DEVICE FOR ANCHORING A BEACH PARASOL POLE IN SAND OR IN A SANDY SOIL
20220145659 · 2022-05-12
Inventors
Cpc classification
A45F3/44
HUMAN NECESSITIES
A45B2023/0012
HUMAN NECESSITIES
International classification
Abstract
A device for anchoring a pole for a beach parasol in sand or in sandy soil includes a buriable plate manufactured from a rigid or semi-rigid material, a sleeve intended to receive said pole, the sleeve being associated with said plate by means of a junction zone, the sleeve opening out on both sides. The sleeve includes a tubular inner wall connected to the outer wall by means of radial ribs. The radial ribs extend towards the inside of the tubular inner wall in order to come into contact with the wall constituting the pole. These projecting parts of ribs inside the tubular inner wall first facilitate the insertion of the pole by rotation in the tubular inner wall while flexing the projecting parts of thr ribs, and secondly increase the clamping of the pole in the sleeve through relatively high pressure exerted on the wall of the pole.
Claims
1. A device for anchoring a pole for a beach parasol in the sand or in a sandy soil, the device comprising: a buriable plate manufactured from a flexible or semi-rigid material, a sleeve intended to receive said pole, the sleeve being associated with said plate by means of a junction zone, the sleeve opening out on both sides, wherein the sleeve comprises a tubular inner wall connected to the outer wall by means of radial ribs, said radial ribs being extended towards the inside of the tubular inner wall so as to come into contact with the wall constituting the pole.
2. The anchoring device according to claim 1, wherein a tubular intermediate wall is formed between the outer wall and the tubular inner wall, the tubular intermediate wall being connected to the outer wall and to the tubular inner wall, by means of radial ribs.
3. The anchoring device according to claim 1, wherein the sleeve has in front view an outer wall in the form of a truncated cone and the large base of which forms the junction with the buriable plate.
4. The anchoring device according to claim 1, wherein the openings pass through the buriable plate at the junction zone and in that radial folds delimit, in the buriable plate, facets in the form of angular sectors, from the sleeve as far as the periphery of the buriable plate, at least one radial fold being secant to an opening.
5. The anchoring device according to claim 1, wherein the alveoli are formed on the top face, intended to be turned upwards, of the buriable plate.
6. The anchoring device according to claim 5, wherein the bottom face of the buriable plate has a smooth appearance.
7. The anchoring device according to claim 1, wherein the buriable plate has, when it rests on a flat support, the form of a disc with a diameter of between 20 cm and 40 cm+/−2 cm with a preferential value of 30 cm+/−2 cm.
8. The anchoring device according to claim 1, further comprising a pole for a parasol.
9. The anchoring device according to claim 8, further comprising a parasol mast equipped with a fabric and a mechanism for deploying same.
10. The method for manufacturing an anchoring device claim 1, wherein the anchoring device is manufactured by moulding, the buriable plate and said sleeve forming one and the same object manufactured in a single piece.
11. The method for manufacturing an anchoring device according to claim 10, wherein the material chosen is an elastomer, the hardness of which is between 60 and 90±8 IRHD, the thickness of the buriable plate being between 2 and 10 mm with a preferential value of 3 mm.
Description
[0034] The features of the invention mentioned above, as well as others, will emerge more clearly from the reading of the following description of an example embodiment, said description being made in relation to the accompanying drawings, among which:
[0035]
[0036]
[0037]
[0038]
[0039]
[0040] The anchoring device 100, presented in
[0041] It is composed of a buriable plate Pf, and a sleeve Mn for receiving a pole P for a parasol.
[0042] On
[0043] The planar buriable plate Pf is manufactured from a flexible or preferentially semi-rigid material, manually deformable, but which does not suffer permanent deformation, in the range of normal use.
[0044] The hardness of the elastomer is selected between 60 and 90±8 IRHD. The elastomer is selected in particular from nitrile, EPDM (the abbreviation for ethylene propylene diene monomer), silicone or rubber. The elastomer selected is preferably a regenerated polypropylene.
[0045] A material that is well suited for manufacturing this plate Pf is a flat sheet of elastomer with a thickness of between 2 mm and 10 mm. A value of 3 mm procures correct strength and sufficient rigidity.
[0046] The top face of the buriable plate Pf that is intended to be turned upwards has alveoli V for being able to receive by moulding a plurality of aggregates of sand grains and thus to increase the surface of contact of said plate with the mass of sand situated above it. On the other hand, the bottom face of which is smooth to procure a sucker effect with an underlying damp sand.
[0047] In
[0048] The material forming the buriable plate Pf may incorporate a reinforcement frame T made for example from a plurality of crossed polyester fibres, to increase the resistance to tearing of the buriable plate Pf.
[0049] The sleeve Mn is connected to the buriable plate Pf by means of a zone of a junction Zj.
[0050] The sleeve Mn is erected perpendicular to the top face of the disc D and at the centre thereof. It is intended to receive the part of a beach parasol pole P that is normally intended to be buried in the ground.
[0051] The anchoring device 100 of the invention is manufactured in a plastic-injection mould.
