Glazing panel removal
11161267 · 2021-11-02
Assignee
Inventors
Cpc classification
B26D5/08
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A glazing panel removal device includes a winder unit having first and second winder spools for winding a cutting filament and a drive, for driving the winder spools. The drive means includes a single or common drive input for driving both the first and second winder spools. The drive maybe a rotary input drive, and driving the rotary input in a first rotary direction may cause winding of the filament onto the first winder spool and driving the rotary input in the opposite direction causes winding of the filament onto the second winder spool.
Claims
1. A glazing panel removal device comprising a winder unit having: a cutting filament for removing a glazing panel; first and second winder spools for winding the cutting filament, the first and second winder spools being mounted to rotate on axes that are substantially co-axial with one another; and drive means configured to selectively drive one of the first and second winder spools, whilst permitting the other of the first and second winder spools to rotate without being driven by the drive means.
2. The glazing panel removal device according to claim 1, wherein: the single or common drive input comprises a rotary input selectively configured to rotate in one of a first rotational direction and a second rotational direction, wherein rotation of the rotary input in the first rotational direction drives rotation of the first winder spool whilst permitting the second winder spool to rotate without being driven by the rotary input and causes winding of the cutting filament onto the first winder spool, and wherein rotation of the rotary input in the second rotational direction drives rotation of the second winder spool whilst permitting the first winder spool to rotate without being driven by the rotary input and causes winding of the cutting filament onto the second winder spool.
3. The glazing panel removal device according to claim 2, wherein: the rotary input comprises a bevel gear.
4. The glazing panel removal device according to claim 2, wherein: the drive means further comprises first and second one-way bearings operably coupled to the rotary input, wherein the first one-way bearing is configured to selectively transmit rotation of the rotary input in the first rotational direction to rotation of the first winder spool, and wherein the second one-way bearing is configured to selectively transmit rotation of the rotary input in the second rotational direction to rotation of the second winder spool.
5. The glazing panel removal device according to claim 4, wherein: the drive means further comprises an input drive shaft operably coupled to the rotary input and configured to drive rotation of the rotary input, a first transmission shaft operably coupled to the first one-way bearing and configured to drive rotation of the first winder spool, and a second transmission shaft operably coupled to the second one-way bearing and configured to drive rotation of the second winder spool.
6. The glazing panel removal device according to claim 5, wherein: the first winder spool is selectively mounted to the first transmission shaft in one of an engaged position and neutral position, wherein in the engaged position the first winder spool is configured to rotate with the first transmission shaft, and in the neutral position the first winder spool is configured to rotate independently of the first transmission shaft.
7. The glazing panel removal device according to claim 5, wherein: the second winder spool is selectively mounted to the second transmission shaft in one of an engaged position and neutral position, wherein in the engaged position the second winder spool is configured to rotate with the second transmission shaft, and in the neutral position the second winder spool is configured to rotate independently of the second transmission shaft.
8. The glazing panel removal device according to claim 1, wherein: the drive means is further configured to selectively permit rotation of the other of the first and second winder spools such that the cutting filament is wound off the other of the first and second winder spool simultaneously with the cutting filament being wound onto the one of the first and second winder spools.
9. The glazing panel according to claim 1, wherein: the drive means further comprises at least one brake arrangement configured to selectively inhibit rotation of the other of the first and second winder spools such that the cutting filament is prevented from winding off the other of the first and second winder spools whilst the cutting filament is being wound onto the one of the first and second winder spools.
10. The glazing panel removal device according to claim 9, wherein: the drive means includes a first adjustable brake arrangement configured to control torque required to rotate the first winder spool and wind the cutting filament off the first winder spool; and the drive means includes a second adjustable brake arrangement configured to control torque required to rotate the second winder spool and wind the cutting filament off the second winder spool.
11. The glazing panel removal device according to claim 1, wherein: one or both of the first and second winder spools are demountable from the winder unit.
12. The glazing panel removal device according claim 1, further comprising: mounting means for mounting the device to a glazing panel.
13. The glazing panel removal device according to claim 12, wherein: the mounting means comprises one or more suction mounts.
14. The glazing panel removal device according to claim 12, wherein the rotational axes of the first and second winder spools are orientated substantially i) coaxial with one another, and/or ii) with axes horizontal or parallel with respect to the general plane of the vehicle glazing panel.
15. The glazing panel removal device according to claim 1, wherein at least one of the first and second winder spools is arranged to be mounted with respect to a driven shaft in an engaged position in which the respective winder spool is coupled to rotate with the driven shaft and a neutral position in which the respective winder spool can rotate independently of the driven shaft.
16. The glazing panel removal device according to claim 1, wherein at least one of the first and second winder spools is arranged to be mounted or coupled with respect to a driven shaft by magnetic means.
17. The glazing panel removal device according to claim 1, wherein: the drive means is configured to permit the other of the first and second winder spools to rotate independently of the drive means.
18. The glazing panel removal device according to claim 1, wherein: the drive means is configured to selectively drive one of the first and second winder spools independent of any cutting filament wound on either the first or second winder spools.
