The present invention relates, generally, to equipment for practising underwater diving.
It relates, in particular, to a ballast for underwater diving belts.
A ballast is a heavy body which is used to ballast/load an element, this with the aim, in particular, of increasing the mass thereof.
In underwater diving, ballasts are used by divers to immerse themselves correctly.
This ballast is, for example, produced by means of a underwater diving belt, also commonly designated “lead belt” or “ballast belt”.
Such a belt conventionally comprises a belt strip which is held around the waist of the diver by a quick fixing system. To ensure the ballast, ballasts are distributed over the length of this belt strip.
The ballasts in question can consist of a part made of raw lead. But, these ballasts, which are standard, are not very successful and fragile.
The ballasts can also consist of a part comprising a metal core (made of lead, for example) which is covered by a coating, generally a plastic coating.
The coating is generally deposited by immersing the metal core in the coating material which is in liquid form; this material is then frozen around the metal core to form the coating.
These “coated” ballasts are more respectful of the environment and more resistant.
But, such a coating technique requires a lot of handlings of heavy products; the method implemented takes time and it is relatively expensive.
In addition, the coating obtained generally comprises a solid colour, with reduced possibilities of aesthetic choice and personalisation; it gives no choice either to the surface condition.
Furthermore, the close assembly between the metal core and the coating complicates and limits the recycling possibilities of such “coated” ballasts.
Consequently, it would be useful to be able to have ballasts which have a greater aesthetic variety, but also to facilitate the placement of the coating on the metal core.
In order to overcome the abovementioned disadvantage of the state of the art, the present invention proposes a new ballast structure for a underwater diving belt.
This ballast comprises—a metal core covered with a coating, and—means for the assembly thereof with a belt strip;
and it is characterised by the fact that said coating is in the form of an add-on shell consisting of at least one shell part made of a plastic material and which is held around said metal core by fastening means.
According to a useful embodiment, the metal core has an outer surface which comprises:
said coating being in the form of an add-on shell consisting of the assembly of at least two shell parts which are made of a plastic material and which are held around said metal core by fastening means.
Other non-limiting and advantageous characteristics of the ballast according to the invention, taken individually or according to any technically possible combinations, are as follows:
The present invention also relates to a underwater diving belt, comprising a belt strip on which ballasts are added, such as defined above.
The present invention also relates to a method for producing such a ballast.
This method comprises:—a step of providing the metal core and the shell part(s), and—a step of fastening the shell part(s) with the metal core and/or one with the other for the holding thereof around said metal core.
Preferably, the step of providing the shell part(s) comprises an operation for producing said shell part(s) by injection moulding.
The following description regarding the appended drawings given as non-limiting examples, will make it best understood, what the invention consists of, and how it can be achieved.
In the appended drawings:
The underwater diving belt 1, represented in
This diving belt 1, also commonly designated “lead belt”, consists of a ballast which will make it possible for the diver to be immersed correctly and without difficult in the water environment.
For this, the diving belt 1 comprises:—a belt strip 2, and—several ballasts 3, also commonly designated “lead”.
The diving belt 2 can be made of different materials, for example, polypropylene (nylon type), rubber, etc.
This diving belt 2 is equipped with closing means (not represented), conventional in itself, for example a plastic loop or a metal loop.
The ballasts 3 are added-on and distributed over the length of the belt strip 2.
One of these ballasts 3 is illustrated generally, and schematically, in
Such as illustrated in
Metal Core
The metal core 4 is advantageously made of one single piece, typically made of lead.
This metal core has, for example, a weight of between 500 g and 2 kg.
This metal core 4 has an outer surface 41, of general parallelepiped shape, which comprises:
The metal core 4 comprises a general median plane 4′, extending parallel to and at equal distance from the two front faces 411, 412.
Each front face 411, 412 comprises juxtaposed portions:
Each through slot 414 has an extended shape, with a horizontal section (parallel to the general median plane 4′) which is of general rectangular shape.
Coating
The coating 5 is in the form of a shell constituted by the assembly of shell parts 6, 7 which are held around the metal core 4 by fastening means 8.
The shell parts 6, 7, represented individually in
Such as illustrated by
In this case, each shell part 6, 7 comprises two opposite surfaces:
The outer surface 62, 72 of the shell parts 6, 7 advantageously comprises an aesthetic aspect or a decoration, for example a camouflage pattern, which makes it possible to adjust, as desired, the appearance of the ballast 3.
The two surfaces 61, 62 and 71, 72 of a shell part 6, 7 here extend parallel, or at least approximately parallel, with respect to one another.
These two surfaces 61, 62 and 71, 72 define the thickness of the shell part 6, 7. This thickness is, for example, of between 0.1 and 3 mm.
