on and the two wind wheels of second fan 23 can be controlled to rotate in the opposite directions, thus improving the air supply distance of second fan 23 greatly. When the breezeless mode is required, two wind wheels of the second fan 23 can be controlled to rotate in the same direction, so that the second fan 23 can disperse the air all around, preventing the air from being blown directly to the indoor users through the second air outlet 11b. When the first fan 22 and the second fan 23 work at the same time, two air flows from the first air outlet 11a and the second air outlet 11b may be mixed in the indoor room so that the indoor temperature distribution will be more uniform since the air outlet angles of the first air outlet 11a and the second air outlet 11b are different.
It should be noted that the designs of the first fan 22 and the second fan 23 are not limited herein. The first fan 22 may be an axial fan, diagonal fan or counter-rotating fan, and the second fan 23 also may be an axial fan, diagonal fan or counter-rotating fan. It can be used in combination according to the actual use requirements, and there is no specific restriction in this application.
In the specific example shown in
As shown in
Specifically, the air conditioner indoor unit 100 can have the second normal air supply mode and the second breezeless mode. When the air conditioner indoor unit 100 is in the second normal air supply mode, the second drive mechanism 6 can drive the second door 5 to slide relative to the housing 1 to expose the second air outlet 11b, through which the air can be discharged. When the air conditioner indoor unit 100 is in the second breezeless mode, the second door 5 can cooperate with the housing 1 to cover the second air outlet 11b, so that the air can be discharged through multiple second micro air outlets 5a. It could be understood that multiple second micro air outlet 5a can divide the air flow into several small branch air flows, and the second micro air outlet 5a with small diameter can slow down the air flow, so that the air can flow out slowly through the second micro air outlet 5a. It thus can realize the breezeless air supply effect, and prevent the air from being blown directly to the users, causing discomfort, which improves the user experience significantly.
Optionally, when the air conditioner indoor unit 100 is in the cooling mode, it can be adjusted to the second breezeless mode to prevent the cool air from being blown directly to indoor users, and the cool air can be circulated to the indoor space slowly through multiple second micro air outlets 5a. When the air conditioner indoor unit 100 is in the heating mode, it can be adjusted to the second normal air supply mode since the air density of the warm air is relatively small and the circulation speed is relatively slow, so that the warm air can be circulated quickly into the indoor space through the second air outlet 11b, improving the heating efficiency of the air conditioner indoor unit 100.
As shown in
For example, as shown in
The air conditioner according to embodiments of this application includes the air conditioner indoor unit 100 in the aforesaid embodiment of this application.
In the air conditioner according to embodiments of this application, by setting the air conditioner indoor unit 100 mentioned above, not only the air conditioner's sense of science and technology can be improved, but also the cooling and heating effect of air conditioner can be enhanced, which promotes the user's comfort greatly, and thus enhances the market competitiveness of air conditioner.
In the description of this application, it should be understood that the orientation or position relations indicated with the terms “length”, “width”, “thickness” and “up”, “down”, “front” and “rear”, “left”, “right” and “vertical”, “inner” and “outer”, “circumferential” are based on the orientation or position relationships shown in the attached drawings, are used only for the convenience of describing this application and simplifying the description, rather than indicating or implying that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, so they shall not be construed as a restriction on this application. In addition, a feature associated with “first” or “second” may, explicitly or implicitly, include one or more such features. Unless otherwise stated, “multiple” means two or more in the description of this application.
In the description of this application, it should be noted that unless otherwise expressly specified and defined, the terms “installation”, “linking” and “connection” shall be understood generally, for example, it may be fixed connection, detachable connection, or integral connection; or mechanical or electrical connections; or direct linking, indirect linking through an intermediate medium, or internal connection of two components. The specific meaning of the above terms in this application may be understood on a case by case basis by ordinary technical personnel in the field.
In the description of this application, the terms “an embodiment”, “some embodiments” and “schematic embodiment”, “example”, “specific example”, or “some examples” etc. means that the specific feature, structure, material or characteristic of that embodiment or example described are included in at least one embodiment or example of this application. In this description, the schematic presentation of such terms may not refer to the same embodiment or example. Moreover, the specific features, structure, material or characteristics described may be combined in an appropriate manner in any one or multiple embodiments or examples.
Although the embodiments of this application have been presented and described, the ordinary technical personnel in the field can understand that multiple changes, modifications, substitutions and variations of such embodiments can be made without deviating from the principles and purposes of this application, and that the scope of the invention is defined by the claims and their equivalents.
Number | Date | Country | Kind |
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201822112078.9 | Dec 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2019/078823 | 3/20/2019 | WO | 00 |