19. A glazing panel removal device comprising a winder unit having: a cutting filament for removing a glazing panel; first and second winder spools for winding the cutting filament, the first and second winder spools being mounted to rotate on axes that are substantially co-axial with one another; and a drive transmission operably coupled to both the first winder spool and the second winder spool, wherein the drive transmission has a first configuration that selectively drives the first winder spool, whilst permitting the second winder spool to rotate without being driven by the drive transmission, and wherein the drive transmission has a second configuration that selectively drives the second winder spool, whilst permitting the first winder spool to rotate without being driven by the drive transmission.
20. In a glazing panel removal device comprising a winder unit having a cutting filament for removing a glazing panel and first and second winder spools for winding the cutting filament, the improvement comprising the first and second winder spools being mounted to rotate on axes that are substantially co-axial with one another, and the winder unit further comprising drive means configured to selectively drive one of the first and second winder spools, whilst permitting the other of the first and second winder spools to rotate without being driven by the drive means.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) Referring initially to
(9) The unit is similar in certain respects to the winder unit disclosed in WO2006/030212, particularly in that it utilises a pair of spaced suction mounts 52 and also a pair of spaced winder spools 10,11 for winding the cutting filament in the worm either of the cutting wire or the cutting plastics fibre line. The unit also includes rotatable guide pulleys 54 55 56 57 for guiding the cutting filament 100 which are arranged in similar configuration to the arrangement of FIG. 12 in WO2006/030212.
(10) The unit includes further 2 inclined or angled pulleys 61 62 which are provided to guide the filament 100 as it is wound onto and off a respective winder spool 10 11. These pulleys are provided because, contrary to the arrangement of WO2006/030212, the winder spools 10,11 are arranged upright, coaxially with one another and with their rotational axis horizontal (i.e. parallel to the general plane of the glazing panel to which the unit is mounted). This for ergonomic and ease of use reasons, particularly because the winder spools are demountable from their respective drive shafts 16 17 and the arrangement in this configuration makes for easy mounting and de-mounting.
(11) A further departure from the arrangement shown in WO2006/030212 is that a single drive for driving both the winder spools 10 11 is provided. The single drive comprises a socket 64 coupled to a drive shaft 14. In one embodiment a rotary manual handle 68 can be coupled to drive the drive shaft 14 via the socket 64. In an alternative embodiment a powered drive tool can be coupled to the drive socket 64. The transmission system for driving the spools 10 11 will be described in detail below.
(12) As shown in
(13) Importantly the gears 22 23 act to drive the shafts 16 17 through respective one way bearings 12 13. These ensure that torque is only transmitted to the respective drive shafts 16 17 when the respective gear 22 23 is rotated in one direction (opposite rotation directions for each of the gears 22 23). One way bearings are known in the art.
(14) Also mounted to the respective shafts 16 17 are respective adjustable friction brake arrangements 41 42 which are controlled by operating a rotary control annulus 41a 42a which is cam profiled to urge a movable brake disc 25 26 to frictionally engage with fixed washers 27 in order to provide a braking effect. An alternative exemplary arrangement is shown in the schematic embodiment of
(15) In the embodiment of
(16) In use the transmission can be used in 2 modes, these being slip mode (in which the filament 100 is simultaneously wound off one spool as it is wound onto another) and non-slip mode (in which the filament is wound onto one of the spools whilst not being wound off the other). In slip mode the tension can be adjusted using the brake devices.
(17) Non-slip mode is shown in
(18) In the situation of
(19) For counter clockwise winding of the drive shaft 14, the situation is reversed as shown in
(20) This non-slip cutting is achieved when the brakes 41 42 are full applied (or at least sufficiently applied to prevent rotation as a result of tension in the filament).
(21) If the brakes 41 42 are not fully applied, then the slip cutting situation shown in
(22) In the situation of counter clockwise rotation (as shown in
(23) As an alternative to the transmission described, the gear train could be used to drive the shafts simultaneously in opposed directions but this would result in potentially a less versatile means of operation as the alternative modes of cutting would be more difficult to achieve.
(24) The spools 10, 11 are mounted on respective drive shafts in 16 17 in two positions, a driving or engaged position in which they rotate with the driven shaft 16 17 and a neutral position in which they can rotate independently of the main drive shaft 16 17. The spools 10 11 are displaced axially outwardly from the drive position to the neutral position. In the neutral position the spools 10 11 are held to rotate with a rotatable shaft tip 16a 17a which is rotatably fixed to the main shaft 16 17 by a respective axis pin 71. This is shown most clearly and schematically in
(25) The ability to engage neutral position is important to enable filament to be pulled off from the spools once it has already been wound on. This is necessary for example when using the fibre line filament during the set up procedure.
(26) The cut out unit can be used in various techniques and procedures and is particularly versatile in this regard being capable for powered or manual use and also for use with traditional wire or the newer fibre line filament.
(27) It should be noted that the above-mentioned embodiments illustrate rather than limit the invention, and that those skilled in the art will be capable of designing many alternative embodiments without departing from the scope of the invention as defined by the appended claims. In the claims, any reference signs placed in parentheses shall not be construed as limiting the claims. The word “comprising” and “comprises”, and the like, does not exclude the presence of elements or steps other than those listed in any claim or the specification as a whole. In the present specification, “comprises” means “includes or consists of” and “comprising” means “including or consisting of”. The singular reference of an element does not exclude the plural reference of such elements and vice-versa. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.