Method and device for the ultrasonic welding of plastic components of an electronic cigarette or of an electronic cigarette cartridge
11491733 ยท 2022-11-08
Assignee
Inventors
Cpc classification
B29C66/9241
PERFORMING OPERATIONS; TRANSPORTING
B29C66/12841
PERFORMING OPERATIONS; TRANSPORTING
B29C66/9231
PERFORMING OPERATIONS; TRANSPORTING
B29C66/872
PERFORMING OPERATIONS; TRANSPORTING
B29C66/8432
PERFORMING OPERATIONS; TRANSPORTING
B29C66/8242
PERFORMING OPERATIONS; TRANSPORTING
B29C66/961
PERFORMING OPERATIONS; TRANSPORTING
B29C66/1282
PERFORMING OPERATIONS; TRANSPORTING
B29C66/30223
PERFORMING OPERATIONS; TRANSPORTING
B29C66/8322
PERFORMING OPERATIONS; TRANSPORTING
B29C66/81463
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method and a device for the ultrasonic welding of a first component to a second component of an electronic cigarette cartridge, wherein both components are made of a plastic material; the device includes an ultrasound generator, which delivers an electric pulse to a vibrating assembly, which, in turn, includes a converter designed to turn the electric pulse into a mechanical vibration movement and transfers it to a sonotrode, which directly transmits the energy in the form of vibrations to the two components to be welded; the sonotrode is designed so as to simultaneously weld a plurality of first components to the respective second components and cooperates with a plurality of striker elements, each associated to a respective first component and to a respective second component to be welded; and wherein each striker element is connected to a sensor, which is designed to detect a parameter of the welding process carried out to weld the first component to the second component and to control the welding process carried out to weld the first component to the second component based on the parameter.
Claims
1. A device (10) for the ultrasonic welding of a first component (2) to a second component (7) of an electronic cigarette or of an electronic cigarette cartridge (1), wherein both components (2, 7) are made of a plastic material; the device comprising: an ultrasound generator, which delivers an electric pulse to a vibrating assembly (VA), which, in turn, comprises a converter designed to turn the electric pulse into a mechanical vibration movement and transfers it to a sonotrode, which directly transmits energy in the form of vibrations to the two components (2, 7) to be welded; the sonotrode (11) is designed so as to simultaneously weld a plurality (n.sub.1) of the first components (2) to a plurality (n.sub.1) of the respective second components (7) and cooperates with a plurality of striker elements (19), each associated with a respective first component (2) and a respective second component (7) to be welded, each striker element being individually movable to bring the respective first component and the respective second component into a welding position; and a plurality of sensors, each striker element (19) is connected to a respective one of the plurality of sensors (20), each sensor is designed to detect a parameter (X.sub.1) of the welding process carried out to weld the respective first component (2) to the respective second component (7) to which the striker element connected thereto is associated and individually control movement of the striker element to which it is connected to control the welding process carried out to weld the respective first component (2) to the respective second component (7) as a function of the parameter (X.sub.1) by stopping the movement of the striker element to which it is connected when the parameter (X.sub.1) equals a reference parameter (X.sub.ref).
2. The device according to claim 1, wherein the sonotrode (11) comprises a body (12), which extends longitudinally along an axis (X) and comprises a first end (13), which is connected to the ultrasound generator, as well as a second end (14), opposite the first end (13), which is designed to at least partially receive, on an inside, the plurality (n.sub.1) of the second components (7) to be simultaneously welded to the respective first components (2).
3. The device according to claim 1, wherein each sensor of the plurality of sensors (20) is designed to detect a linear movement of the striker element (19) along a longitudinal direction (H).
4. The device according to claim 1, wherein each striker element (19) is movable along a longitudinal direction (H) between an upper extreme position and a rest position, and vice versa; and wherein a raised operating position is provided between the upper extreme position and the rest position, in which each striker element (19) causes the second component (7) to be welded to at least partially come into contact with the sonotrode (11).
5. The device according to claim 1, wherein each striker element (19) is a pneumatically or electrically operated piston.
6. A method for the ultrasonic welding of a first component (2) to a second component (7) of an electronic cigarette or of an electronic cigarette cartridge (1), wherein both components (2, 7) are made of a plastic material; said method being carried out by a welding device (10) according to claim 1; the method comprises the steps of: simultaneously placing the plurality of first components (2) and the plurality of second components (7) to be welded in the area of the respective striker elements (19); moving each striker element (19) along a longitudinal direction (H), so that it is in a raised operating position, in which the second component (7) to be welded is at least partially in contact with the sonotrode (11); controlling turning on of the vibrating assembly (VA), so that the mechanical vibration movement generates a heat that allows each second component (7) to be welded to the respective first component (2); detecting, by the plurality of sensors (20), the parameter (X.sub.1) of the welding process carried out to weld the respective first component (2) to the respective second component (7); and stopping the movement of the striker element (19) when the parameter (X.sub.1) of the welding process carried out to weld the respective first component (2) to the respective second component (7) is equal to the reference value (X.sub.ref).
