The present invention relates to a miniature cooling system; more particularly, the present invention relates to a miniature cooling system which has a strong blower-type cooling effect.
The cooling solution of the prior art, which is applied in electric devices, guides heat generated by a heating element (such as a central processing unit or a graphics processing unit) to a cooling sheet or metal with a high-heat transferring feature via the package surface, and transfers the heat to a heat dissipation device (such as a fan or other cooling sheet) via the heat pipe effect, to exhaust the heat. However, the cooling method of the prior art has some disadvantages. For example, the heat transfer path for exhausting the heat is formed by many heating dissipation components, so the thermal resistance and assembly cost are high. Moreover, the cooling sheet of the prior art is generally made of aluminum alloy, but the thermal conductivity of aluminum alloy is only average; since the heating power of the current heating component is increasing, the thermal conductivity of aluminum alloy cannot meet the requirement of high power electronic devices such as tablet computers or smartphones.
In addition, the heat pipe of the prior art for dissipating the heat of the central processing unit of the notebook computer gradually faces a bottleneck. Although the improved heat dissipation method uses air as the thermal convection medium to dissipate the heat from the electronic component, the electronic component is fine and flat, so the flow channel is narrow and causes a serious pressure drop; thus, the cooling effect is poor and the feasibility is reduced.
Therefore, there is a need to provide a new thin cooling system which can be applied to a portable electronic device to solve the abovementioned problem.
It is an object of the present invention to provide a thin miniature cooling system which has a strong blower-type cooling effect.
To achieve the abovementioned object, the miniature cooling system of the present invention includes a base metal sheet, a flow channel layer, a piezoelectrically actuated metal sheet, two piezoelectric ceramic vibrators and a piezoelectric boundary compression layer. The flow channel layer is located on the base metal sheet. The flow channel layer includes a first chamber, a second chamber, an inlet channel, a linking channel and an outlet channel. The inlet channel links the outside environment to the first chamber. The linking channel links the first chamber and the second chamber. The outlet channel links the second chamber to the outside environment. The piezoelectrically actuated metal sheet is located on the flow channel layer. The piezoelectric boundary compression layer is located on the piezoelectrically actuated metal sheet. The two piezoelectric ceramic vibrators are respectively located in the two containing areas and aligned with the center of each of the two containing areas, and located on the piezoelectrically actuated metal sheet. Via the upper piezoelectric boundary compression layer and the flow channel layer, the piezoelectric component boundary of the piezoelectric ceramic vibrator is fixed effectively.
According to one embodiment of the present invention, the two piezoelectric ceramic vibrators are aligned with the center and connected to the piezoelectrically actuated metal sheet, and two parts of the piezoelectrically actuated metal sheet are exposed from the two containing areas.
According to one embodiment of the present invention, the miniature cooling system further includes a driving circuit. The driving circuit is electrically connected to the two piezoelectric ceramic vibrators for providing two driving controlling powers such that the two piezoelectric ceramic vibrators vibrate up and down with an appropriate phase difference in order to generate more effective flow in and out of the chambers, such that the internal airflow will flow effectively to achieve incoming and outgoing effects.
According to one embodiment of the present invention, the inlet channel and the vibration direction are perpendicular to each other.
According to one embodiment of the present invention, the miniature cooling system further includes a plurality of fins, and the plurality of fins are connected to the base metal sheet.
According to one embodiment of the present invention, the plurality of fins are located next to the outlet channel.
According to one embodiment of the present invention, the inlet channel, the linking channel and the outlet channel are fan-shaped nozzles. The size ratio the fan-shaped nozzle of each channel gradually becomes smaller to achieve an optimal tapering ratio such that the internal airflow will flow effectively to achieve incoming and outgoing effects.
According to one embodiment of the present invention, the inlet channel and the outlet channel respectively have a size. The range of the ratio of the size of the outlet channel to the size of the inlet channel is between 0.4 and 0.7. The fan-shaped nozzle of the outlet channel helps the fins for cooling effectively.
According to one embodiment of the present invention, the first chamber and the second chamber are both circular cavities, the two containing areas are circular grooves, and the two piezoelectric ceramic vibrators are corresponding circular films or ring films for amplifying the amplitude; or the first chamber and the second chamber are both rectangular cavities, the two containing areas are rectangular grooves, and the two piezoelectric ceramic vibrators are corresponding rectangular films or hollow square films for amplifying the amplitude.
According to one embodiment of the present invention, the two piezoelectric ceramic vibrators can even vibrate at an ultrasound frequency for modal resonance so that achieve better performance of larger flow volume and velocity and being inaudible.
These and other objects and advantages of the present invention will become apparent from the following description of the accompanying drawings, which disclose several embodiments of the present invention. It is to be understood that the drawings are to be used for purposes of illustration only, and not as a definition of the invention.
In the drawings, wherein similar reference numerals denote similar elements throughout the several views:
Please refer to
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In the first embodiment of the present invention, the piezoelectrically actuated metal sheet 30 is an elastic phosphor bronze sheet, which is located on the flow channel layer 20. The base metal sheet 10 and the piezoelectrically actuated metal sheet 30 are respectively connected to the bottom surface and the top surface of the flow channel layer 20 such that chambers are formed between the base metal sheet 10, the flow channel layer 20 and the piezoelectrically actuated metal sheet 30.