Each shell part 6, 7 comprises several portions:
The main wall 63, 73 of each shell part 6, 7 comprises:
The peripheral sleeves 64, 74 and the central sleeves 65, 75 each comprise a free edge 641, 741, 651, 751, respectively.
These different free edges 641, 741, 651, 751 are intended here to extend parallel to the general median plane 4′ of the metal core 4, even at the level of this general median plane 4′.
The main wall 63, 73 of each shell part 6, 7 also comprises a central portion 635, 735 arranged between the two openings 632, 732, themselves arranged between two side portions 636, 736.
At the level of each main wall 63, 73, the central portion 635, 735 is offset in height with respect to the juxtaposed side portions 636, 736.
By “offset in height”, this also means an offsetting between, on the one hand, the plane passing through the central portion 635, 735 and, on the other hand, the plane passing through the side portions 636, 736.
This offset in height corresponds advantageously, approximately, to the thickness of the belt strip 2, intended to be thread through the ballast 3, to optimise the positioning thereof on the diver, and such that the belt strip 2 extends into the thickness of the ballast 3.
In this case, the ballast 3 comprises:
In other words, a “removed” portion is located at a reduced distance from the general median plane 4′, with respect to at least one juxtaposed portion.
Fastening Means
The two shell parts 6, 7 are held around the metal core 4 by fastening means 8.
For this, the fastening means 8 are advantageously selected from among at least one of the following fastening means:
In this case, the fastening means 8 comprise interlocking means arranged at the level of the abovementioned free edges 641, 741, 651, 751.
More specifically, the free edges 641, 651 of one of the shell parts 6 engage by interlocking with the free edges 741, 751 of the other of the shell parts 6, 7.
The free edges 641, 651 of a shell part 6 comprise a dihedral inner cavity 642, 652 (illustrated in detail for a central sleeve 65 in
By “inner cavity”, this means a cavity arranged at the level of the inner surface of the sleeve.
The free edges 741, 751 of the other shell part 7 each comprise a dihedral outer cavity 742, 752 (illustrated in detail for a central sleeve 75 in
By “outer cavity”, this means a cavity arranged at the level of the outer surface of the sleeve.
Each cavity 642, 652, 742, 752 advantageously extends over half of the thickness of the associated sleeve 64, 65, 74, 75.
Moreover, the gluing means consist, for example, of a glue added-on between the inner surface 61, 71 of the shell parts 6, 7 and the outer surface 41 of the metal core 4; complementarily or alternatively, this glue can be deposited at the level of the associated free edges 641, 741 and 651, 751.
This glue is, for example, selected from among plastic material solvents, cyanoacrylates, epoxides, neoprenes, etc.
The thermowelding means consist, for example, of carrying out a thermal welding at the level of the associated free edges 641, 741 and 651, 751 to form a welding line.
This thermowelding is, for example, carried out by means of a high-frequency welding or heating blades.
It can thus be considered, to combine several fastening means, for example, an interlocking of two shell parts 6, 7, associated with a gluing or a high-frequency welding at the level of the interlocking lines.
Method for Producing a Ballast and the Belt
Producing a ballast 3 according to the invention comprises the following steps:
The step of providing the shell parts 6, 7 comprises advantageously a step of producing these shell parts 6, 7 by compression, thermoforming or also preferably by injection moulding.
Each shell part 6, 7 produced thus comprises an aesthetic pattern, or decor, sought.
The fastening step consists, as the case may be, of at least one of the following fastening steps: gluing, interlocking, thermowelding.
In particular, each shell part 6, 7 is added-on, such that the inner surface 61, 71 thereof covers a portion of the metal core 4:
The metal core 4 is thus fully covered by the two shell parts 6, 7, here forming a continuous shell.
Each ballast 3 can then be assembled on the belt strip 2.
For this, a free end of the belt strip 2 is threaded through the through slots 414 covered with the central sleeves 65, 75.
The free end of the belt strip 2 is successively introduced:
The belt strip 2 thus rests on the two side portions 736 removed from the second main wall 73, and on the central portion 635 removed from the first main wall 63.
As a variant, one single shell part prepared in advance can be used to cover a portion (preferably, the main portion) of the metal core 4. The assembly of this shell part (shaped as desired) with the associated metal core can thus be carried out by gluing or by deforming said shell part.
Also, as a variant, means other than through slots can be considered to assemble the shell part(s) with the belt strip (for example, receiving pockets arranged in the belt strip, self-adhesive type fastening systems, etc.). The structure of the metal core and of the shell part(s) will consequently be adapted.
Generally, the ballast 3 according to the invention makes it possible to select the shell parts which are added-on on the metal core, for example, according to the appearance sought by divers.
The ballast 3 according to the invention has the following advantages:
Number | Date | Country | Kind |
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1663563 | Dec 2016 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/084719 | 12/28/2017 | WO | 00 |