Device for generating mechanical vibrations
10335829 ยท 2019-07-02
Inventors
Cpc classification
H10N30/202
ELECTRICITY
International classification
Abstract
There is disclosed a mechanical-vibration-generating-device for generating a mechanical vibration, the mechanical vibration having a vibration direction. The mechanical-vibration-generating-device comprises: rigid bushings comprising at least a beginning rigid bushing and a end rigid bushing, at least one axial piezoelectric stack positioned between the beginning rigid bushing and the end rigid bushing, the at least one axial piezoelectric stack having an imaginary axis; the imaginary axis being aligned with the vibration direction, a coupling for interconnecting the beginning rigid bushing and the end rigid bushing, a common internal channel defined in the rigid bushings and the piezoelectric stack, the first connective passage and the second connective passage defined in the rigid bushings providing a fluid path between the common internal channel and an ambient environment, the first connective passage having a first valve and the second connective passage having a second valve, the first valve being configured as an inlet valve and the second valve being configured as an outlet valve.
Claims
1. A mechanical-vibration-generating-device for generating a mechanical vibration, the mechanical vibration having a vibrationl direction, the mechanical-vibration-generating-device comprising: rigid bushings comprising at least a beginning rigid bushing and an end rigid bushing, at least one axial piezoelectric stack positioned between the beginning rigid bushing and the end rigid bushing, the at least one axial piezoelectric stack having an imaginary axis; the imaginary axis being aligned with the vibration direction, a coupling for interconnecting the beginning rigid bushing and the end rigid bushing in the direction of the imaginary axis of the piezoelectric stack, the rigid bushings and the piezoelectric stack defining a common internal channel, the rigid bushings defining a first connective passage and a second connective passage, the first connective passage and the second connective passage providing a fluid path between the common internal channel and an ambient environment, the first connective passage having a first valve and the second connective passage having a second valve, the first valve being configured as an inlet valve and the second valve being configured as an outlet valve, the at least one axial piezoelectric stack being configured in response to being supplied with electrical voltage, to change its thickness that causes alternate decrease and increase in volume of the fluid in the common internal channel, the inlet valve and outlet valve being configured, in response to decrease and increase in volume of the fluid in the common internal channel, alternately opening and closing due to pressure difference in the common internal channel and ambient environment, and provide cooling fluid movement through the common internal channel in one direction.
2. The mechanical-vibration-generating-device of claim 1, wherein the first valve and the second valve comprises a respective flap valve.
3. The mechanical-vibration-generating-device of claim 1, wherein the coupling comprises a screw located in the common internal channel.
4. The mechanical-vibration-generating-device of claim 1, wherein the coupling comprises a screw located outside of the piezoelectric stack.
5. The mechanical-vibration-generating-device of claim 1, wherein the coupling comprises a casing, the casing being connected to the beginning rigid bushing and the end rigid bushing such that the axial piezoelectric stack is housed inside of the casing.
6. The mechanical-vibration-generating-device of claim 1, wherein the at least one axial piezoelectric stack comprises a series of electrode plates.
7. The mechanical-vibration-generating-device of claim 1, further comprising at least one intermediate rigid bushing located in-between the beginning rigid bushing and the end rigid bushing.
8. The mechanical-vibration-generating-device of claim 1, wherein the at least one axial piezoelectric stack is operatively coupled to a source of voltage pulses to selectively change thickness thereof in proportion to the voltage, such that the at least one axial piezoelectric stack selectively increases and decreases its thickness such that to provide the mechanical vibration to a work piece operatively associated with the mechanical-vibration-generating-device of.
9. The mechanical-vibration-generating-device of claim 8, wherein the inlet valve is coupled to a source of a cooling fluid for circulating the cooling fluid between the inlet valve, via the common internal channel, and the outlet valve for cooling, in use, the at least one axial piezoelectric stack and wherein: changes in the thickness of the at least one axial piezoelectric stack further causes selective opening of the inlet valve and the outlet valve for causing the cooling fluid to move.
