Folding wheel chock blocks for industrial and / or commercial vehicles
The folding wheel chock block design addresses the challenges of strength, durability, and size by using a hinged mechanism for compact storage and stability, ensuring mechanical strength and cost-effectiveness without additional connections.
Patent Information
- Application Number
- JP2021013333
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-30
- Filing Date
- 2021-01-29
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2041-01-29
AI Technical Summary
Existing wheel chock blocks for vehicles face challenges in balancing strength, durability, and size, as they are often made of plastic which deteriorates quickly under environmental conditions and are prone to theft, while folding solutions compromise mechanical strength and increase weight and cost.
A folding wheel chock block design with a hinged stop ramp and support wall that rotates between a functional wedge shape and a parallel, compact configuration, using pivot pins for stability without additional mechanical connections, allowing storage inside the vehicle cab.
The design provides a strong, durable, and cost-effective wheel chock block that maintains mechanical integrity while significantly reducing size for cab storage, preventing theft and exposure to elements, thus enhancing longevity and usability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a folding wheel chock block for vehicles, particularly for industrial and commercial vehicles. [Background technology]
[0002] It is known that in the transport sector wheel chock blocks, ie wheel wedges, are frequently used which are installed on the wheels of vehicles and / or trailers to prevent any movement due to the presence of, for example, a slight incline.
[0003] Wheel chock blocks are therefore components subjected to high mechanical stresses, since they must withstand heavy loads of several tons and are usually exposed to the action of the atmospheric elements.
[0004] In practice, the wheel chock blocks are usually not kept in the driver's cab of the vehicle, but on the contrary are installed on the trailer in a substantially vertical position, at least partially housed in a special structure called a wheel chock block rack, which is usually fixed to the frame of the vehicle.
[0005] Therefore, the wheel chock blocks provided in sets for each vehicle must be light and strong. They must be light in weight because they are constantly handled by the driver and therefore must meet economical criteria.
[0006] At the same time, they must be strong since there is a risk of unintentional movement of the vehicle and / or the respective trailer and the risk of any accidental breakage must be avoided even under full load.
[0007] Obviously, the two requirements are diametrically opposed, since the resistance, thickness and connections / walls between the supporting elements need to be limited to reduce weight, while on the other hand they need to be increased to increase strength. Last but not least, the wheel chock block must be affordable.
[0008] Various plastic wheel chock block solutions have been developed through conventional injection molding techniques to achieve the above benefits.
[0009] Thus, a cost-effective and sufficiently lightweight solution is obtained, but often at the expense of mechanical strength and especially durability.
[0010] Indeed, even if, on the one hand, known solutions made of plastic materials meet the type approval standards required for these devices, on the other hand, due to the adverse environmental conditions both for the functioning and storage of the wheel chock blocks, they tend to rapidly lose their mechanical properties and deteriorate earlier than normal.
[0011] Furthermore, there is an undeniable technical problem regarding the overall size of the wheel chock blocks, especially for large diameter wheels, since they are quite large overall and therefore cannot be stored inside the vehicle's cab, but as mentioned are usually installed in a special external wheel chock block rack in the vertical direction.
[0012] External positioning has further disadvantages: on the one hand, the chock blocks are continuously subjected to the action of external atmospheric elements which accelerate their ageing and therefore their associated replacement, and on the other hand, the chock blocks are often stolen (as they are easy to remove).
[0013] Solutions for at least partially folding chock blocks when the chock block is not in use have been made in the prior art to reduce the size of the chock block. Such solutions provide for the presence of a movable part that at least partially folds into the body of the chock block to reduce the overall size in the rest state and to make the shape as flat as possible for the operative configuration of the chock block.
[0014] As mentioned, the wheel chock blocks are highly biased in use, however the presence of movable parts weakens their mechanical strength unless thickening and reinforcements are introduced, which add weight and cost compared to known solutions of the "fixed" or non-folding type, making these known solutions particularly unreliable and not durable.
[0015] Such increased cost and weight is unacceptable in the commercial vehicle equipment arena. Summary of the Invention
[0016] Therefore, a need is felt to overcome the deficiencies and limitations discussed above with reference to the prior art.
[0017] In particular, a need is felt to provide a wheel chock block which is strong, reliable and durable on the one hand, and which, on the other hand, has reduced size so that it can be stored in the driver's cab (when not in use) without increasing cost and weight.
