The present disclosure relates to a technical field of household appliances, including to a flow guiding structure for a mite remover and a mite remover.
A mite remover is specially used to clean allergens, such as dust, breeding bacteria, and mites on textile fabrics, such as a bed, a sofa, or a carpet. When a user uses the mite remover for cleaning, the mite remover is in a contact with a dust-attached surface to be cleaned, and sucks the allergens, such as dust, breeding bacteria, and mites into a housing of the mite remover through a fan, and the dust is sucked into a dust cup. At present, when the fan of the mite remover operates, a generated cold air is directly discharged through an air outlet, thus resulting in a waste of the cold air.
An objective of the present disclosure is to provide a flow guiding structure for a mite remover and a mite remover, which can reasonably and effectively utilize an airflow generated by a fan.
Exemplary embodiments of a first aspect of the present disclosure provide a flow guiding structure for a mite remover. The flow guiding structure can include a flow guider arranged in a housing of the mite remover, and the housing has a first cavity for accommodating an airflow generating unit of the mite remover and a second cavity at least for accommodating a heat source of the mite remover. The flow guider can include a cold-air pipeline assembly communicated with an air output side of the airflow generating unit, and configured to send a part of an airflow generated by the airflow generating unit into the second cavity, so as to cool the heat source received in the second cavity, the housing including at least one first air output side at a portion of the housing corresponding to the second cavity, the first air output side being configured to discharge the airflow sent into the second cavity by the cold-air pipeline assembly. Further, the flow guider can include a hot-air pipeline, at least a part of the hot-air pipeline being arranged in the second cavity for receiving and fixing a heating element of the mite remover, the housing further including a second air output side at another portion of the housing corresponding to the second cavity, the second air output side being connected with the hot-air pipeline, the hot-air pipeline being also communicated with the air output side of the airflow generating unit, for directly discharging another part of the airflow generated by the airflow generating unit out of the housing through the second air output side.
In addition, embodiments of a second aspect of the present disclosure also provide a mite remover. The mite remover can include a housing having a first cavity and a second cavity, an air flow generating unit arranged in the first cavity, a heat source arranged in the second cavity, and a flow guiding structure. The flow guiding structure includes a flow guider arranged in the housing. The flow guider can include a cold-air pipeline assembly communicated with an air output side of the airflow generating unit, and configured to send a part of an airflow generated by the airflow generating unit into the second cavity, so as to cool the heat source received in the second cavity, the housing including at least one first air output side at a portion of the housing corresponding to the second cavity, the first air output side being configured to discharge the airflow sent into the second cavity by the cold-air pipeline assembly. The flow guider can include a hot-air pipeline, at least a part of the hot-air pipeline being arranged in the second cavity for receiving and fixing a heating element of the mite remover, the housing further including a second air output side at another portion of the housing corresponding to the second cavity, the second air output side being connected with the hot-air pipeline, the hot-air pipeline being also communicated with the air output side of the airflow generating unit, for directly discharging another part of the airflow generated by the airflow generating unit out of the housing through the second air output side.
In addition, embodiments of a third aspect the present disclosure also provide a flow guiding structure for mite remover. The flow guiding structure includes a flow guider arranged in a housing of the mite remover, and the housing has a first cavity for accommodating an airflow generating unit of the mite remover and a second cavity for accommodating a heat source of the mite remover. The flow guider can include a cold-air pipeline assembly communicated with an air output side of the airflow generating unit, and configured to send a part of an airflow generated by the airflow generating unit into the second cavity, so as to cool the heat source received in the second cavity. The flow guider can also include a hot-air pipeline arranged in the second cavity, and configured to receive and fix a heating element of the mite remover, the housing including an air output side at a portion of the housing corresponding to the second cavity, the air output side of the housing being connected with the hot-air pipeline, the hot-air pipeline being configured to discharge the airflow sent into the second cavity out of the housing through the air output side of the housing, and the airflow discharged through the air output side of the housing being an airflow that has cooled the heat source.
It should be understood that both the foregoing general description and the following detailed description are example and explanatory only and are not restrictive of the present disclosure, as claimed.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate exemplary embodiments consistent with the disclosure and together with the description serve to explain the principles of the disclosure.
