Device for closing containers
09567198 ยท 2017-02-14
Assignee
Inventors
- Andreas Fahldieck (Idar-Oberstein, DE)
- Manfred Hartel (Bretzenheim, DE)
- Heinz Hillmann (Obrigheim, DE)
- Thomas Schneider (Kirn, DE)
Cpc classification
B67B3/2033
PERFORMING OPERATIONS; TRANSPORTING
B67B3/268
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A closing machine for closing containers has closing stations. Each station has a closer tool, a magnetically acting coupling element, a drive space, a product space, a linear drive, and a driver. The magnetically acting coupling element has inner and outer magnet elements. The drive space is formed separately from the product space. The linear guide positively drives the outer magnet element. The driver positively carries along said closer tool in a required height movement.
Claims
1. An apparatus comprising a closing machine for closing containers, said closing machine comprising: closing stations, wherein each of said closing stations comprises: a drive space formed separately from a product space; a closer tool within said product space; a magnetically acting coupling element comprising an inner magnet element in the drive space and an outer magnet element in the product space; wherein movement of the inner magnet element controls movement of the outer magnet element; a linear guide comprising an inner linear guide in the drive space and an outer linear guide in the product space; a driver connected between the outer magnet element and the closer tool; wherein said inner magnet element is guided by said inner linear guide for movement of said inner magnet element in a vertical direction; wherein said outer magnet element is guided by said outer linear guide for controlled movement of said outer magnet element in a vertical direction; and wherein said driver moves said closer tool as said outer magnet element is moved in said controlled movement.
2. The apparatus of claim 1, further comprising a dividing wall, wherein said dividing wall is disposed between said inner magnet element and said outer magnet element.
3. The apparatus of claim 2, wherein said dividing wall is a rigid dividing wall.
4. The apparatus of claim 2, wherein said dividing wall separates said product space from said drive space, and wherein said product space is a sterilizable space.
5. The apparatus of claim 1, wherein said inner magnet element is configured for being moved along said inner linear guide by a control cam.
6. The apparatus of claim 1, wherein said inner magnet element is configured to be moved along said inner linear guide by a motor.
7. The apparatus of claim 1, wherein said driver comprises a connecting arm, and a guide sleeve, wherein said outer linear guide connects said connecting arm to said outer magnet element, wherein said guide sleeve includes a section of said closer tool.
8. The apparatus of claim 1, wherein said driver comprises a connecting arm, and a guide sleeve, wherein said outer linear guide connects said connecting arm to said outer magnet element, wherein said guide sleeve is attached to said closer tool.
9. The apparatus of claim 1, wherein said closer tool comprises a variable-length shaft, wherein said shaft comprises a stationary shaft part and a movable shaft part.
10. The apparatus of claim 9, wherein said variable-length shaft is a telescoping shaft.
11. The apparatus of claim 1, wherein said magnet elements comprise permanent magnets.
12. The apparatus of claim 1, wherein said inner magnet element comprises controllable electromagnets.
13. An apparatus comprising a closing machine for closing containers, said closing machine comprising: a rotor configured to rotate about a vertical machine axis, and at least one closing station arranged on said rotor, said at least one closing station comprising: a drive space formed separately from a product space; a closer tool within said product space; a magnetically acting coupling element comprising an inner magnet element in the drive space and an outer magnet element in the product space; a driver connected between the outer magnet element and the closer tool; a linear guide comprising an inner linear guide in the drive space and an outer linear guide in the product space; wherein said inner magnet element is guided by said inner linear guide to follow a vertical movement path; wherein said outer magnet element is guided by said outer linear guide to follow a vertical movement path; wherein said driver moves said closer tool as said outer magnet element is moved; and wherein said inner magnet element is configured as a lifting and control cam that causes said outer magnet element to also rotate around said vertical machine axis when following said vertical movement path of said inner magnet element.
14. The apparatus of claim 13, further comprising a dividing wall, wherein said dividing wall is disposed between said inner magnet element and said outer magnet element.
15. The apparatus of claim 13, wherein said driver comprises a connecting arm and a guide sleeve, wherein said outer linear guide connects said connecting arm to said outer magnet element, wherein said guide sleeve includes a section of said closer tool.
16. The apparatus of claim 13, wherein said driver comprises a connecting arm, and a guide sleeve, wherein said outer linear guide connects said connecting arm to said outer magnet element, wherein said guide sleeve is attached to said closer tool.
17. The apparatus of claim 13, wherein said closer tool comprises a variable-length shaft, wherein said variable-length shaft comprises a stationary shaft-part and a movable shaft-part.
18. The apparatus of claim 17, wherein said variable-length shaft is a telescoping shaft.
19. The apparatus of claim 13, wherein said magnet elements comprise permanent magnets.
20. The apparatus of claim 13, wherein said inner magnet element comprises controllable electromagnets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantageous embodiments of the invention are disclosed in the subsidiary claims and the following description of the figures, in which:
(2)
(3)
(4)
(5)
(6)
(7) In the various figures, the same parts are always given the same reference symbols, and hence they are generally also only described once and only entered once in the figures.