[0018] This requirement is met by the wheel chock block according to claim 1.
[0019] Further features and advantages of the present invention will become better apparent from the following description of preferred embodiments given as non-limiting examples. [Brief explanation of the drawings]
[0020] [Figure 1] 1 shows a schematic perspective front view of a wheel chock block according to an embodiment of the present invention in an open or functional configuration; [Figure 2] 2 shows a schematic rear perspective view of the wheel chock block of FIG. 1 in an open or functional configuration; [Figure 3] 2 shows a schematic perspective front view of the wheel chock block of FIG. 1 in a closed or rest configuration. [Figure 4] 2 shows a schematic perspective rear view of the wheel chock block of FIG. 1 in a closed or rest configuration. [Figure 5]10 shows a schematic perspective front view of a wheel chock block according to a further embodiment of the invention in an open or functional configuration; [Figure 6] 6 shows a schematic rear perspective view of the wheel chock block of FIG. 5 in an open or functional configuration. [Figure 7] 6 shows a schematic perspective front view of the wheel chock block of FIG. 5 in a closed or rest configuration. [Figure 8] 6 shows a schematic perspective rear view of the wheel chock block of FIG. 5 in a closed or rest configuration. [Figure 9] 10 shows a schematic perspective front view of a wheel chock block according to a further embodiment of the invention in an open or functional configuration; [Figure 10] 10 shows a schematic rear perspective view of the wheel chock block of FIG. 9 in an open or functional configuration. [Figure 11] 10 shows a schematic perspective front view of the wheel chock block of FIG. 9 in a closed or rest configuration. [Figure 12] 10 shows a schematic rear perspective view of the wheel chock block of FIG. 9 in a closed or rest configuration. [Figure 13] 10 shows a schematic perspective front view of a wheel chock block according to a further embodiment of the invention in an open or functional configuration; [Figure 14] 14 shows a schematic rear perspective view of the wheel chock block of FIG. 13 in an open or functional configuration. [Figure 15] 14 shows a schematic perspective front view of the wheel chock block of FIG. 13 in a closed or rest configuration. [Figure 16] 14 shows a schematic rear perspective view of the wheel chock block of FIG. 13 in a closed or rest configuration. DETAILED DESCRIPTION OF THE INVENTION
[0021] Elements or parts common to the described embodiments will be designated hereinafter using the same reference numerals.
[0022] With reference to said figure, the numeral 4 indicates diagrammatically and generally a wheel chock block or wedge for a truck or similar commercial and / or industrial vehicle according to the invention.
[0023] The wheel chock block 4 has a front surface 12 shaped to interact with a vehicle wheel and includes a stop ramp 8 extending from a first support base 16 to a first apex 20 .
[0024] The front surface 12 may be flat or may have a concave pattern to facilitate the securing of an associated vehicle wheel placed thereon.
[0025] The wheel chock block 4 further includes a support wall 24 extending from the second support base 28 to a second apex 32 .
[0026] The stop ramp 8 and support wall 24 are hinged by at least one pivot pin 36 at their respective first and second vertices 20, 32 so that they can rotate between an in-use configuration in which the stop ramp 8 and support wall 24 form a wedge or bridge-type structure tapering toward the pivot pin 36, and an in-use or rest configuration in which the stop ramp 8 and support wall 24 are disposed parallel to one another.
[0027] In other words, the stop ramp 8 and the support wall 24 can rotate about the pivot pin to assume two configurations. In the functional or use configuration, the wheel chock block assumes a large configuration in which it is positioned in a "V" or bridge shape with the pivot pin 36 on the side facing the first and second support bases 16, 28 on the ground. In such a configuration, the stop ramp 8 forms an inclined surface that opposes the progression or climbing of the vehicle wheels by taking advantage of the wedge effect. Meanwhile, in the rest configuration, the stop ramp 8 and the support wall 24 can rotate relative to each other and are positioned parallel to each other. Such a configuration is also the smallest in size, allowing the wheel chock block 4 to be stored in a special wheel chock block rack or even inside the vehicle's cab.
[0028] At the second vertex 32, the support wall 24 has a limit stop and at least one abutment 40 shaped to create a support for a corresponding stop 44 of the stop ramp 8 facing the front face 12 of the stop ramp 8 itself. In other words, the stop 44 is located on a rear face 48 of the stop ramp facing the front face 12, which rear face 48 faces directly towards the support face of the wheel chock block 4 or the ground.