In order to make objectives, technical solutions and advantages of the present disclosure more clear, detailed description is further made below to implementations of the present disclosure with reference to accompanying drawings. However, those skilled in the art can understand that in various embodiments of the present disclosure, many technical details are provided so as to help readers to better understand the present disclosure. Nevertheless, even without these technical details as well as various changes and modifications based on the following embodiments, the technical solutions claimed in the claims of the present disclosure can be realized as well.
A first exemplary embodiment of the present disclosure is described with reference to
Accordingly, the housing 2 has at least one first air output side 8 at a portion thereof corresponding to the second cavity 22, and the first air output side 8 is configured to discharge the airflow sent into the second cavity 22 by the cold-air pipeline assembly 4. At least a part of the hot-air pipeline 5 is arranged in the second cavity 22, and a heating element 7 of the mite remover is received and fixed in the hot-air pipeline 5. Specifically, as illustrated in
As can be seen from the above, the flow guiding structure for the mite remover includes the flow guider arranged in the housing 2 of the mite remover, the flow guider includes the cold-air pipeline assembly 4 and the hot-air pipeline 5, both the cold-air pipeline assembly 4 and the hot-air pipeline 5 are communicated with the air output side of the airflow generating unit 1, and a part of the airflow generated by the airflow generating unit 1 is sent into the second cavity 22 through the cold-air pipeline assembly 4, so as to cool the heat source 6 received in the second cavity 22. Accordingly, the housing 2 has at least one first air output side 8 at the portion thereof corresponding to the second cavity 22, and the first air output side 8 is configured to discharge the airflow sent into the second cavity 22 by the cold-air pipeline assembly 4. Further, at least a part of the hot-air pipeline 5 is arranged in the second cavity 22, and the heating element 7 of the mite remover is received and fixed in the hot-air pipeline 5. The housing 2 further has the second air output side 9 at the portion thereof corresponding to the second cavity 22, the second air output side 9 is connected with the hot-air pipeline 5, and the hot-air pipeline 5 is communicated with the second air output side 9 and directly discharges a part of the airflow generated by the airflow generating unit 1 out of the housing 2 through the second air output side 9. Thus, by the arrangement of the flow guider in the housing 2 of the mite remover, the airflow generated by the airflow generating unit 1 can be sent into the second cavity 22, so as to realize the cooling of the heat source 6 of the mite remover, and to dissipate the heat generated by the heating element 7 of the mite remover, such that the airflow generated by the airflow generating unit 1 can be utilized reasonably and effectively.
In addition, in this embodiment, as illustrated in
In this embodiment, two heat sources 6 are provided, namely, a battery pack assembly of the mite remover and a rolling-brush gear assembly of the mite remover. The battery pack assembly is arranged between any one of the cold-air pipelines and the corresponding first air output side 8, and the rolling-brush gear assembly is arranged between the other cold-air pipeline and the corresponding first air output side 8. The battery pack assembly and the rolling-brush gear assembly may be arranged in the second cavity 22 and on left and right sides, respectively, and the two first air output sides 8 are arranged on left and right sides of the housing 2, respectively. The heating element 7 may be configured as a PTC electric heating element.
In addition, it should be noted that in this embodiment, an air volume at the air output side of the airflow generating unit 1 is greater than that at the first air output side 8, and is also greater than that at the second air output side 9. Therefore, the airflow generated by the airflow generating unit will enter the cold-air pipeline assembly 4 and the hot-air pipeline 5 simultaneously after entering the air input pipeline 3, so as to realize a flow distribution.
Furthermore, the airflow generating unit 1 may be a fan, the housing 2 of the mite remover is also provided with an air inlet communicated with an air input side of the airflow generating unit 1, and the air inlet is usually formed in a bottom of the housing 2. Accordingly, an air intake port communicated with the air inlet is formed in a bottom of a dust bucket of the mite remover. The airflow enters the dust bucket through the air inlet in the housing 2 and the air intake port in the dust bucket, and further enters into the fan after being filtered by a sponge and a HEPA. Moreover, the fan has an air outlet in a side thereof facing the flow guider, and the airflow entering the fan is sent into the flow guider through the air outlet. Finally, the airflow is distributed by the flow guider, so as to utilize the airflow generated by the fan reasonably and effectively.