7. The method according to claim 6, wherein the reference value (X.sub.ref) is determined in a set up phase and so as to ensure that each second component (7) has been welded to the respective first component (2).
8. The method according to claim 6, wherein, after having detected that the parameter (X.sub.1) of the welding process carried out to weld the first component (2) to the second component (7) is equal to the reference value (X.sub.ref), the striker element (19) moves to the raised operating position, in which the second component (7) to be welded is at least partially in contact with the sonotrode (11).
9. The method according to claim 6, wherein, after having detected that the parameter (X.sub.1) of the welding process carried out to weld the first component (2) to the second component (7) is equal to the reference value (X.sub.ref), the striker element (19) moves along the longitudinal direction (H) in such a way that the second component (7) faces, but from a distance, the sonotrode (11).
10. The method according to claim 6 and comprising the further step of ordering turning off of the vibrating assembly (VA) when the movement of all striker elements (19) has been stopped.
11. The method according to claim 10 and comprising the further steps of moving each striker element (19) along the longitudinal direction (H) so that it reaches the raised operating position, in which the second component (7) is at least partially in contact with the sonotrode (11), so as to allow the joining area between the first component (2) and the second component (7) to cool down.
12. The method according to claim 6, wherein the parameter (X.sub.1) of the welding process carried out to weld the first component (2) to the second component (7) is a linear movement (X.sub.1) made by the respective striker element (19) relative to the raised operating position.
13. A device (10) for the ultrasonic welding of a first component (2) to a second component (7) of an electronic cigarette or of an electronic cigarette cartridge (1), wherein both components (2, 7) are made of a plastic material; the device comprising: an ultrasound generator, which delivers an electric pulse to a vibrating assembly (VA); the vibrating assembly (VA) comprising a converter designed to turn the electric pulse into a mechanical vibration movement and transfer it to a sonotrode, which directly transmits energy in the form of vibrations to the two components (2, 7) to be welded; the sonotrode (11) designed so as to simultaneously weld a plurality (n.sub.1) of the first components (2) to a plurality (n.sub.1) of the respective second components (7) and cooperates with a plurality of striker elements (19); each striker element of the plurality of striker elements is associated with a respective first component (2) and a respective second component (7) to be welded and each striker element independently moves along a longitudinal direction between an upper extreme position and a rest position, and a raised operating position of each striker element is provided between the upper extreme position and the rest position such that in operation each striker element in the raised operating position supports the respective first component and the respective second component to be welded such that the respective second component is at least partially in contact with the sonotrode; and a plurality of sensors, each striker element (19) is connected to a respective one of the plurality of sensors (20), each sensor is designed to detect movement of the striker element to which it is connected and to control the welding process carried out to weld the respective first component (2) to the respective second component (7) as a function of the movement of the striker element such that the vibrating assembly is turned on when each sensor detects each respective striker element to which it is connected is in the raised operating position, each striker element is then individually moved from the raised operating position towards the upper extreme position, each striker element is individually stopped when the respective sensor connected thereto detects the movement of the striker element from the raised operating position is equal to a reference value (X.sub.ref), and the vibrating assembly is turned off when the movement of each striker element has been stopped.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be described with reference to the accompanying drawings, which illustrate a non-limiting embodiment thereof, in which:
(2)
(3)
PREFERRED EMBODIMENTS OF THE INVENTION
(4) In
(5) In
(6) The welding device 10 comprises a single ultrasound generator, which delivers a high-frequency sinusoidal electrical pulse to a vibrating assembly VA, which, in turn, comprises a converter designed to turn the electric pulse into a mechanical vibration movement, a booster, which amplifies the mechanical vibration movement and transfers it to a sonotrode 11, which directly transmits the energy in the form of vibrations to the casing 2 and the sealing ring 7 to be secured to one another and applies a welding pressure P.
(7) As shown in
(8) The end 14 is designed to at least partially receive, on the inside, a plurality of sealing rings 7 to be welded.
(9) In particular, at its end 14, the sonotrode 11 has a profile designed to at least partially come into contact with a plurality n.sub.1 of sealing rings 7 to be simultaneously welded (in particular, seven or eight sealing rings 7 to be welded).
(10) The sonotrode 11 cooperates with a respective anvil 15 (or support) for raising the disposable cartridges 1 towards the welding head of said sonotrode 11.
(11) A support member 16 for supporting a plurality of disposable cartridges 1 is interposed between the sonotrode 11 and the anvil 15; the support member 16 is provided with a plurality of seats 17, each of which is in turn provided with jaws, which retain a respective disposable cartridge 1 during transport and release it to allow welding. The anvil 15, in turn, comprises a support body 18 internally housing a plurality of pneumatic or electrical pistons 19 (of the known type and not described in detail). Each piston 19 is movable along the substantially longitudinal direction H (and parallel to the axis X) between an upper extreme position and a rest position; and vice versa. A raised operating position (shown in
(12) Lastly, each piston 19 is connected to a respective sensor 20. According to a preferred variant, the sensor 20 is a linear encoder. The sensor 20 is designed to read the linear movement of the piston 19 along the direction H.
