The present invention relates to a miniature gas transportation device, and more particularly to a slim and silent miniature gas transportation device.
With the advancement of science and technology, fluid transportation devices used in many sectors such as pharmaceutical industries, computer techniques, printing industries or energy industries are developed toward elaboration and miniaturization. The fluid transportation devices are important components that are used in for example micro pumps, micro atomizers, printheads or industrial printers. Therefore, it is important to provide an improved structure of the fluid transportation device.
For example, in the pharmaceutical industries, pneumatic devices or pneumatic machines use motors or pressure valves to transfer gases. However, due to the volume limitations of the motors and the pressure valves, the pneumatic devices or the pneumatic machines are bulky in volume. In other words, the conventional pneumatic device fails to meet the miniaturization requirement, and is not suit to be installed in or cooperatively operated with a portable equipment. Moreover, during operations of the motor or the pressure valve, annoying noise is readily generated. That is, the conventional pneumatic device is neither friendly nor comfortable to the user.
As known, the gas-inputting mechanism and the gas-outputting mechanism of the conventional miniature gas transportation device are composed of different components. In other words, many components are required to achieve the purpose of inputting and outputting the gas. Since the number of the required components is very huge, the process of assembling the conventional miniature gas transportation device is complicated.
Therefore, there is a need of providing a miniature gas transportation device with small, miniature, silent, portable and comfortable benefits and less number of components in order to eliminate the above drawbacks.
The present invention provides a miniature gas transportation device for a portable or wearable equipment or machine. The miniature gas transportation device includes a gas outlet plate. The gas outlet plate is a single component that is able to input and output the gas simultaneously. Consequently, the number of components in the miniature gas transportation device is reduced, and the fabricating process is simplified.
In accordance with an aspect of the present invention, there is provided a miniature gas transportation device. The miniature gas transportation device includes a gas outlet plate, a resonance plate, a piezoelectric actuator and a covering member. The gas outlet plate includes a gas outlet pipe, a gas outlet hole and plural protrusion structures. The gas outlet pipe is disposed on a first surface of the gas outlet plate. The gas outlet hole is formed in the gas outlet pipe and runs through the gas outlet plate for outputting a gas from the miniature gas transportation device. The plural protrusion structures are disposed on a second surface of the gas outlet plate. A space between every two adjacent protrusion structures of the plural protrusion structures is defined as a vent portion. The resonance plate includes a central aperture corresponding to the gas outlet hole of the gas outlet plate. The piezoelectric actuator is aligned with the resonance plate. The covering member includes a sidewall and a bottom plate. The sidewall is protruding from the edges of the bottom plate. An accommodation space is defined by the sidewall and the bottom plate collaboratively. The resonance plate and the piezoelectric actuator are accommodated within the accommodation space. The gas outlet plate, the resonance plate, the piezoelectric actuator and the covering member are stacked on each other sequentially. A convergence chamber is formed between the gas outlet plate and the resonance plate. A first chamber is formed between the covering member and the resonance plate. When the piezoelectric actuator is actuated to perform a gas-collecting operation, the gas is fed into the convergence chamber through the vent portion, transferred to the first chamber through the central aperture of the resonance plate, and temporarily stored in the first chamber. When the piezoelectric actuator is actuated to perform a gas-releasing operation, the gas is transferred from the first chamber to the convergence chamber through the central aperture of the resonance plate and discharged from the gas outlet hole.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
In this embodiment, the miniature gas transportation device 1 comprises a gas outlet plate 11, a resonance plate 12, a piezoelectric actuator 13 and a covering member 16. The gas outlet plate 11 comprises a gas outlet pipe 111, a gas outlet hole 112 and plural protrusion structures 113. The gas outlet pipe 111 is disposed on a first surface 11a of the gas outlet plate 11. The gas outlet hole 112 is formed in the gas outlet pipe 111 and runs through the gas outlet plate 11 for discharging the gas in the miniature gas transportation device 1. The plural protrusion structures 113 are disposed on a second surface 11b of the gas outlet plate 11. The space between every two adjacent protrusion structures 113 is defined as a vent portion 114 for allowing the ambient gas to be introduced into the miniature gas transportation device 1.
The resonance plate 12 has a central aperture 120 corresponding to the gas outlet hole 112 of the gas outlet plate 11.
The piezoelectric actuator 13 comprises a suspension plate 131, an outer frame 132 and a piezoelectric element 133. The suspension plate 131 comprises a middle portion 131c and a periphery portion 131d. When the piezoelectric element 133 is subjected to the curvy vibration in response to an applied voltage, the suspension plate 131 is subjected to the curvy vibration from the middle portion 131c to the periphery portion 131d. The outer frame 132 is arranged around the suspension plate 131, including but not limited to at least one bracket 134 and at least one conducting pin 132a. Each of the at least one bracket 134 is arranged between the suspension plate 131 and the outer frame 132. The two ends of the bracket 134 are connected to the suspension plate 131 and the outer frame 132, respectively. Consequently, the bracket 134 can elastically support the suspension plate 131. The conducting pin 132a is protruding outwardly from the outer frame 132 so as to be electrically connected with an external power source (not shown). The length of a side of the piezoelectric element 133 is smaller than or equal to the length of a side of the suspension plate 131, but not limited herein. The piezoelectric element 133 is attached on a second surface 131b of the suspension plate 131. When the piezoelectric element 133 is subjected to deformation in response to an applied voltage, the suspension plate 131 is subjected to a curvy vibration.