A second embodiment of the present disclosure relates to a flow guiding structure for a mite remover, and is roughly the same with the first embodiment. The main differences lie in that, as illustrated in
A third embodiment of the present disclosure relates to a flow guiding structure for a mite remover, as illustrated in
The hot-air pipeline is arranged in the second cavity 122, and a heating element of the mite remover is received and fixed in the hot-air pipeline. Moreover, the housing 12 further has an air output side at a portion thereof corresponding to the second cavity 122, and the air output side of the housing 12 is connected with the hot-air pipeline. As illustrated in
In addition, in this embodiment, as illustrated in
In some embodiments, the number of the cold-air pipelines is the same with the number of the heat sources 16, the air outlet of the last cold-air pipeline along the preset direction is arranged opposite to the hot-air pipeline, and one heat source 16 is arranged between any two adjacent cold-air pipelines along the preset direction. For example, when the heat source 16 is the battery pack assembly of the mite remover, one cold-air pipeline is provided, and the battery pack assembly is arranged between the cold-air pipeline and the hot-air pipeline. The airflow generated by the airflow generating unit 11 first enters the cold-air pipeline through the air output side 10, then blows to the battery pack assembly through the cold-air pipeline, then enters the hot-air pipeline to dissipate the heat generated by the heating element, and finally is blown out of the housing 12 through the air output side of the housing 12.
When the heat source 16 includes the battery pack assembly of the mite remover and the rolling-brush gear assembly of the mite remover, two cold-air pipelines are provided, any one of the cold-air pipelines is communicated with the air output side 10 of the airflow generating unit, the battery pack assembly is arranged between the two cold-air pipelines, and the rolling-brush gear assembly is arranged between the other cold-air pipeline and the hot-air pipeline. The airflow generated by the airflow generating unit 11 sequentially passes through both the cold-air pipelines, blows through the battery pack assembly and the rolling-brush gear assembly, then enters the hot-air pipeline, and is discharged out of the housing 12 through the air output side of the housing 12. In a practical use, at least one cold-air pipeline is provided, and the number of the cold-air pipelines may be adjusted according to the practical situations.
Another embodiment of the present disclosure relates to a mite remover, including a housing, an airflow generating unit and a heat source arranged in the housing, and a flow guiding structure as described according to any one of the first embodiment and the second embodiment.
As can be seen, this embodiment is a system embodiment corresponding to any one of the first embodiment and the second embodiment, and this embodiment may be implemented in coordination with any one of the first embodiment and second embodiment. The relevant technical details mentioned in the first embodiment and the second embodiment are still effective in this embodiment, and will not be repeated herein to reduce repetition. Accordingly, the relevant technical details mentioned in this embodiment may also be applied in the first embodiment and the second embodiment.
Another embodiment of the present disclosure relates to a mite remover, including a housing, an airflow generating unit and a heat source arranged in the housing, and a flow guiding structure as described according to the third embodiment.
As can be seen, this embodiment is a system embodiment corresponding to the third embodiment, and this embodiment may be implemented in coordination with the third embodiment. The relevant technical details mentioned in the third embodiment are still effective in this embodiment, and will not be repeated herein to reduce repetition. Accordingly, the relevant technical details mentioned in this embodiment may also be applied in the third embodiment.
A fourth embodiment of the present disclosure relates to a mite remover, as illustrated in
Specifically, as illustrated in
In addition, it should be noted that an air inlet is formed in the gearbox 6, and the air duct of the housing 1 is communicated with the air inlet of the gearbox 6, such that the airflow can directly perform a convective heat transfer with the gear assembly 5 inside the gearbox 6, thereby reducing the temperature of the gear assembly 5. The gearbox 6 may also be provided with an air outlet to discharge the airflow out of the mite remover after the airflow has conducted the convective heat transfer with the gear assembly 5 inside the gearbox 6.