[0029] The abutment portion 40 of the support wall 24 is preferably located at an upper end 52 of the support wall 24 opposite the second support base portion 28 .
[0030] The abutment portion 40 and the stopper 44 are opposite in shape to each other, and preferably have flat surfaces that are parallel to each other when in contact with each other.
[0031] The stop ramps 8 and / or support walls 24 are mechanically connected to each other exclusively at the first and second vertices 20, 32, respectively, by the pivot pins 36, and are free from mechanical connection to the sides of the support bases 16, .
[0032] In other words, in use there are no tie rods, foundations or other connecting elements between the stop ramp 8 and the support wall 24 other than the pivot pin 36 .
[0033] An abutment 40 is located below the pivot pin 36 on the side of each support base 16,28.
[0034] The stopper 44 of the stop inclined portion 8 is shaped to lower the thrust force received from the wheels of the second support base portion 28 via the abutment portion 40.
[0035] In other words, a vehicle wheel at the front face 12 of the stop ramp 8 exerts a thrust force that transfers contact between the stopper 44 and the abutment 40. Such contact tends to lower into the second support base 28 and maintain the bridge configuration of the wheel chock block 4. Furthermore, the thrust force of the second support base 28 locks the support wall 24 in place and does not tend to spread against the stop ramp 8.
[0036] The stop ramp 8 is thus fixed in place by the load itself exerted by the wheels of the supported vehicle. This load is transferred to the support wall 24 by virtue of the contact between the stops 44 and the abutments 40. The load thus transferred also strengthens and drives the second support base 28 into the ground by virtue of the respective fixing elements 56. In this way, the respective elements of the wheel stop block 4 are fixed in place and no further mechanical connecting elements (e.g. plates, cables, tie rods, etc.) are required between the stop ramp 8 and the support wall 24 other than the pivot pin 36.
[0037] The second support base 28 is provided with fixing elements 56 for the ground which at least partially protrude from the second support base 28 and facilitate fixing of the support wall 24, and therefore of the wheel chock block 4 itself, to the ground.
[0038] According to one embodiment, the first support base 16 comprises a fixing element 56 for the ground which at least partially protrudes from the first support base 16 and facilitates fixing of the stop ramp 8 to the ground.
[0039] The fixture 56 is integral with the first and second support bases 16, 28, respectively.
[0040] The fasteners 56 are connected to and integrally associated with the first and second support bases 16, 28, respectively. The term "connected" means that the plates or fasteners are, for example, welded, screwed, embedded, riveted to the respective support bases.
[0041] For example, the fasteners 56 are metal material plates. In this way, a material different from that of the stop ramps 8 and the support walls 24 can be used, which is more suitable for the purpose of fixing the respective support bases 16, 28 to the ground.
[0042] According to one embodiment, the stop ramp 8 has a rib structure 60 alternating with recesses 64 along a transverse direction TT parallel to the pivot pin 36 .
[0043] According to one embodiment, the stop ramp 8 comprises at least one reinforcing crossbar 68 arranged parallel to said transverse direction TT which connects said ribs 60 to one another.
[0044] It is also possible to provide reinforcing crossbars 68 that are inclined or oblique to the transverse direction TT.
[0045] According to one embodiment, the support wall 24 has a rib structure 60 alternating with recesses 64 along a transverse direction TT parallel to the pivot pin 36 .
[0046] According to one embodiment, the support wall 24 comprises at least one reinforcing crosspiece 68 arranged parallel to said transverse direction TT which connects said ribs 60 to one another.
[0047] It is also possible to provide reinforcing crossbars 68 that are inclined or oblique to the transverse direction TT.
[0048] According to one embodiment, the ribs 60 and recesses 64 of the stop ramp 8 and support wall 24 are transversely offset from one another so that in the wheel chock block closed configuration 4, in which the stop ramp 8 and support wall 24 are folded parallel to one another, the ribs 60 of the stop ramp 8 can be inserted into the recesses 64 of the support wall 24.
[0049] In other words, in such an embodiment, the ribs 60 of the stop ramp 8 at least partially penetrate the recesses 64 of the support wall, and vice versa. In this way, the stop ramp 8 and the support wall 24 at least partially penetrate each other, making the wheel chock block 4 as compact as possible in the closed configuration.
