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The present invention relates generally to a device and methods used for forming micro-droplets or mist of high viscosity liquids. More specifically, the present invention relates to a piezoceramic based atomizer and its application for high viscosity liquids nebulization.
In many applications, such as disinfection, odour generation and air humidification, liquids or fluids are needed to be dispensed into micro-droplets or aerosols through atomization or vaporization. Normally, for medical purpose, such devices may contain a heating unit or an air compressing pump. However, these devices are generally limited by the decomposition of the medicinal products due to the high temperature, or by the risk of introducing external contamination because of the direct contact of air with medicine, or by the concomitant noise.
To satisfy the special demands of delivering medicines by respiratory pathway, the piezoceramic based atomization technology, i.e., by vibrating a micro-perforated membrane attached to a piezoceramic, is developed by manufacturers these years. Briefly, according to this technique, the micro-perforated membrane contact with a liquid is vibrated at an ultrasonic frequency by an activated piezoceramic, and then the liquid is drawn onto the top surface of the membrane, thus forming a film thereon. The liquid film absorbs vibrational energy from the membrane with vibrating direction perpendicular to the surface, and forms standing waves. As the amplitude of the given vibrational frequency is increased, the waves become unstable, and finally collapse at some critical point. As a result, micro-droplets of liquid are ejected from the films directed normally to the membrane.
However, most of the commercially available piezoceramic based atomization devices are designed for water-based or low viscosity liquids. Actually, many medicinal liquids possess relatively high viscosity, ranging from several tens to more than 300 centipoises (cP), and may not be water-based. Unfortunately, these high viscosity liquids cannot be atomized by aforementioned devices, owing to the fact that the viscous liquid film on the surface of the membrane clogs the micro holes and thus blocking the atomization. Therefore, it would be desirable to develop an effective method that capable of forming micro-droplets from high viscosity liquids by piezoceramic based atomization.
Accordingly, the first aspect of the present invention relates to a device for forming micro-droplets from high viscosity liquids. In particular, the device of the present invention is a piezocermaic based atomizer. The piezoceramic based atomizer for high viscosity liquids according to one embodiment of the present invention includes: a liquid storing tank used for storing the liquid and a liquid level control system connected to said liquid storing tank for maintaining the height of the stored liquid to a certain level; a receiving tank connected to the control system, used for receiving the liquid from the control system; a nozzle holder fixed to the receiving tank; a specially designed liquid absorbing medium inserted into the nozzle holder in a manner that only one end contacts with liquid, used for pumping and delivering the liquid received by the receiving tank; an atomization unit comprising a micro-perforated membrane and an annular piezoceramic that is adhered, e.g., glued tightly, to the micro-perforated membrane, where the micro-perforated membrane communicates with the other end of the liquid absorbing medium and vibrates at ultrasonic frequency driven by the annular piezoceramic, thereby ejecting droplets of liquid; an external ultrasonic oscillation circuit used for generating an ultrasonic frequency signal to stimulate the annular piezoceramic to drive the micro-perforated membrane to vibrate at said ultrasonic frequency.
One characteristic of the present invention is that the liquid is guided to the rear surface of the micro-perforated membrane by said liquid absorbing medium, which enables the atomizer to operate equally at any angle from vertical to horizontal. Accordingly, the liquid storing tank can be located below, around or above the atomization unit. The liquid absorbing medium can be made of various materials and have different shapes, but is preferably cylindrical. A surface of the liquid absorbing medium is in direct contact with one side of the micro-perforated membrane of the atomization unit, characterized by forming a sunk area in said surface. The sunk area can be either flat or curved, and have one or several separate pits.
The micro-perforated membrane can be made of a variety of materials, such as plastic, silicon and ceramic, but is preferably made of metal, like stainless steel, titanium and aluminum. The membrane can be flat or forming a protuberance of a dome in the central area. The membrane can be in a thickness ranging from 20 um to 400 um. The micro-perforation of the micro-perforated membrane can be processed by electroforming, lasing or chemical etching, ranging from 1 um to 300 um in equivalent diameter and from one to several thousands in quantity according to the demand. The total cross-sectional area of the perforations of the membrane is preferably smaller than the cross-sectional area of the annular piezoceramic.
According to other embodiments of the present invention, a mist guiding tube is provided. The guiding tube is assembled to the nozzle holder, orienting the mist to any demanded direction. The shape of the guiding tube body and the outlet geometry thereof can be arbitrary.
Before explaining the embodiments in detail, it is to be understood that the present invention is not limited in its application to the details of construction and to the assembling sequence of the components in the following description or drawing illustration. It is also understood that the terminology used herein are for better understanding and description and should not be regarded as limiting. At the same time, since various modifications and structural changes may be made by those skilled in the art basing on the conception of the present invention, it is important to include all such modifications in the claims as they do not depart from the spirit and scope of present invention.
The above and other objects and features of the present invention will become apparent from the following detailed description of the invention, when taken in conjunction with the accompanying drawings, in which:
The embodiments of the present invention will now be described in detail with reference to the figures, in which like reference numerals correspond to like parts throughout.