It should be noted that in this embodiment, the air outlet 7 of the main motor 2 is adjacent to the air inlet of the gearbox 6, such that the air duct connecting the air outlet 7 of the main motor 2 with the gearbox 6 is relatively short, so as to prevent the airflow from absorbing too much heat while the airflow passes through the air duct, thereby ensuring the heat dissipation capacity.
In this embodiment, the air duct of the housing 1 also leads to the rolling-brush motor 3, such that a part of the airflow at the air outlet 7 of the main motor 2 may flow to the rolling-brush motor 3 to cool the rolling-brush motor 3 and dissipate the heat thereof.
It should be noted that the air outlet 7 of the main motor 2 is arranged close to the rolling-brush motor 3, such that a part of the airflow at the air outlet 7 of the main motor 2 can directly cool the rolling-brush motor 3, thus preventing the heat accumulation after the operation of the rolling-brush motor 3. In this embodiment, the air outlet 7 rightly faces to the rolling-brush motor 3, and thus a part of the airflow at the air outlet 7 of the main motor 2 can directly flow to the rolling brush motor 3, which can significantly inhibit the accumulated heat of the rolling-brush motor.
In this embodiment, the air duct arranged in the housing 1 is communicated with the air outlet 7 of the main motor 2 and leads to the deceleration device 4. In this way, when the mite remover operates, a part of the airflow with the relatively low temperature may be guided into the air duct through the air outlet 7 of the main motor 2, and finally to the deceleration device 4. The part of the airflow and the deceleration device 4 perform the convective heat transfer, which may effectively reduce the heat of the deceleration device 4 and prevent the heat accumulation at the deceleration device 4. Moreover, the air duct of the housing 1 also leads to the rolling-brush motor 3, such that a part of the airflow at the air outlet 7 of the main motor 2 may flow to the rolling-brush motor 3, so as to cool the rolling-brush motor 3 and dissipate the heat thereof. Therefore, when the mite remover operates, both the rolling-brush motor 3 and the deceleration device 4 can be cooled effectively, such that the mite remover can work for a long time.
A fifth embodiment of the present disclosure relates to a mite remover, and the fifth embodiment incorporates further improvements with respect to the mite remover of the fourth embodiment. The main improvements lie in that in the fifth embodiment as illustrated in
Specifically, after being communicated with the chamber for the thermistor 8, the air duct of the housing 1 is also communicated with the chamber for the battery pack 9. A part of the airflow at the air outlet 7 of the main motor 2 may pass through the chamber for the thermistor 8 and then is further guided to the chamber for the battery pack 9. Therefore, both the chamber for the thermistor 8 and the chamber for the battery pack 9 can be cooled effectively. Of course, an air outlet may be formed in the chamber for the battery pack 9 to discharge the airflow after the heat exchange out of the mite remover, thus improving the heat dissipation efficiency.
Similar to the fourth embodiment, the air duct arranged in the housing 1 is communicated with the air outlet 7 of the main motor 2 and leads to the deceleration device 4. In this way, when the mite remover operates, a part of the airflow with the relatively low temperature may be guided into the air duct through the air outlet 7 of the main motor 2, and finally to the deceleration device 4. The part of the airflow and the deceleration device 4 perform the convective heat transfer, which can effectively reduce the heat of the deceleration device 4 and prevent the heat accumulation at the deceleration device 4. Moreover, the air duct of the housing 1 also leads to the rolling-brush motor 3, such that a part of the airflow at the air outlet 7 of the main motor 2 may flow to the rolling-brush motor 3, so as to cool the rolling-brush motor 3 and dissipate the heat thereof. When the mite remover operates, beside the effective heat dissipation of the rolling-brush motor 3 and the deceleration device 4, the chamber for the thermistor 8 and the chamber for the battery pack 9 can also have the effective heat dissipation, which significantly improves the heat dissipation capacity of the mite remover compared to the fourth embodiment, such that the mite remover can work for a long time.