[0050] According to a possible embodiment, the chock block 4 comprises a tip 72 that acts as a first interface for the motor vehicle wheel. First interface means that it is the first part of the chock block 4 that interacts with the motor vehicle wheel in use. In other words, after placing the chock block 4 near the motor vehicle wheel to be secured, the moving wheel first at least partially crushes said tip 72 before resting firmly against the front face 12 of the stop ramp 8. As soon as the wheel crushes tip 72, the lock is created automatically, and the wheel itself secures the chock block in place on the ground by its own weight, preventing accidental movement and / or closing of the stop ramp itself.
[0051] In particular, the tip 72 is associated with the stop ramp 8 at its first support base 16 and is movable from a deployed or functional configuration in which it projects towards the associated wheel as an extension of the stop ramp on the side facing the support wall 24, to a stored or resting configuration in which it is at least partially folded or aligned with the stop ramp 8 and / or the support wall 24.
[0052] According to a possible embodiment, the tip 72 is an element made of a flexible material and is at least partially foldable around the stop ramp 8 and / or the support wall 24, as shown, for example, in Figures 5-8.
[0053] For example, the tip 72 may be made from a polymer, plastic, or similar material configured to allow bending / curving of the tip.
[0054] The tip 72 can also be made of a rigid or semi-rigid material, such as, for example, plastic and / or metal.
[0055] According to a further possible embodiment (not shown), the tip 72 is at least partially retractable within a relative seat of the stop ramp 8 .
[0056] According to a possible embodiment, the tip 72 is hinged at its first support base 16 to the stop ramp 8 .
[0057] In particular, the tip 72 is hinged to the stop ramp 8 by a second pivot pin 76 parallel to the pivot pin 36 that is configured to allow the tip 72 to be folded onto the stop ramp 8 from the side of the front face 12 of the stop ramp 8 (FIGS. 1-4, 9-16).
[0058] The tip 72 preferably has rib structures 60 alternating with recesses 64 along a transverse direction parallel to the pivot pin 36 .
[0059] The ribs 60 and recesses 64 of the stop ramp 44 and tip 72 are preferably transversely offset from one another so that in the wheel chock block closed configuration 4, where the tip 72 is folded over the stop ramp 8 from the side of the front face 12 of the stop ramp, the ribs 60 of the stop ramp 44 can be inserted into the recesses 64 of the tip 72, and the support wall 24 is preferably folded over the stop ramp 8 from the side of the under or rear face 48 of the stop ramp opposite the front face 12 of the stop ramp.
[0060] According to one embodiment, the support wall 24 at the second apex 32 has a plurality of reinforcing ribs 84 at the pivot axis 36, the reinforcing ribs 84 extending along a prevailing longitudinal direction (LL) parallel to the support wall 24 and perpendicular to the pivot axis 36.
[0061] The material of the above-mentioned wheel chock block 4 may vary. Preferably, but not exclusively, the stop ramp 8 and / or the support wall 24 are made from a plastic material.
[0062] According to a possible embodiment, the stop ramp 8 and the support wall 24 are provided with fastening means 88 comprising at least one peg 92 configured to interact with a respective seat 96 (at least partially counter-shaped relative to the peg 92). Typically, said fastening means 88 are arranged along the ends or side walls 100 of the stop ramp 8 and the support wall 24 so that they align and penetrate one another when the wheel chock block 4 is placed in a closed or resting configuration. Indeed, in such a resting configuration, the respective side walls 100 of the stop ramp 8 and the support wall 24 are aligned with one another in a positive coupling, i.e. so that the peg 92 can be inserted into the respective seat 96. Obviously, one peg 92 and one seat 96 are associated with the stop ramp 8 and the other with the support wall 24, and vice versa. It is sufficient and may even be provided that the fastening means 88 comprises a single pair of peg 92 and seat 96 on a single side wall 100.
[0063] Also, such fixing means 88 can be provided between the tip 72 and the stop ramp 8 .
[0064] By virtue of the fixing means 88, the wheel chock block 4 can be stored without the risk of it accidentally "opening".
[0065] The operation, i.e., opening / closing method, of the wheel chock block according to the present invention will now be described.
[0066] In particular, when not in use, the chock block is stored in a folded configuration, i.e., with the stop ramp 8 and support wall 24 arranged parallel and in contact with each other. The tip, if provided, will then be arranged parallel to the stop ramp.
[0067] In the closed configuration, the wheel chock block 4 therefore assumes a flat, particularly compact configuration and can be stored, for example, inside the driver's cab of a vehicle.
