This non-provisional application claims priority under 35 U.S.C. § 119(a) on Patent Application No(s). 110148847 filed in Taiwan, R.O.C. on December 27th, 2021, the entire contents of which are hereby incorporated by reference.
The present disclosure is related to an ultrasonic extraction equipment.
Ultrasound is sound waves or vibrations with frequencies higher than the upper audible limit of human hearing, and this limit is approximately 20 kHz (kilohertz). The ultrasound has been widely used in many fields such as medicine, industry, and information activities due to its high frequency characteristics. Some general applications, for example, include ultrasonic cleaning which is based on the mechanism of placing an object in a solution tank and using transducers to apply ultrasonic waves to the water in the solution tank to remove oil and dirt, thereby cleaning this object. Moreover, the ultrasound is used to extract specific substances with solvents and is applied to the extraction of high value-added functional active ingredients. Because the ultrasonic extraction has the advantages of high efficiency, short process time and less solvent usage compared to conventional extraction methods, it has received considerable attention in recent years.
In general, an ultrasonic extraction equipment includes a solution tank and several transducers for generating ultrasonic waves. The transducers may be mounted on the bottom, the side, or even integrally formed with the solution tank. As to a conventional ultrasonic extraction method, the extraction is performed by multi-frequency ultrasonic technology in which the transducers which can generate ultrasonic waves with different frequencies, are simultaneously operated to generate a multi-frequency ultrasonic waves.
According to one embodiment of the present disclosure, an ultrasonic extraction equipment includes a solution tank and a plurality of ultrasonic transducers. The ultrasonic transducers are disposed on an outer surface of the solution tank. The ultrasonic transducers include a central ultrasonic transducer and a plurality of peripheral ultrasonic transducers arranged to surround the central ultrasonic transducer.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. According to the description, claims and the drawings disclosed in the specification, one skilled in the art may easily understand the concepts and features of the present disclosure. The following embodiments further illustrate various aspects of the present disclosure, but are not meant to limit the scope of the present disclosure.
Please refer to
A central distance between any adjacent two of the ultrasonic transducers may be 1.6 times to 2.3 times greater than a diameter of each ultrasonic transducer. As shown in
The ultrasonic transducer may be in a shape of cylinder or conical frustum.
The central distance between any adjacent two of the ultrasonic transducers may be equal. Specifically, as shown in
Referring to the embodiment shown in
Different operation frequencies can be used for the extraction of different substances. For example, when an extraction of pectin from fruit peel is performed, all ultrasonic transducers (the central ultrasonic transducer 20a and the peripheral ultrasonic transducers 20b) can be switched to the first operation mode, so that the ultrasonic extraction equipment 1 generates ultrasound with a frequency of 20 kHz for the extraction. When an extraction of galacturonic acid from pectin is performed, all ultrasonic transducers can be switched to the third operation mode, so that the ultrasonic extraction equipment 1 generates ultrasound with a frequency of 50 kHz for the extraction.
Please further refer to
According to the present disclosure, all ultrasonic transducers 20 of the ultrasonic extraction equipment 1 can perform ultrasonic extraction with the same frequency, and a uniform sound pressure level distribution can be observed in the liquid contained in the solution tank 10. The measurement and calculation of the sound pressure level distribution may be implemented by, but not limited to, the following methods: a cross section at either the depths H1 or H2 is selected, and the sound pressure levels at various positions on this cross section are measured to obtain a three-dimensional distribution of sound pressure level on this cross section. On this cross section, a central position “A” corresponding to the central ultrasonic transducer 20a and multiple peripheral positions “B” through “E” respectively corresponding to the peripheral ultrasonic transducers 20b are taken as the references for sound pressure level, and these references are averaged to obtain an average sound pressure level.
The effect of one or more features of the present disclosure on the sound pressure level distribution will be described hereafter.
Take the ultrasonic extraction equipment 1 in
According to TABLE 1, it can be observed that when the ratio (S/D) of the central distance S to the diameter Dv of the ultrasonic transducer 20 is in the range of 1.6 to 2.3, it is helpful to obtain a uniform sound pressure level distribution. Especially, a smaller standard deviation of the sound pressure levels can be observed when the ratio (S/D) is in the range of 1.7 to 2.2, which represents that a flat three-dimensional distribution of sound pressure level can be expected. That is, similar or even substantially identical value of the sound pressure level can be measured at various positions on this cross section.
The cross sections at the depths of 3 cm and 4.5 cm under the water surface are selected, and the sound pressure level is measured with all ultrasonic transducers operated at a frequency of 20 kHz, 35 kHz or 50 kHz. The relationship between presence of the central ultrasonic transducer 20a and the measured sound pressure levels (SPLs) are shown in TABLE 2 through TABLE 7 below.
Referring to TABLE 2 through TABLE 7, the presence of the central ultrasonic transducer is helpful to obtain a uniform sound pressure level distribution. As shown in TABLE 3, a smaller standard deviation of the sound pressure levels can be observed in the embodiment of the present disclosure, which represents that the central ultrasonic transducer is helpful to achieve uniform sound pressure level distribution on a cross section relatively deeper under the water surface. As shown in TABLE 4 through TABLE 7, a smaller standard deviation of the sound pressure levels can be observed in the embodiment of the present disclosure, which represents that the central ultrasonic transducer is also helpful to achieve uniform sound pressure level distribution when the ultrasonic transducers are operated at higher frequency.
According to the present disclosure, the ultrasonic extraction equipment includes a central ultrasonic transducer and multiple peripheral ultrasonic transducers arranged to surround the central ultrasonic transducer. The specific arrangement of the ultrasonic transducers as well as the specific spacing therebetween allow all ultrasonic transducers to perform ultrasonic extraction at the same frequency while achieving uniform sound pressure level distribution. Compared to a conventional means that the uniform sound pressure level distribution is achieved by using multi-frequency ultrasound, the present disclosure can prevent the use of high energy-consuming ultrasonic transducers as well as the requirement of complicated frequency control for ultrasonic extraction, thus reducing manufacturing costs and ultrasonic extraction costs.
It will be apparent to those skilled in the art that various modifications and variations can be made to the present disclosure. It is intended that the specification and examples be considered as exemplary embodiments only, with a scope of the disclosure being indicated by the following claims and their equivalents.
Number | Date | Country | Kind |
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110148847 | Dec 2021 | TW | national |