Other embodiments of the present disclosure are described with reference to
As illustrated in
The air inlet 25 is arranged horizontally and transversely. In the related art, an axis OO′ of the fan 4 is generally arranged vertically. The air input side of the fan 4 is opposite to the air inlet 25 to provide the suction force for the air inlet 25. However, the fan 4 arranged vertically takes up a large space in a vertical direction, thus resulting in a relatively high height of the mite-removal vacuum cleaner 1. Therefore, the mite-removal vacuum cleaner 1 has a relatively large overall volume, such that it is not convenient for the user to use and store the mite-removal vacuum cleaner 1.
As illustrated in
When the mite-removal vacuum cleaner 1 is pushed forward, the rolling brush 5 has a certain distance in the width direction to ensure a certain cleaning width and a certain cleaning efficiency for mite removal. That is, in the width direction, the mite-removal vacuum cleaner 1 needs to have at least a length enough for receiving the rolling brush 5. In this embodiment, the axis OO′ of the fan 4 is parallel to the axis YY′ of the rolling brush 5, that is, a length direction of the fan 4 is also arranged along the width direction of the mite-removal vacuum cleaner 1, and a length of the fan 4 in its axial direction is less than that of the rolling brush 5 in its axial direction, so that the length of the fan 4 will not increase the volume of the mite-removal vacuum cleaner 1 in the width direction. Further, the fan 4 with such arrangement occupies less space of the mite-removal vacuum cleaner 1 in a front-rear direction and a vertical direction, and thus the volume of the mite-removal vacuum cleaner 1 in the front-rear direction and the vertical direction is also reduced, so as to reduce the overall volume of the mite-removal vacuum cleaner 1, decrease the space needed to store the mite-removal vacuum cleaner 1, and make it convenient for the user to operate the mite-removal vacuum cleaner 1 in a handheld manner.
It should be noted that the axis XX′ of the handle 3 is arranged as a central axis of the mite-removal vacuum cleaner along the advancing direction of the mite-removal vacuum cleaner 1, and the axis OO′ of the fan 4 has a certain angle with respect to the axis XX′ of the handle 3. In this embodiment, the axis OO′ of the fan 4 is perpendicular to the axis XX′ of the handle 3, and also the axis XX′ of the handle 3 is perpendicular to the axis YY′ of the rolling brush 5. When the mite-removal vacuum cleaner is in use, the dusty air is sucked from the air inlet 25, enters the dust collecting cup 6 along the axis XX′ of the handle, and the airflow enters the fan along the axis OO′ of the fan 4 after the separation of the dust and the air in the dust collecting cup 6. A path in which the airflow enters the dust collecting cup 6 is perpendicular to a path in which the airflow enters the fan, and the whole airflow flows in a nonlinear path.
In the mite-removal vacuum cleaner 1, the axis OO′ of the fan 4 and the axis of the dust collecting cup 6 are coincident or parallel, and are both parallel to the axis YY′ of the rolling brush 5. The fan 4 is arranged in any one of the first side portion 21 or the second side portion 22, the dust collecting cup 6 is arranged in the other side portion which is not provided with the fan 4, and a direction in which the first side portion 21 and the second side portion 22 are opposite to each other is parallel to the axis YY′ of the rolling brush 5. In this embodiment, the fan 4 is arranged in the first side portion 21, and the dust collecting cup 6 is arranged in the second side portion 22 and opposite to the fan 4. Of course, the fan 4 may also be arranged in the second side portion 22, and the dust collecting cup 6 is arranged in the first side portion 2. This embodiment only takes an example in which the fan 4 is arranged in the first side portion 21, which is not specifically limited herein. The symmetrical arrangement of the dust collecting cup 6 and the fan 4 can ensure the balance of the mite-removal vacuum cleaner 1, such that various parts inside the housing 2 are arranged orderly and compactly.
As illustrated in
It should be noted that the mite-removal vacuum cleaner 1 may have more air outlets, and the airflow in the fan 4 may be discharged out of the housing 2 through the air outlets, which is not specifically limited in this embodiment.