The atomizer illustrated in
As illustrated in
The nozzle illustrated in
One characteristic of the present invention is that the micro-perforated membrane 16b is connected to a liquid absorbing medium 15, instead of contacting directly with the liquid. When the micro-perforated membrane 16b is getting in contact with the liquid absorbing medium 15 saturated with liquid, the liquid will wet the lower surface of the micro-perforated membrane 16b which is in direct contact with the liquid absorbing medium 15 and then penetrate from said lower surface to the upper surface (atomizing surface) of the micro-perforated membrane 16b through the micro-holes 16c because of the capillary effect, and then forming a thin film of the liquid. Upon stimulated by the ultrasonic oscillation circuit, the micro-perforated membrane 16b is vibrating at certain frequency, and transferring the vibrating energy to the liquid film, forming a standing wave therein. When the amplitude of the standing wave reaches a critical value, droplets of liquid are ejected from the liquid film in a direction normal to the atomizing surface of the micro-perforated membrane 16b. The crictial value of the amplitude of the standing wave is relative to the voltage. That is, the higher the voltage is used, the larger is the amplitude. After atomization occurs, the liquid will continuously be transferred to the atomizing surface of the membrane 16b from the liquid absorbing medium 15. With the consumption of liquid, the liquid levels in the receiving tank 12 and the storing channel 6 will be lowered simultaneously. The liquid levels can be controlled by the liquid in the storing tank 2 in the manner described hereinbefore. The liquid absorbing medium 15 also functions as an effective cooling system that dissipating the heat produced by the atomization unit 16.
Another characteristic of the present invention is that a specially designed cylindrical sunk area 15a is incorporated into the liquid absorbing medium 15 and disposed at the interface between the liquid absorbing medium 15 and the micro-perforated membrane 16b, making the atomizer of the present invention suitable for high viscosity liquids. In traditional piezoceramic based atomizer, the perforations in the micro-perforated membrane are always blocked by the viscous film of high viscosity liquids, owing to the fact that the liquid feeding speed is faster than atomizing speed. On the other hand, this phenomenon also leads to overheating of the piezoceramic based atomization unit 16 if said specially designed cylindrical sunk area 15a is absent. The cylindrical sunk area 15a in the liquid absorbing medium 15 is configured to control the liquid feeding speed to the atomizing surface of the micro-perforated membrane 16b, as well as to keep the back pressure below the membrane. The micro perforations in the membrane 16b can be viewed as “capillary tubes”, which exert capillary force to pump liquids from the bottom to the top of the membrane. Because of the sunk area 15a being disposed underneath the perforations of the micro-perforated membrane 16b, these “capillary tubes” cannot pump liquid directly from the liquid absorbing medium 15. As a result, the liquid feeding speed is balanced with the atomization speed by said sunk area 15a, and the overheating of piezoceramic based atomization unit 16 can be suppressed simultaneously. At the same time, the sunk area 15a can also hold the back pressure below the membrane, ensuring the ejection of droplets occurs on the opposite surface. These properties enable the atomizer of the present invention suitable for high viscosity liquids. The diameter and the depth of the cylindrical sunk area 15a can be varied with different applications and liquids.
In addition, the geometry of the sunk area or space is not limited to cylindrical, and the number of the sunk areas needs not necessary to be one.
Further, the shape of the micro-perforated membrane needs not to be flat.
It is important to note that the direction of the nozzle can be arbitrary, varying from vertical to horizontal.
Hereinafter, the operation of the piezoceramic based atomizer for high viscosity liquid according to present invention will be briefly described.
For external DC source: the external DC source 101 is divided into two branches, one enters the charging module 103 to charge the internal battery 113; the other enters the voltage regulator 102, then flows through the source selecting switch 105 to the coupling boost transformer 111 and the voltage regulator 106 that power MCU 107. When triggering the switch 109, the MCU 107 receives a working instruction and outputs a 100 kHz pulse signal. The pulse signal is then received by the boosting coil of the transformer 111, generating a 100 kHz high-voltage pulse with amplitude in the range of 50 V-500 V. The high-voltage pulse will stimulate the piezoceramic based atomization unit 112 to vibrate the piezoceramic at ultrasonic frequency, and then eject micro-droplets of liquids.
For internal battery: without DC source 101 input, the voltage of the internal battery 113 is firstly increased and stabilized to 5 V by the DC step-up module 104. Then the above 5 V DC input is tuned by the source selecting switch 105, flows to the coupling boosting transformer 111 and voltage regulator 106 that power the MCU 107. When the switch 109 is triggered on, a 100 kHz pulse signal is generated by the MCU 107 and then received by the boosting coil of the transformer 111, producing a 100 kHz high-voltage pulse. As described hereinbefore, the high-voltage pulse will stimulate the piezoceramic based atomization unit 112 and the piezoceramic is vibrated at ultrasonic frequency, as a result, the liquid is atomized.
The MCU 107 will drive the LED indicator 108 through internal checking of the working status of the battery. When low battery status is detected by the reset circuit 110, a reset instruction is sent to MCU 107, then making itself to reset and shut down.
Although several embodiments of the present invention have been described and illustrated in detail, it is understood that numerous modifications and redesigning will be easily made by those skilled in the art. Thus, the present invention is not limited to the certain embodiments described, and accordingly, all such modifications and equivalents are regarded as including within the scope of the appended claims.
The present invention is useful in atomizing a variety of liquids, especially high viscosity liquid. Because of this advantage, the atomizer of the present invention is applicable in different sections including medicinal, engineering and also other consumer products requiring atomization of high viscosity liquid and/or non-aqueous liquid. Some of the components or modules of the present atomizer are also applicable to the conventional atomizers to improve their performance.
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