The present invention relates to nebulizer technology and more particularly, to a portable nebulizer that is equipped with a dust shield.
A nebulizer is a device that turns liquid into a mist of fine droplets. It has a wide range of applications, for example, it can be used for real life application to increase the humidity and to make changes in environmental changes, or for medical application to turn medicine liquid into a mist.
Because a residual mist will be left around the nozzle hole of the nebulizer after each use of the nebulizer, causing dust to be adhered thereto, thus, after a long use, the nozzle hole and atomizer of the nebulizer tends to be covered with dust, affecting the atomization performance of the atomizer.
The present invention has been accomplished under the circumstances in view. It is therefore the main object of the present invention to provide a portable nebulizer, which is equipped with a dust shield that is capable of protecting the nozzle hole and atomizer plate of the nebulizer body of the portable nebulizer against environmental contamination.
To achieve this and other objects of the present invention, a portable nebulizer comprises a nebulizer body and a dust shield. The nebulizer body comprises a nozzle hole, and an atomizer plate positioned in the nozzle hole. The dust shield is coupled to the nebulizer body, and movable relative to the nebulizer body between a dust protection position where the dust shield shields the nozzle hole of the nebulizer body and an open position where the dust shield is kept away from the nozzle hole of the nebulizer body.
Thus, the dust shield is capable of protecting the nozzle hole of the portable nebulizer against environmental contamination.
Other advantages and features of the present invention will be fully understood by reference to the following specification in conjunction with the accompanying drawings, in which like reference signs denote like components of structure.
The composition, effects and features of the present invention will be more fully understood by way of examples in conjunction with the accompanying drawings, in which the components, size and outer appearance of the portable nebulizer are simply for explanation of the technical features of the present invention but not intended for use as limitations.
Referring to
When the dust shield 13 is located at the open position, the dust shield 13 is kept away from the nozzle hole 111 of the nebulizer body 11, enabling the mist that is transformed from a liquid by the atomizer plate 113 to be spayed out of the nozzle hole 111 of the nebulizer body 11. When the dust shield 13 is located at the dust protection position, the dust shield 13 shields the nozzle hole 111 of the nebulizer body 11, preventing adherence of surrounding cotton dust and dirt to the nozzle hole 111 and atomizer plate 113 of the portable nebulizer 10.
As illustrated in
As illustrated in
The nebulizer body 11 further comprises two springs 121 and two protruding rods 123. The two springs 121 are respectively mounted inside the second body shell 117. The two protruding rods 123 are respectively connected to the springs 121 and protruded over the outer surface of the second body shell 117. When the protruding rods 123 are forced to retract by an external force, the springs 121 are compressed by the respective protruding rods 123. When the external force disappears, the springs 121 immediately push the respective protruding rods 123 out of the outer surface of the second body shell 117. In this first embodiment, the springs 121 and the protruding rods 123 can be configured and assembled to create pogo pins, however, the use of pogo pins is not a limitation.
The dust shield 13 in this embodiment is a sliding sleeve 131. The sliding sleeve 131 defines therein a hollow passage 1311, two open recesses 133 and two dust protection recesses 135. The two dust protection recesses 135 and the two open recesses 133 are respectively located on the sliding sleeve 131 and disposed in communication with the hollow passage 1311. The second body shell 117 is disposed inside the hollow passage 1311 of the sliding sleeve 131. When the two protruding rods 123 are respectively engaged into the two open recesses 133, the dust shield 13 is held in the open position. When the two protruding rods 123 are respectively engaged into the dust protection recesses 135, the dust shield 13 is held in the dust protection position.
In this first embodiment, when the two protruding rods 123 of the second body shell 117 are kept away from the two dust protection recesses 135 and the two open recesses 133, the dust shield 13 is freely rotatable. Further, the dust protection recesses 135 and the open recesses 133 are curved inwardly from the inner perimeter of the sliding sleeve 131 toward the outer perimeter of the sliding sleeve 131. Alternatively, the dust protection recesses 135 and the open recesses 133 can be configured to cut through the inner and outer perimeters of the sliding sleeve 131. Therefore, the dust protection recesses 135 and the open recesses 133 can be formed on the sliding sleeve 131 in any of various different configurations, further, the number of the dust protection recesses 135 and the open recesses 133 is not limited to 2.
The sliding sleeve 131 further comprises two guide grooves 137. These two guide grooves 137 are formed on the sliding sleeve 131 with the respective open sides thereof respectively disposed in communication with the hollow passage 1311 of the sliding sleeve 131. The dust protection recesses 135 and the open recesses 133 are respectively disposed at respective two opposite ends of the guide grooves 137, thus, the two protruding rods 123 can be respectively arranged in the guide grooves 137, and moved along the respective guide grooves 137 between the dust protection position and the open position.
In this first embodiment, the two guide grooves 137 of the sliding sleeve 131 are straight grooves, however in actual application, the straight design is not a limitation. For example, the guide grooves 137 can be configured to exhibit an arched or spiral profile. Because the configuration of the guide grooves 137 is not limited to the design shown in the annexed drawings, the open position and the dust protection position are not limited to the arrangement of locating on the two opposite ends of a straight line. Further, because the dust shield 13 is slidably or rotatably coupled to the second body shell 117, using the dust shield 13 at the second body shell 117 to achieve dust protection should be included within the scope of the spirit of the present invention. Accordingly, the invention is not to be limited to the description (illustration) of the present first embodiment.
As illustrated in
Referring to
Although two methods for triggering the electronic driver 119 are described, however, any other measure can be selectively used to trigger the electronic driver 119 when the dust shield is located at the open position, and therefore, the above-described two electronic driver triggering methods are not intended for use to limit the scope of the present invention.
Further, in the aforesaid first embodiment of the present invention, the sliding sleeve of the dust shield has a hollow passage defined therein, however, in actual application, the sliding sleeve can be configured without the hollow passage, for example, in the form of a half round cover or any other structure capable of covering the nozzle hole, and therefore, the sliding sleeve is not limited to the embodiment described above.
Referring to
When the dust shield 31 is located at the dust protection position, the dust protection sheet 311 shields the nozzle hole 351 of the first body shell 35. Further, the dust protection sheet 311 of the dust shield 31 can be moved away from the dust protection position, enabling the dust shield 31 to be positioned in the open position. In this embodiment, the dust protection sheet 311 is biasable and rotatable with the connecting strip 313 relative to the first body shell 35. The dust shield 31 is preferably made from silicon rubber, rubber, or elastic plastics. Further, the shape of the dust shield is not limited to that described in the specification and illustrated in the drawings.
As described above, the dust shield and the nebulizer body can be connected together in any of various measures, avoid disconnection of the dust shield from the nebulizer body and lost. Further, in the aforesaid two embodiments, the nebulizer body consists of a first body shell and second body shell, however, in actual application, the nebulizer body can be a one piece member, and therefore, the structure of the nebulizer body is not limited to the aforesaid first and second embodiments.
Although particular embodiments of the invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.
Number | Date | Country | Kind |
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2016 1 0216563 | Apr 2016 | CN | national |
Number | Name | Date | Kind |
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1286810 | Sheppard | Dec 1918 | A |
5255823 | Tichy | Oct 1993 | A |
6315252 | Schultz | Nov 2001 | B1 |
20120285446 | Van Der Mark | Nov 2012 | A1 |
Number | Date | Country | |
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20170291186 A1 | Oct 2017 | US |