As illustrated in
Another embodiment of the present disclosure relates to a mite-removal vacuum cleaner, as illustrated in
In this embodiment, a direction in which the airflow enters the dust collecting cup 6 from the air inlet is parallel to the axis of the handle 3, that is, the cleaning direction, and then flows from an interior of the dust collecting cup 6 to the fan 4. When the fan 4 is located downstream of the dust collecting cup 6, the axes of the fan 4 and the dust collecting cup 6 coincide, that is, the fan 4 and the dust collecting cup 6 are located on both sides of the mite-removal vacuum cleaner 1, respectively, thus reducing the space of the mite-removal vacuum cleaner 1 occupied by the fan 4 in a front-rear direction and a height direction, decreasing the overall volume of the mite-removal vacuum cleaner 1, and making it more convenient for the user to operate and store the mite-removal vacuum cleaner 1. Moreover, the air flows in a nonlinear direction, which can reduce the noise.
A sixth embodiment of the present disclosure is described with reference to
It should be noted that the dust cup 4 has a cylindrical shape, a joint between the housing 1 and the dust cup 4 has an arc concave surface, a shape of the housing 1 matches with a shape of the dust cup 4, and the dust cup 4 may be connected and fixed to the housing 1. The dust cup 4 may be directly mounted to the housing 1, thus providing a simple structure, and reducing the space occupied by the mite remover. In addition, a dust suction inlet in the housing 1 is communicated with a suction inlet of the dust cup 4, and no additional air duct is needed in the housing 1, thereby simplifying the structure of the housing. In this embodiment, as illustrated in
It should also be noted that in this embodiment, the mite remover also includes a dust-cup releasing device 5 configured to separate the dust cup 4 from the housing 1, such that it is more convenient for the dust cup 4 to be separated from the housing 1.
Specifically, as illustrated in
In addition, it should be noted that the button 7 is flush with an outer side of the bottom cover 8 or slightly depressed towards an inner side of the bottom cover 8 when the elastic catch 6 is snapped with the snap of the housing 1. When the button 7 is pressed inwards, the dust cup 4 may be released. Further, the button 7 is prevented from being pressed by mistake as much as possible.
In addition, it should be noted that in this embodiment, an axis of the motor 3 coincides with an axis of the dust cup 4, which facilitates mounting and provides a compact structure. Moreover, an air outlet of the dust cup 4 directly faces an air inlet of the motor 3, the airflow at the air outlet of the dust cup 4 may be directly led to the air inlet of the motor 3, such that the air loss is small, and thus the mite remover is more energy-saving.
In this embodiment, the mite remover has the virtual section for dividing the housing 1 into two parts, the virtual section is perpendicular to the placement surface of the mite remover, the central axis of the handle 2 is in the virtual section, and the motor 3 and the dust cup 4 are located on two sides of the virtual section, respectively. In this way, the connection structure of the dust cup 4, the motor 3 and the housing 1 may be relatively simple, there is no complicated mounting structure between the dust cup 4 and the motor 3, and it is convenient to dismount the dust cup 4. Moreover, since the dust cup 4 and the motor 3 are located on both sides of the virtual section, respectively, the weight of the mite remover will not be concentrated on one side of the mite remover, and a gravity center of the mite remover will be closer to a middle portion of the mite remover, so as not to cause an inconvenient use. Therefore, the mite remover can significant improve the user's experiences.
A seventh embodiment of the present disclosure relates to a mite remover, and is roughly the same with the sixth embodiment. The main differences lie in that, in the sixth embodiment, the dust cup 4 is mounted and connected with the housing 1 by being pushing horizontally, the housing 1 is provided with the loading groove for receiving the dust cup 4 in the side of the housing 1 facing the dust cup 4, and the dust cup 4 can be fixed to the housing 1 only by being pushed towards the loading groove, such that the connection and disassembly between the dust cup 4 and the housing 1 are very simple and convenient, while in the seventh embodiment of the present disclosure, as illustrated in
Specifically, the housing 1 is provided with a snap mechanism for receiving the dust cup 4 in the side of the housing 1 facing the dust cup 4, and the dust cup 4 is provided with an engagement structure configured to be fitted with the snap mechanism of the dust cup 4. The dust cup 4 only needs to be inclinedly placed to a joint of the housing 1 so as to allow the engagement structure of the dust cup 4 to be in contact with the snap mechanism of the housing 1, and then the dust cup 4 is rotated such that the engagement structure of the duct cup 4 is engaged with the snap mechanism of the housing 1, and thus the dust cup 4 is fixed to the housing 1. The connection and disassembly between the dust cup 4 and the housing 1 are also very easy and convenient, just like the sixth embodiment.