In the first embodiment of the present invention, the piezoelectric boundary compression layer 40 is made of metal. The piezoelectric boundary compression layer 40 is connected to the piezoelectrically actuated metal sheet 30 and covers the piezoelectrically actuated metal sheet 30. The piezoelectric boundary compression layer 40 includes two containing areas 41. The two containing areas 41 are circular grooves which are respectively located in the first chamber 21 and the second chamber 22. Two parts of the piezoelectrically actuated metal sheet 30 are exposed from the two containing areas 41.
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In the first embodiment of the present invention, the plurality of fins 60 are connected to the base metal sheet 10, and the plurality of fins 60 are located next to the outlet channel 25. The plurality of fins 60 are arranged as a radial shape. The plurality of fins 60 are used for causing the heated air from the outlet channel 25 to flow to the outside environment more quickly.
When the user needs to use the miniature cooling system 1 for cooling, the user can use the external computer to operate the driving circuit 70 to cause the driving circuit 70 to provide the driving controlling powers to the two piezoelectric ceramic vibrators 50 such that the two piezoelectric ceramic vibrators 50 will vibrate along a vibration direction at an ultrasonic resonance frequency. When the two piezoelectric ceramic vibrators 50 vibrate at an ultrasonic resonance frequency, deformation will quickly be generated via the vibrations; via phase difference control, the two chambers will generate actuations with a phase difference to achieve an effective blower effect of larger flow volume and velocity.
When the piezoelectric ceramic vibrators 50 drive the piezoelectrically actuated metal sheet 30 with the phase difference, the volume of the first chamber 21 will expand and the volume of the second chamber 22 will contract; because of the tapered design of the channels, cool air will be drawn into the expanding first chamber 21 and exhausted from the minimum outlet of the contracting second chamber 22; thus, the cool air will become heated air via the heat exchange in the chambers. When the first chamber 21 contracts, the second chamber 22 will expand to draw the air such that the heated air in the two chambers will flow along a single direction to achieve an effective blower effect; finally, the fins 60 located next to the outlet channel 25 can further improve the cooling effect.
It is to be known that the modal resonance frequencies of each of the piezoelectric ceramic vibrators 50 in the first chamber 21 and the second chamber 22 provide an effective phase difference to control the amount of air drawn or exhausted between the first chamber 21 and the second chamber 22 to achieve a suitable exhaust amount of the outlet channel 25 and provide the alternating exhausting and superimposed outputting effect, and to provide a muting effect when vibrating at an ultrasound frequency for modal resonance. According to actual experiments performed by the applicant of this invention, when the phase difference in the vibration frequencies of each of the piezoelectric ceramic vibrators 50 is 120°, a larger amount of exhaust can be achieved. However, the phase difference in the vibration frequency is not limited to 120°; the phase difference in the vibration frequency can be adjusted according to the chamber structure to achieve the best effect.
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To verify the advantage of the miniature cooling system of the present invention, the applicant further executed actual experiments to compare the cooling effects of the miniature cooling system and the other cooling system. The applicant respectively provided electric power of 20 volts to the miniature cooling system with two chambers and two piezoelectric ceramic vibrators connected to the piezoelectrically actuated metal sheet of the present invention, to a cooling system (hereinafter referred to as comparative example 1) with only one chamber and a piezoelectric sheet connected to a metal layer, and to another cooling system (hereinafter referred to as comparative example 2) with two chambers and a piezoelectric sheet unconnected to a metal layer, causing the piezoelectric sheet of each of the cooling systems to vibrate, and the applicant further recorded the amplitudes of the piezoelectric sheets. Note that, though amplitude is not the only determinant factor influential to the output (exhaust air volume and velocity), larger amplitude associated with appropriate vibration mode shape usually produce better output. According to the results of the actual experiments, the piezoelectric ceramic vibrator of the miniature cooling system of the present invention provides an amplitude of 10.8 μM, the piezoelectric sheet of the cooling system of comparative example 1 only provides an amplitude of 5.91 μm, and the piezoelectric sheet of the cooling system of comparative example 2 only provides an amplitude of 7.32 μm, thus, it is clear that the miniature cooling system of the present invention can provide the largest amplitude, such that the volume of the two chambers will be affected by the amplitude of the piezoelectric ceramic vibrator and change greatly to increase the exhaust amount of the channel and to increase the cooling effect.
Due to the design of the miniature cooling system of the present invention, the miniature cooling system can be installed in an electronic component of a portable electronic device; the two chambers and the vibration phase difference of the piezoelectric sheet connected to the piezoelectrically actuated metal sheet make the inside of the chamber perform as a check value to increase the exhaust amount, and to increase the cooling effect.
In summary, regardless of the purposes, means and effectiveness, this invention is quite different from the known technology and should merit the issuing of a new patent. However, it is noted that many of the above-mentioned embodiments are only for illustrative purposes; the claims of the invention should depend on the claims and not be limited to the embodiments.
Number | Date | Country | Kind |
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107112162 | Apr 2018 | TW | national |
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4938742 | Smits | Jul 1990 | A |
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Number | Date | Country |
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204425882 | Jun 2015 | CN |
204425882 | Jun 2015 | CN |
Entry |
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CN-204425882-UE, English Translation of CN-204425882-U; Jun. 24, 2015 (Year: 2015). |
Number | Date | Country | |
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20190309744 A1 | Oct 2019 | US |