[0068] Generally, in the folded or rest configuration, the wheel chock block 4 has a size equal to about half its size in the use configuration.
[0069] If necessary, the wheel chock block can be opened by placing the stop ramp 8 and the support wall 24 in their functional form, i.e., wedge-shaped, until the abutment 40 of the support wall 24 and the stop 44 of the stop ramp 8 come into contact with each other.
[0070] The wheel stop block 4 is now ready for use. When a vehicle wheel approaches the stop ramp 8, the weight of the wheel itself locks the stop ramp 8 in place (possibly with its own locking element 56).
[0071] At the same time, the weight of the wheel is at least partially unloaded onto the support wall 24 by interaction between the stops 44 of the stopping ramps 8 and the abutments 40 of the support wall 24 .
[0072] In this way, the support wall 24 is then fixed to the ground by virtue of its own fixing elements 56. In this way, there is no possibility of the wheel chock block "opening" under the thrust of the wheels, but on the contrary helps to hold it in the operating position. As can be further seen, this configuration does not require that any further mechanical connecting elements (e.g. plates, cables or tie rods) are needed between the stop ramp 8 and the support wall 24 other than the pivot pin 36.
[0073] Furthermore, as can be seen, as soon as the wheel crushes the tip 72, locking is automatically created, preventing accidental movement and / or closure of the stop ramp 4 itself, since the wheel itself, by its weight, locks the wheel stop block 4 in place on the ground. By virtue of this feature, no intermediate connection is required between the stop ramp 8 and the support wall 24, i.e. no rod or chain is required to prevent the spread or closure of the angle between the stop ramp 8 and the support wall 24.
[0074] As can be seen from the above, the wheel chock block according to the present invention can overcome the drawbacks existing in the prior art.
[0075] In particular, the present invention can provide a wheel chock block that is mechanically strong and durable.
[0076] The wheel chock blocks are not as costly or heavy as comparable "fixed" or non-folding solutions of the prior art, while at the same time being lighter and less expensive than known folding solutions.
[0077] In its folded configuration, the wheel chock block according to the invention has a significantly reduced volume and can therefore be easily stored inside the cab or passenger compartment of a vehicle.
[0078] The wheel chock block of the present invention is also particularly light in weight, taking advantage of the fact that the ground connection element between the ramp (which abuts against the tire) and the back or rear face is completely free from the base.
[0079] The ribbed configuration ensures that the wheel chock block meets the requirements and demands of strength and mechanical resistance.
[0080] The wheel chock block of the present invention, in its closed or folded configuration, has a particularly compact structure and can be easily stored inside the vehicle's cab, thereby preventing the wheel chock block from being exposed to the elements when not in use (extending its practical lifespan) and preventing removal by third parties.
[0081] To meet unforeseen, specific needs, those skilled in the art can make several modifications and variations to all of the above-described wheel chock block solutions that fall within the scope of the invention as defined by the following claims.
Claims
1. A folding wheel chock block (4), a stop ramp (8) having a front face (12) shaped to interact with the wheels of the vehicle and extending from a first support base (16) to a first apex (20); a support wall (24) extending from a second support base (28) to a second apex (32); the stop ramps (8) and the support walls (24) are hinged at their respective first and second vertices (20, 32) by at least one pivot pin (36) so that they can rotate between an in-use configuration in which the stop ramps (8) and the support walls (24) form a wedge or bridge structure tapering towards the pivot pin (36) and an in-use or rest configuration in which the stop ramps (8) and the support walls (24) are disposed parallel to one another; At the second vertex (32), the support wall (24) has at least one abutment (40) shaped to create a support for a corresponding stop (44) of the stop ramp (8) facing the front face (12), which acts as a limit stop; the second support base (28) comprises a ground fixing element (56) that at least partially protrudes from the second support base (28) and facilitates fixing of the support wall (24) to the ground; the wheel chock block has a tip (72) that acts as a first interacting part with the wheel of the vehicle; said tip (72) being associated with said stop ramp (8) at its first support base (16) and movable from a deployed or functional configuration in which it projects towards the associated wheel as an extension of said stop ramp on the side facing said support wall (24) to a stored or resting configuration in which it is at least partially folded or aligned with said stop ramp (8) and / or said support wall (24), In a use configuration, the tip portion (72) and the second support base portion (28) are in contact with the ground, and there is no member in contact with the ground between the stop ramp portion (8) and the support wall (24).