Similarly, the mite remover has the virtual section for dividing the housing 1 into two parts, the virtual section is perpendicular to the placement surface of the mite remover, the central axis of the handle 2 is in the virtual section, and the motor 3 and the dust cup 4 are located on two sides of the virtual section, respectively. In this way, the connection structure of the dust cup 4, the motor 3 and the housing 1 may be relatively simple, there is no complicated mounting structure between the dust cup 4 and the motor 3, and it is convenient to dismount the dust cup 4. Moreover, since the dust cup 4 and the motor 3 are located on both sides of the virtual section, respectively, the weight of the mite remover will not be concentrated on one side of the mite remover, and the gravity center of the mite remover will be closer to a middle portion of the mite remover, so as not to cause an inconvenient use. Therefore, the mite remover can significantly improve the user's experiences.
A eighth embodiment of the present disclosure is described with reference to
As can be seen from the above, the housing includes the first side 5 and the second side 6, the axis X of the handle 2 is located between the first side 5 and the second side 6, and is arranged opposite to the first side 5 and the second side 6, respectively, the fan 3 of the dust collecting and filtering device is arranged adjacent to the first side 5, and the power module 1 is arranged adjacent to the second side 6, such that the fan 3 and the power module 1 are arranged on both sides of the handle 2, respectively. Thus, the counterweight of the mite remover is more uniform, and the mite remover is easy to be held when in use, without affecting the user's experiences due to one side being too heavy. Moreover, since the counterweight of the mite remover is even, the whole machine is more closely fitted with the surface to be cleaned, and hence the use effect is better.
Specifically, as illustrated in
In addition, as illustrated in
Further, as illustrated in
Specifically, as illustrated in
When the mite remover is used, the rolling brush 11 may roll in the mounting groove and pat the surface to be cleaned. An area where the rolling brush 11 is separated from the wall 12 of the mounting groove forms the air inlet 10. A side of the dust collecting cup 8 facing towards the mounting groove is provided with an opening, and the opening is connected with the vent 13 through a connecting passage. When the fan 3 operates, the air enters from the air inlet 10, and passes through the vent 13 and the opening into the dust collecting cup 8. After being filtered by the filter 7 in the dust collecting cup 8, the air enters the fan 3 and is further discharged from an air outlet of the fan 3. The mite remover also includes a plurality of pipeline structures, each of the first side 5 and the second side 6 is provided with a discharge port, and each discharge port is communicated with the air outlet of the fan 3 through the pipeline structure, so as to discharge the air in the fan 3.
Further, as illustrated in
In some embodiments, as illustrated in
Other embodiments of the present disclosure relate to a mite remover. In these embodiments, the axis of the fan is parallel to the axis of the handle, and the dust collecting cup and the power module are arranged opposite to each other along the direction perpendicular to the axis of the handle. In other words, the dust collecting and filtering device and the power module are located on both sides of the axis of the handle, respectively. In this case, the fan and the power module are located at both ends of the axis of the handle, respectively, so that the counterweight of the mite remover can also be distributed reasonably.
Those skilled in the related art may understand, the above embodiments are specific embodiments of the present disclosure, while in practical applications, various modifications may be made in forms and details without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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201910847806.7 | Sep 2019 | CN | national |
201910857574.3 | Sep 2019 | CN | national |
201910857656.8 | Sep 2019 | CN | national |
201910857735.9 | Sep 2019 | CN | national |
201921513083.9 | Sep 2019 | CN | national |
The present application is a U.S. National Phase application under 35 USC § 371 of the International Patent Application No. PCT/CN2020/113576, filed on Sep. 4, 2020, which claims the benefit of and priority to Chinese Applications No. 201910857656.8, 201921513083.9, 201910847806.7, 201910857735.9, 201910857574.3, filed on Sep. 9, 2019. The entire contents of the before-mentioned patent applications are incorporated by reference as part of the disclosure of this U.S. application.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/113576 | 9/4/2020 | WO | 00 |