[0052] The sleeve Mn thus forms an integral part of the anchoring device 100, i.e. the buriable plate Pf and said sleeve Mn form one and the same object manufactured in a single piece.
[0053] This embodiment is suitable for mass production.
[0054] The sleeve Mn opens up on both sides. It has in front view an outer wall Tc in the form of a truncated cone Tc, the large base of which forms the junction Zj with the buriable plate Pf in order to procure for it good mechanical strength and to increase the pressure of the sand around the sleeve Mn.
[0055] In
[0056] The tubular inner wall Pt preferentially has a cylindrical shape, as is clear in this
[0057] In the invention, this tubular inner wall Pt is connected to the outer wall Tc by means of a plurality of radial ribs Nv for accepting the deformation of said tubular inner wall.
[0058] Thus the tubular inner wall Pt can increase in size during the insertion of the pole in order to accept poles with various diameters.
[0059] A tubular intermediate wall Pti is formed between the outer wall Tc and the tubular inner wall Pt. This tubular intermediate wall Pti is connected to the outer wall Tc and to the tubular inner wall Pt, by means of the radial ribs Nv. The tubular intermediate wall Pti preferentially has a cylindrical shape, as is clear in this
[0060] Moreover, the radial ribs Nv are extended inside the tubular inner wall Pt and are sized so as to come into contact with the wall of the pole P. These projecting parts of the ribs Nv inside the tubular interior wall Pt firstly facilitate the insertion of the pole by rotation in said tubular inner wall Pt while flexing the projecting parts of said ribs, and secondly increase the clamping of the pole in the sleeve Mn by the relatively high pressure that they exert on the wall of the pole T. To further increase the clamping, the user can turn the pole P in the opposite direction in the tubular internal wall Pt to return the projecting parts of the ribs Nv into a radial plane.
[0061] In the invention, and as is clear on
[0062] On
[0063] Each radial fold Jr is formed by a groove of constant width hollowed out in the thickness of the buriable wall Pf, from the upper face thereof.
[0064] The facets Sa thus articulated can then move in order to match the approximately flat relief of the sand on which said buriable wall is resting.
[0065] Moreover, and because of the presence of the openings Ov, the facets Sa can fold around the sleeve Mn and in line with it in order to form practically an easily transportable cylinder. The anchoring device 100 can be supplied with a link, such as an elastic strap, for keeping said facets folded.
[0066] Because of the presence of the radial folds Jr, the alveoli V are formed solely in the facets Sa. The alveoli are present over at least half of the surface of the facets Sa.
[0067] The operation of the anchoring device 100 is as follows with reference to
[0068] To facilitate the insertion of said end, the pole P can be turned in one direction in the sleeve Mn to curve the projecting parts of the radial ribs Nv. The end of the pole is fitted in so that the tapered end thereof emerges from the sleeve Mn by at least around ten centimetres.
[0069] The adhesion of the projecting parts of the radial ribs Nv on the tube constituting the pole T suffices to hold it since the pressure applied is relatively high. The tubular inner wall Pt and the tubular intermediate wall Pti can expand while longitudinally compressing the ribs Nv to accept a larger pole. In an advantageous manufacturing method, the thicknesses of the tubular inner wall Pt, of the tubular intermediate wall Pti and of the ribs Nv, and the spacing between the tubular inner wall Pt and the tubular intermediate wall Pti, and between this tubular intermediate wall Pti and the outer wall Tc, are calculated so that the sleeve Mn can accommodate and hold a pole T the diameter of which is between 22 and 25 mm.
[0070] The anchoring device 100, equipped with a pole P, is then ready to be used. With reference to
[0071] In practice, it is the deformation of the junction zone Zf that determines the inclination of the pole held in the sleeve Mn.
[0072] The relatively rigid form of the facets Sa remains stable in the sand B by virtue of this flexible junction zone Zj. The form of the buriable plate Pf consequently also remains stable under the force of the inclination of the sleeve Mn through the effect of the wind on the parasol.
[0073] The lateral movement of the buriable plate Pf is practically non-existent because of the relatively large surface of the two faces thereof, top and bottom, in contact with the sand B. The alveoli V present on the top face of the buriable plate Pf and the smooth bottom face in contact with moist sand reinforce this tendency of the disc not to slide laterally. The mass of sand B located above the buriable plate Pf traps it. The buriable plate Pf is as if held in a vice.
[0074] Moreover, during the burying of the buriable plate Pf, sand penetrates the interstices present inside the sleeve Mn. With reference to
[0075] The parasol being open, a component of the force of the wind blowing in the fabric of the parasol acts in the axis of the pole P. This component is indicated by the arrow F2.
[0076] The relatively high pressure exerted by the projecting parts of the ribs Nv on the tubular wall of the pole P associated with the presence of sand in the sleeve Mn helps to hold said pole firmly in the sleeve Mn and thus prevents pulling away thereof.
[0077] A device for anchoring a pole for a beach parasol in the sand as well as such a pole also form part of the invention.
[0078] A device for anchoring a pole for a beach parasol in the sand as well as such a pole and the parasol mast thereof equipped with fabric and a mechanism for deploying same also form part of the invention.
[0079] In a period of non-use, the buriable plate can be redeployed around the pole to facilitate transport thereof.