DETAILED DESCRIPTION
(8)
(9) In the illustrated embodiment, the closer tool 3 can be moved in rotational movements by a rotary drive 4. In this regard,
(10) The closer tool 3 has a shaft 5 to which a working section or cone 6 is connected. The cone 6 can hold the screw cap. The length of the shaft 5 can be variable, for example telescopic, with a stationary shaft part 7 and a shaft part 8 that can be moved relative to it. The stationary shaft part 7 is connected to the rotary drive 4. The movable shaft part 8 is connected to the cone 6.
(11) The particular closer station 1 has a magnetically acting coupling element 9 (
(12) The first inner magnet element 10 can be moved on an inner linear guide 15 along the vertical machine axis X or parallel to it, for the purpose of which a drive, not illustrated, can be provided. The drive can be controlled, and moves the first inner magnet element according to the control signals generated, for example, in a control unit. The control signals correspond to the necessary or required height movement, thus effectively a lifting cam. In this regard, the lifting cam is preferably held in the control unit. Also feasible is the generation of a particular lifting curve with corresponding measuring and pick-up elements so that a lifting curve constantly adapted to operational needs can be achieved.
(13) The terms inner and outer refer in each case to the vertical machine axis X whereby, in the drawing plane, the inner components in each case are arranged closer to the vertical machine axis X than the outer components.
(14) The rotary drive 4 and also a container driver 17 are connected to the rotor 16. The outer linear guide 13 is arranged on a connecting device 18 of the rotary drive 4 of the rotor 16. The outer linear guide 13 extends from the connecting device 18 and is oriented in a path parallel to the vertical machine axis X running with its free end 19 oriented downwards.
(15) The driver 14 is provided on the moveable shaft part 8 of the shaft 5. The driver 14 has connecting arms 20 and a guide sleeve 21. By way of example, two connecting arms 20 are shown, but this is not intended to be restrictive. Also feasible is a single connecting arm 20 or more than two such arms. The connecting arms 20 are fixed, on the one hand, to the second outer magnet element 11, and on the other, to the guide sleeve 21. The guide sleeve 21 covers the moveable shaft part 8 of the shaft 5 completely. The guide sleeve 21 can be completely closed or partially open. Furthermore, the guide sleeve 21 has a bearing device 22 that simultaneously allows a rotary and also a translational movement. In this way, the moveable shaft part 8 of the shaft 5 can be moved along or parallel to the vertical machine axis X. The moveable shaft part 8 of the shaft 5 can however also rotate, this being according to the direction of rotation defined by the rotary drive 4.
(16) The dividing wall 12, which is solely an example, is connected by its head to the connecting device 18, and extends over the free end 19 of the outer linear guide 13 in a downward direction.
(17) As shown in the embodiment of
(18) The longitudinal extension of the first section 23 or of the guide section 23 is favorably adapted to a maximum movement amplitude to be expected of the first inner magnetic element 10 or the second outer magnet element 11. Expedient here is to make the guide section 23 oversized in its longitudinal extension so that a largely free adjustability or every possibly necessary height movement can be achieved.
(19) In
(20) The magnet elements 10 and 11 are shown magnified in
(21) As can also be seen in
(22) If the first inner magnet element 10 is now moved relative to the second outer magnet element 11, the second magnet element 11 is carried along, whereby the cone 6 is also carried along positively by positive entrainment.
(23) A further example of an embodiment is illustrated in
(24) The first inner magnet element 10 is, in contrast to the example of the embodiment in
(25) The foot area 21 is made step-like by way of example, and transitions into a column 33 running parallel to the vertical machine axis X. This column has having an outer periphery on which permanent magnets 30 are arranged.
(26) In contrast to the embodiment shown in
(27) An embodiment is feasible in which the permanent magnets 30 can be arranged on an inner periphery of the column or of the head area 34.
(28) The permanent magnets 30 are now arranged in the vertical direction and circumferential direction so that the second outer magnet element 11 rotating past is carried effectively along a lifting curve, and this necessary height movement, as described in
(29) Instead of the permanent magnets 30, controllable electro-magnets can also be provided. Preferably, the former would have electro-magnets that can control inner magnet elements 10. The electro-magnets could, as described in
(30) It is also expedient, as in the embodiment shown in
(31) Similarly, a closer station with a closer stamp can also be made as a (crown) corking machine. The rotary drive would of course not be needed in this case.
(32)
(33) Although, in the above examples of embodiments and figures, only one closer in a carousel design is shown and described, the mode of action and the basic principle can be transferred similarly to linear closers or linear filling and closing machines. In this case, the closer tools are arranged in a row one after the other.
(34) In linear filling and closing machines that work in steps or sequentially, such as those described in DE102005032322A1, the closer tools of the closer stations are arranged in a group diagonally and above the main transport path of the containers and can be moved jointly vertically.
(35) The linear guides and magnetic drivers can moreover ideally be arranged, in a manner similar to those described above, into a product space and a drive space separate from the product space by a dividing wall. In particular, in this way, a sterile or sterilizable product space can be separated from an unsterile working space or a space of a lesser cleanliness.