(13) Importantly, the sonotrode 11 is designed to simultaneously weld a plurality n.sub.1 of sealing rings 7 to the respective casings 2, whose number n.sub.1 is equal to the number n.sub.1 of pistons 19 of the anvil 15. In other words, for each disposable cartridge 1 to be subjected to welding, a respective piston 19 is provided.
(14) In use, the support member 16 transfers the plurality n.sub.1 of disposable cartridges 1 containing the certain amount of tobacco powder topped by a piece of filtering material 6 and fitted with the sealing ring 7 to be welded in the area of the device 10 for the ultrasonic welding, so that each disposable cartridge 1 (i.e. each seat 17 of the support member 16 that conveys the disposable cartridges 1) is arranged in a position facing, and exactly in the area of, a respective piston 19 and the end 14 of the sonotrode 11. The jaws of the seats 17 release the disposable cartridges 1, and the welding is carried out through the raising of the disposable cartridge 1 performed by the respective piston.
(15) In particular, the following steps occur in succession: the support member 16 carries the casings 2 containing the certain amount of tobacco powder topped by a piece of filtering material 6 and fitted with the sealing ring 7 to be welded below the sonotrode 11; each piston 19 places itself in the rest position along the direction H in which it is located below a respective casing 2; the jaws of the seats 17 release the respective casings 2, each of which is supported by a respective piston 19; the piston 19 is operated again so that it moves to the raised operating position, in which the sealing ring 7 abuts against the end 14 of the sonotrode 11; each sensor 20 detects the linear movement X.sub.0 made by the respective piston 19 so that it reaches the raised operating position, i.e. to place the sealing ring 7 in abutment against the end 14 of the sonotrode 11; the vibrating assembly VA is turned on so that the mechanical vibration movement generates a heat that allows the plastic materials of the casing 2 and of the sealing ring 7 to melt at the desired positions; the piston 19 continues to move upward from the raised operating position along the direction H, and each sensor 20 continues to detect the linear movement X.sub.1 made by the respective piston 19 from the raised operating position; when the sensor 20 detects that the linear movement X.sub.1 made by the respective piston 19 from the raised operating position is equal to a reference value X.sub.ref, the upward movement along the direction H of the piston 19 is stopped.
(16) The reference value X.sub.ref is determined in a step for setting up the ultrasonic welding device 10, and so as to ensure that the casing 2 has been welded to the sealing ring 7 of each disposable cartridge 1.
(17) Once the upward movement of all the pistons 19 of the anvil 15 along the direction H has been stopped, the vibrating assembly VA is turned off.
(18) At this point, the pistons 19 are again operated upwards along the direction H from the raised operating position, in which the sealing ring 7 abuts against the end 14 of the sonotrode 11, so as to allow the joining area between the casing 2 and the sealing ring 7 of each disposable cartridge 1 to cool down. The step of cooling the joining area between the casing 2 and the sealing ring 7 of each disposable cartridge 1 has a duration t.sub.1, which is determined in a step for setting up the ultrasonic welding device 10, and so as to ensure that the casing 2 is joined to the sealing ring 7 of each disposable cartridge 1 in a compact manner.
(19) Once the cooling step is completed, the pistons move downwards, again along the direction H, from the raised operating position to the rest position, in which the disposable cartridges 1 are transferred again into a respective seat 17 where they are retained by the jaws of the respective seat.
(20) According to a first variant, when the sensor 20 detects that the linear movement X.sub.1 made by the respective piston 19 from the raised operating position is equal to a reference value X.sub.ref and the upward movement along the direction H of the piston 19 is stopped, the piston 19 places itself in the raised operating position, in which the sealing ring 7 still abuts against the end 14 of the sonotrode 11.
(21) According to a further variant, when the sensor 20 detects that the linear movement X.sub.1 made by the respective piston 19 from the raised operating position is equal to a reference value X.sub.ref and the upward movement along the direction H of the piston 19 is stopped, said piston 19 moves downward along the direction H so that the sealing ring 7 faces, but from a distance, the end 14 of the sonotrode 11.
(22) It will also be apparent that the piston 19 can advantageously be replaced by a spring device; and the sensor 20 can advantageously be of the piezoelectric type to detect a reduction in current.
(23) Clearly, the ultrasonic welding device 10 described above can be used to weld other electronic cigarette plastic components to each other.
(24) The ultrasonic welding device 10 described above has numerous advantages.
(25) In the first place, the ultrasonic welding device 10 described above allows high hourly productivity to be achieved, while ensuring high quality standards through the use of a single sonotrode 11 manufactured so as to simultaneously weld a plurality n.sub.1 of sealing rings 7 to the respective casings 2. In addition, the use of the sensors 20 allows for taking into account the differences between the various pistons 19.