The covering member 16 comprises a sidewall 161, a bottom plate 162 and an opening 163. The sidewall 161 is protruding from the edges of the bottom plate 162. Moreover, an accommodation space 16a is defined by the sidewall 161 and the bottom plate 162 collaboratively. The resonance plate 12 and the piezoelectric actuator 13 are accommodated within the accommodation space 16a. The opening 163 is formed in the sidewall 161. The conducting pin 132a of the outer frame 132 is protruding out of the covering member 16 through the opening 163 so as to be electrically connected with an external circuit (not shown), but not limited herein.
The protrusion structures 113 of the gas outlet plate 11 are disposed on plural corners of the gas outlet plate 11. That is, the protrusion structures 113 of the gas outlet plate 11 are protruding from the corresponding corners of the gas outlet plate 11. Preferably, the protrusion structures 113 are integrally formed with the gas outlet plate 11.
The miniature gas transportation device I further comprises a first insulation plate 141, a conducting plate 15 and a second insulation plate 142. The first insulation plate 141 is located over the conducting plate 15. The second insulation plate 142 is located under the conducting plate 15. The shapes of the first insulation plate 141 and the second insulation plate 142 substantially match the shape of the outer frame 132 of the piezoelectric actuator 13. The first insulation plate 141 and the second insulation plate 142 are made of an insulating material (e.g. a plastic material) for providing insulating efficacy. The conducting plate 15 is made of an electrically conductive material (e.g. a metallic material) for providing electrically conducting efficacy. The shape of the conducting plate 15 substantially matches the shape of the outer frame 132 of the piezoelectric actuator 13. Moreover, the conducting plate 15 has a conducting pin 151 so as to be electrically connected with an external circuit (not shown). Similarly, the conducting pin 151 is protruding out of the covering member 16 through the opening 163 so as to be electrically connected with an external circuit (not shown).
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The inner structure and the outer structure of the miniature gas transportation device 1 will be described as follows.
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In this embodiment, there is a gap g0 between the resonance plate 12 and the piezoelectric actuator 13. Moreover, a filler (e.g. a conductive adhesive) is inserted into the gap g0. Consequently, the depth of the gap g0 between the resonance plate 12 and the bulge 131e of the suspension plate 131 can be maintained to guide the gas to flow more quickly. Moreover, due to the proper distance between bulge 131e of the suspension plate 131 and the resonance plate 12, the contact interference is reduced and the generated noise is largely reduced. In some embodiments, the height of the outer frame 132 of the piezoelectric actuator 13 is increased, so that the gap is formed between the resonance plate 12 and the piezoelectric actuator 13.
When the piezoelectric actuator 13 is actuated to perform a gas-collecting operation, the gas is fed into the convergence chamber 17a through the vent portion 114, transferred to the first chamber 17b through the central aperture 120 of the resonance plate 12, and temporarily stored in the first chamber 17b. When the piezoelectric actuator 13 is actuated to perform a gas-releasing operation, the gas is transferred from the first chamber 17b to the convergence chamber 17a through the central aperture 120 of the resonance plate 12 and discharged from the gas outlet hole 112 of the gas outlet plate 11.
The operations of the miniature gas transportation device 1 will be described as follows.
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From the above descriptions, the present invention provides the miniature gas transportation device. The plural protrusion structures are disposed on the gas outlet plate. The space between every two adjacent protrusion structures is defined as the vent portion. The ambient gas can be introduced into the miniature gas transportation device through the vent portion. After the gas is fed into the convergence chamber through the vent portion of the gas outlet plate, the gas is transferred to the first chamber through the central aperture of the resonance plate. As the piezoelectric actuator is actuated, the gas is transferred from the first chamber to the convergence chamber and discharged from the gas outlet hole of the gas outlet plate. In other words, the gas outlet plate is a single component that is able to input and output the gas simultaneously. Consequently, the number of components in the miniature gas transportation device is reduced, and the fabricating process is simplified. Due to the cooperation of the piezoelectric actuator and the gap between the piezoelectric actuator and the resonance plate, the gas can be quickly transferred while achieving silent efficacy. Moreover, due to the special configurations, the miniature gas transportation device of the present invention has small volume and small thickness. Consequently, the miniature gas transportation device is portable and suitably applied to medical equipment or any other appropriate equipment. In other words, the miniature gas transportation device of the present invention has industrial values.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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106105637 | Feb 2017 | TW | national |