10. The mechanical-vibration-generating-device of claim 1, wherein the inlet valve is coupled to a source of a cooling fluid for circulating the cooling fluid between the inlet valve, via the common internal channel, and the outlet valve for cooling, in use, the at least one axial piezoelectric stack.
11. The mechanical-vibration-generating-device of claim 1, wherein a fluid passage defined by the inlet valve, the common internal channel, and the outlet valve is selectively hermetically sealed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The abovementioned advantages of the invention and its features are explained with reference to non-limiting embodiments with reference to the drawings attached herewith, in which drawings:
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DETAILED DESCRIPTION OF THE NON-LIMITING EMBODIMENTS
(9) In accordance to a first non-limiting embodiment of the present technology, a device for generating of a mechanical vibration represented in a longitudinal cross-section in
(10) The beginning rigid bushing 1 and the end rigid bushing 2 are connected by a coupling for interconnecting the beginning rigid and the end rigid bushings in the direction of the imaginary axis 6 of the piezoelectric stack 3. Such coupling can be a screw 7 fixed by its head in the beginning rigid bushing 1. The screw 7 places in the holes in the rings 4 and the electrode plates 5 of the piezoelectric stack 3 and in the end rigid bushing 2. The screw 7 is fixed in the end rigid bushing 2 by a thread connection. At rotation of the screw 7 pulling to each other of the beginning rigid bushing 1 and the end rigid bushing 2 increases, which means the force pressing a piezoelectric stack 3 also increases.
(11) In the rigid bushings 1, 2 and in the piezoelectric stack 3 a common internal channel 8 is comprised. The screw 7, the holes in rings 4 and electrode plates 5 define the channel 8 in a piezoelectric stack 3. The connective passage 9 which provides a fluid path between the common internal channel 8 and an ambient environment is comprised in the rigid bushing 1. Furthermore, the connective passage 10 which provides a fluid path between the common internal channel 8 and an ambient environment is comprised in the rigid bushing 2. The connective passage 9 of the rigid bushing 1 has a flap inlet valve 11. The connective passage 10 of the rigid bushing 2 has a flap outlet valve 12.
(12) The connective passage 9 with the inlet valve 11 in it is hermetically sealed from below by the supporting surface 14, that is conditionally fixed during the operation of the device. Instead of the supporting surface 14 any other object can be used, including the movable object. The connective passage 10 with the outlet valve 12 in it is hermetically sealed from above by the work piece 13 operatively associated with the mechanical-vibration-generating-device, which is a load for the working device. During the operation of the device this work piece mechanically vibrates in the axial direction. Another object can be a load for the device.
(13) The view of the flap outlet valve 12 is presented in
(14) In accordance to another non-limiting embodiment of the present technology, a device for generating a mechanical vibration represented in a longitudinal section in
(15) In the device the common internal channel 8 of the ring shape defined by the screw 7, and also holes in rings 4, the beginning rigid bushing 1, the intermediate rigid bushings 17 and 18 and electrode plates 5 is provided. In the intermediate rigid bushing 17 two connective passages 19 which connect the common internal channel 8 to the ambient environment are provided. In the intermediate rigid bushing 18 two connective passages 20 for a fluid path between the common internal channel 8 and an ambient environment are provided.
(16) There is at least one flap inlet valve 11 in the connective passages 19. There is at least one flap outlet valve 12 in the connective passages 20. The object 21 is a load for the working device, perceiving a mechanical vibration. The part of it is represented in the drawing. Also the physical medium can be a load for the device. The end rigid bushing 2 is connected to the supporting surface 14, that is conditionally fixed during the operation of the device. Instead of the supporting surface 14 any other object can be used, including the movable object.