2. 2. The folding wheel chock block (4) according to claim 1, wherein the tip (72) is an element made of a flexible material and is at least partially foldable around the stop ramp (8) and / or the support wall (24).
3. 3. A folding wheel chock block (4) according to claim 1 or 2, wherein the tips (72) are at least partially retractable within the seats of the respective stop ramps (8).
4. 4. A folding wheel chock block (4) according to any one of claims 1 to 3, wherein the tip (72) is hinged at its first support base (16) to the stop ramp (8).
5. 5. The folding wheel chock block (4) of claim 4, wherein the tip (72) is hinged to the stop ramp (8) by a second pivot pin (76) parallel to the pivot pin (36) configured to allow the tip (72) to be folded onto the stop ramp (8) from the side of the front face (12) of the stop ramp (8).
6. 6. A folding wheel chock block (4) according to any one of claims 1 to 5, wherein the stop ramps (8) and / or the support walls (24) are mechanically connected to each other exclusively at the respective first and second vertices (20, 32) by the pivot pins (36) and are free from mechanical connection to the sides of the support base (16, 28).
7. a stopper (40) of the support wall (24) is disposed at an upper end (52) of the support wall (24) facing the second support base portion (28); 7. The folding wheel chock block (4) according to any one of claims 1 to 6, wherein the stopper (40) and the stopper (44) are shaped inversely to each other.
8. 8. The folding wheel chock block (4) according to any one of claims 1 to 7, wherein the abutment (40) is arranged below the pivot pin (36) on the side of each of the support bases (16, 28).
9. 9. A folding wheel chock block (4) according to any one of claims 1 to 8, wherein the stopper (44) of the stop ramp (8) is shaped to absorb thrust received from the wheels of the second support base part (28) via the abutment part (40).
10. 10. The folding wheel chock block (4) according to any one of claims 1 to 9, wherein the stop ramp (8) and / or the support wall (24) have a rib structure (60) alternating with recesses (64) along a transverse direction (T-T) parallel to the pivot pin (36).
11. 11. The folding wheel chock block (4) of claim 10, wherein the ribs (60) and recesses (64) of the stop ramp (8) and the support wall (24) are transversely offset from one another so that in a wheel chock block closed configuration (4) in which the stop ramp (8) and the support wall (24) are folded parallel to one another, the ribs (60) of the stop ramp (8) can be inserted into the recesses (64) of the support wall (24), or vice versa.
12. said tip (72) having a rib structure (60) alternating with recesses (64) along a transverse direction (TT) parallel to said pivot pin (36); the ribs (60) and recesses (64) of the stop ramp (44) and tip (72) are transversely offset from one another so that in a wheel chock block closed configuration (4) in which the tip (72) is folded onto the stop ramp (8) from the side of the front face (12) of the stop ramp (8), the ribs (60) of the stop ramp (44) can be inserted into the recesses (64) of the tip (72); 12. A folding wheel chock block (4) according to claim 10 or 11, wherein the support wall (24) is folded onto the stop ramp (8) from the side of the lower or rear face (48) of the stop ramp (8) opposite the front face (12) of the stop ramp (8).
13. the support wall (24) at the second apex (32) has a plurality of reinforcing ribs (84) at the pivot pin (36); 13. The folding wheel chock block (4) according to any one of claims 1 to 12, wherein the reinforcing ribs (84) extend along a prevailing longitudinal direction (LL) parallel to the support wall (24) and perpendicular to the pivot pin (36).
14. said stop ramp (8) and said support wall (24) are provided with fixing means (88) comprising at least one peg (92) configured to interact with a respective seat (96); 14. A folding wheel chock block (4) according to any one of claims 1 to 13, wherein the fixing means (88) are arranged along the ends or side walls (100) of the stop ramps (8) and the support walls (24) so as to align and interpenetrate with each other when the wheel chock block (4) is arranged in a closed or rest configuration.
15. said stop ramp (8) and said tip (72) are provided with fixing means (88) comprising at least one peg (92) configured to interact with a respective seat (96); 15. A folding wheel chock block (4) according to any one of claims 1 to 14, wherein the fixing means (88) are arranged along the ends or side walls (100) of the stop ramps (8) and the tip portions (72) so as to align and interpenetrate with each other when the wheel chock block (4) is arranged in a closed or rest configuration.
Citation Information
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