Rail element for a camera slider rail system
11725678 · 2023-08-15
Assignee
Inventors
Cpc classification
F16M11/425
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B7/0413
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B2/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rail element (10, 33) for a camera slider system or, more generally, a tube joiner for a rail comprised of an expansion device (23, 30), located internally at an open end (12, 32) of a tubular body (11, 33). The expansion device is configured to fit within a male part or joiner element (16, 31) that may be inserted into the end of the tube (10, 33) and can be actuated to an expanded state where it exerts force radially outwards through the joiner (16, 31) to hold it against the open end (12, 32), thereby joining two tubular or rail element ends together.
Claims
1. A rail element for a camera slider system, the rail element comprising: a longitudinal body portion; an expandable joiner element, located at or proximate to at least one end of the longitudinal body portion wherein the expandable joiner element comprises an expansion device, housed within the body portion, configured to exert force outwardly, wherein the expansion device comprises a lever configured to actuate a rod extending longitudinally within the longitudinal body portion.
2. The rail element of claim 1, wherein the at least one end is an open tubular end for receiving the joiner element which extends therefrom for being received by an adjacent open tubular end of another rail element.
3. The rail element of claim 1, wherein the joiner element extends from the at least one end for being received by an adjacent open tubular end of another rail element.
4. The rail element of claim 1, wherein the joiner element is a cylindrical length or insert.
5. The rail element of claim 1, wherein the joiner element comprises a split in a sidewall thereof.
6. The rail element of claim 5, including a pin or lug protruding internally from the longitudinal body portion, to be accommodated by the split of the joiner element.
7. The rail element of claim 1, wherein an external wall of the joiner element is corrugated and/or generally includes a plurality of longitudinal channels or features.
8. The rail element of claim 1, wherein the rod extends through at least one resilient element and includes a widened head at a terminal end thereof.
9. The rail element of claim 8, wherein the lever is mounted from a block element, housed within the body portion, with a bore therethrough housing the rod.
10. The rail element of claim 9, wherein the lever is configured to cause the rod to move in a direction away from the at least one end of the longitudinal body portion, thereby compressing the resilient element between the widened head and a wall of the block element, causing radial expansion against the joiner element.
11. The rail element of claim 8, wherein there are at least two resilient elements, spaced apart by a non-resilient element.
12. The rail element of claim 11, wherein the non-resilient element has a diameter approximately the same as the resilient elements or at least slightly less than any tubular member into which the non-resilient element is to be inserted.
13. The rail element of claim 1, wherein the lever is accessible at, through or both at and through an outer wall of the body portion.
14. The rail element of claim 13, wherein the lever is configured to travel between an upstanding position, where the expansion device is in an inactivated state, to a position substantially flush with the outer wall of the body portion, where the expansion device is in an activated state.
15. The rail element of claim 1, wherein the expansion device is configured to exert an axial force as well as the outwardly exerted force.
16. The rail element of claim 15, wherein the axial force is a pull force for pulling two adjacent rail elements together.
17. A rail system for a camera slider, incorporating at least one rail element according to claim 1.
18. A tube joiner for joining ends of two tubes, the tube joiner being comprised of: an expansion device to be housed internally and proximate to an end of at least one of the tubes, the expansion device having a first, unexpanded, state configured to fit within a male part extending between the two tubes to be joined, and a second, expanded, state when the expansion device is configured to exert force internally against the male part to hold the expansion device against a female part that receives the male part, wherein the expansion device includes a rod and a lever for actuating the rod which extends longitudinally within the tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Aspects of the invention will become apparent from the following description which is given by way of example only and with reference to the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(10)
(11) The longitudinal body 11 includes an open end 12 exhibiting that the rail element is generally of a hollow tubular construction. A side opening 13 provides internal access to the body portion 11 and, particularly, access to a lever 14, shown (in
(12)
(13) In the illustrated embodiment a pin 18 extends through the cylindrical wall of body portion 11 to protrude internally. Pin 18 limits any compression closure of joiner element 16 by virtue of split/slot 17 and also enables alignment by centring the joiner element concentric with the tubular wall of rail element 10. It will also be apparent that pin 18 prevents twisting of joiner element 16 to improve coupling. Pin 18 may be omitted in alternative embodiments.
(14) In addition to side split 17, joiner element 16 also includes a corrugated surface, generally having a plurality of raised features that will engage and grip against an inner wall of the tubular body portion 11. The corrugation allows the joiner to flex, as if using a softer material. A corrugation or other surface features incorporated with the joiner may be omitted in alternative embodiments.
(15) Joiner element 16 maybe made from aluminium or plastic so as to have a relative softness compared to the rail body portion (typically constructed of a harder metal, composite and/or polymer material such as titanium, carbon fibre, aluminium and/or fibre-reinforced plastic).
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(19) Rod 19 extends through lever mount block 15 and is arranged for sliding movement along the longitudinal axis A of the rail element 10.
(20) Block 15 is formed of a substantially rigid/non-resilient material which securely mounts lever 14 and provides a restricted coaxial path of movement for rod 19 therethrough. An end face 22 of block 15 provides a wall that defines a cavity formed by open end 12 of the tubular body portion 11. Wall 22 is static such that at least one resilient element 23 threaded onto rod 19 is able to be pressed and deformed against its surface.
(21) In the illustrated form three resilient elements 23 are threaded upon rod 19, separated by a non-resilient cylindrical block 24 which provides a further hard surface against which resilient elements 23 can deform.
(22) As shown by the engaged state of
(23) Particularly, when a like joining mechanism (e.g. lever 14, block 15 and rod 19) is implemented in an adjacent rail element receiving the exposed end of joiner element 16, the outer rims of open end 12 of adjacent rail elements are abutted and pulled towards one another, thereby minimising any gap/seam between rail elements 10. In other words, another female tube is attached to the joiner in the same way from the opposite end.
(24) It will be apparent that two of the resilient elements 23 are grouped close to the rod head 21 and a third resilient element 23 is located against the end face 22 of block 15. The resilient elements 23 are spaced apart (e.g. by block 24) so as to improve the overall capture of joiner insert 16 and the bending moment reaction to external forces subjected to the assembled rail. Furthermore, block 24 is sized to fit snugly within joiner 16 along with the resilient elements 23 so that any bending proximate the join is minimised by the solid body packed into the tubular cavity. An alternative configuration may feature an elongate expansion device, that packs a substantive extent of the tubular cavity into which it is inserted.
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(26) A contoured rubber strip (not shown) may be optionally adhered to the contact area of rail element 10 with respect to slider carriage S to improve grip and drive of the slider S.
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(28) It is noteworthy that the illustrated form of rail element from
(29) Where in the foregoing description reference has been made to elements or integers having known equivalents, then such equivalents are included as if they were individually set forth. Although the invention has been described by way of example and with reference to particular embodiments, it is to be understood that modifications and/or improvements may be made without departing from the scope of the invention.
(30) The invention has been described with reference to a rail element in a camera slider system, however, it will be apparent that the joining mechanism may be more widely applicable to the joining of tubular members in any field either related to camera equipment or not. For example,
(31) A radial expansion device is generally encircled by a dotted line box 30. The mechanism of operation of the illustrated expansion device is the same as described previously, i.e. actuation of a rod 19 in a direction P that squeezes resilient members 23 against harder surfaces 22 and 24 in order to radially expand against a joiner element 31. However, alternative means of expanding outwardly to engage a surface will be possible.
(32) In the embodiment of
(33) Male joiner element 31 may have a longitudinal sidewall split to accommodate expansion or be formed of suitable materials as necessary.
(34) An alternative form of