(17) In accordance to yet another non-limiting embodiment of the present technology, a device for generating a mechanical vibration represented in a longitudinal section in
(18) The beginning rigid bushing 1 and the end rigid bushing 2 are coupled. Such coupling for interconnecting the beginning rigid bushing 1 and the end rigid bushing 2 in the direction of the imaginary axis 6 of the piezoelectric stack 3 are two screws 7 fixed by the heads in the beginning rigid bushing 1, and the threaded portions are fixed in the end rigid bushing 2. Diameters of the beginning rigid bushing 1 and end rigid bushing 2 significantly exceed diameters of piezoelectric stacks 3. Screws 7 are located outside of the piezoelectric stacks 3.
(19) In the device the common internal channel 8 defined by holes in rings 4, the intermediate rigid bushings 17 and 18 and electrode plate 5 is provided. In the intermediate rigid bushing 17 two connective passages 19 for a fluid path between the common internal channel 8 and an ambient environment are provided. In the intermediate rigid bushing 18 two connective passages 20 for a fluid path between the common internal channel 8 and an ambient environment are provided.
(20) There is a flap inlet valve 11 in each connective passage 19. There is a flap outlet valve 12 in each connective passage 20.
(21) The object 21 is a load for the working device, perceiving a mechanical vibration. The part of it is represented in the drawing. Also physical medium can be a load for the device. The end rigid bushing 2 is connected to the supporting surface 14, that is conditionally fixed during the operation of the device. Instead of the supporting surface 14 any other object can be used, including a movable object.
(22) In accordance to yet another non-limiting embodiment of the present technology, a device for generating a mechanical vibration represented in a longitudinal section in
(23) The common internal channel 8 defined by holes in the beginning rigid bushing 1, the piezoelectric stack 3 and the end rigid bushing 2 is provided in the device. The connective passage 9 which connect the internal channel 8 to the ambient environment is made in the rigid bushing 1. Furthermore, the connective passage 10 which connect the internal channel 8 to the ambient environment is provided in the rigid bushing 2.
(24) The connective passage 9 of the beginning rigid bushing 1 has an inlet valve 23 of piezoelectric type. The connective passage 10 of the rigid bushing 2 has an outlet valve 24 of piezoelectric type. The beginning rigid bushing 1 is connected to the work piece 13 which is loading for the device when it works. During working of the device this body performs a mechanical vibration in the axial direction. Any other object or physical medium can also be the loading for the device. The end rigid bushing 2 is connected from below to the supporting surface 14 that is conditionally fixed during the operation of the device. Instead of the supporting surface 14 any other object can be used, including a movable object.
(25) The cross section of the beginning rigid bushing 1 with a piezoelectric inlet valve 23, located in the connective passage 9, is depicted in
(26) The ambient environment, the common internal channel 8 (
(27) A fluid passage defined by the inlet valve, the common internal channel, and the outlet valve is selectively hermetically sealed.
(28) In accordance with some implementations of the present technology, the device for generating a mechanical vibration works as follows.
(29) Voltage pulses are supplied from a source of voltage pulses to the rings 4 of the piezoelectric stacks 3 (
(30) Furthermore, change of length of the piezoelectric stack 3 causes alternate decrease and increase in volume of the fluid in the common internal channel 8. Inlet flap valves 11 (
(31) The controlling voltage coordinated with voltage supplied to the piezoelectric stack 3 from the control unit (it is not shown in the drawings) to the inlet electrically operated valves of piezoelectric type 23 (
(32) The fluid enters the common internal channel 8 through a connective passage 9 (
(33) Therefore there is no need for the pump or other similar means providing moving of the fluid through the common internal channel 8 (
UTILIZATION IN THE INDUSTRY
(34) Without being so limited, the device for generating a mechanical vibration can be utilized in the industry, transportation and housekeeping in ultrasonic welding and cleaning apparatus, echolocation equipment and piezoelectric stepper motors.
(35) The invention has been disclosed above with references to specific embodiments thereof. Other embodiments may be evident for specialists that do not alter its essence, as it is disclosed herein. Accordingly, the invention should be considered limited in scope only by the following claims.