System for converting a light vehicle into a modular light vehicle and vice versa

A two-part steering pivot system with a locking mechanism facilitates rapid conversion of light vehicles into modular vehicles, ensuring secure attachment and comfort, addressing the inefficiencies of existing systems.

FR3160385A1Pending Publication Date: 2025-09-26GAMBADE
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Patent Information

Application Number
FR2024002736
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-19
Publication Date
2025-09-26

AI Technical Summary

Technical Problem

Existing systems for converting light vehicles, such as bicycles, into modular vehicles like cargo bikes are cumbersome, require tools, take too long to convert, and often compromise steering precision and comfort due to play between the handlebar and front wheel.

Method used

A two-part steering pivot system with integrated locking mechanism allows rapid attachment of a front module to a rear structure without tools, ensuring secure connection and maintaining steering precision, suitable for frequent conversions.

Benefits of technology

Enables quick conversion of a light vehicle into a modular vehicle in under a minute, maintaining steering precision and comfort, adaptable to existing structures with minimal modification, and supporting various load capacities.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a system for converting a light vehicle into a modular light vehicle and vice versa, said light vehicle comprising a rear structure and a front module connected to said rear structure by means of a steering pivot, on which a handlebar stem (110) (100) is fixed, said conversion system being characterized in that said steering pivot is in two parts, a first part forming a female junction (1000) and a second part forming a male junction (2000), each of said female (1000) and male (2000) junctions being integral with said rear structure or said front module, said male junction (2000) being inserted into said female junction (1000) and in that a locking mechanism (1300), integrated in one of said female (1000) or male (2000) junctions, makes it possible to keep said male junction (2000) integral with said female junction (1000). Figure for abstract: Fig.1
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Description

Title of the invention: System for converting a light vehicle into a modular light vehicle and vice versa

[0001] The present invention relates to a system for converting a light vehicle into a modular light vehicle and vice versa. By light vehicle, we essentially mean vehicles of the bicycle or tricycle type for example. By modular light vehicle, we mean vehicles capable of accommodating a front module. This front module can be for example a simple wheel with its steering fork, in which case the vehicle is a bicycle type vehicle, or a cargo type module comprising a structure allowing the vehicle to be extended, capable of accommodating a platform or a box to allow the transport of loads or people, and comprising one or more offset wheels, in which case the vehicle is of the cargo bike type.

[0002] There are various solutions on the market for converting bicycles into cargo bikes. For example, the system called "quick Fix" marketed under the trademark "Add-Bike" consists of connecting a frame mounted on two side wheels to the front fork of a bicycle from which the front wheel has been previously removed. This system requires the use of tools to remove the front wheel and then fix the frame. Fixing also requires a certain number of steps which lengthen the conversion time. Since such a system does not allow the bicycle to be converted quickly, it is therefore not intended for daily conversion according to the needs of its user. In addition, the maximum weight of the authorized load is thirty-five kilograms, whereas conventional cargo bikes allow loads of up to approximately eighty kilograms, or even up to three hundred kilograms for some.The chassis is therefore not designed to support heavy and / or bulky loads.

[0003] There are also bicycles marketed under the trademark "Convercycle Bikes", which can be folded into compact mode and unfolded into cargo mode. For this, the rear wheel is movable between a folded position in the rear structure of the bicycle and an unfolded position located behind the rear structure of the bicycle and leaving a free space in the rear structure of the bicycle to accommodate loads to be transported. Weighing more than twenty kilograms, this bicycle remains however very heavy to handle, even in the compact version and is therefore not suitable for journeys of several kilometers, even when it is equipped with electric assistance.

[0004] Bicycles marketed under the trademark “Hase Bikes” include a telescopic frame, located on the front of the frame, allowing the length to be extended of the frame and move the front wheel towards the front of the bike, so as to free up space at the front of the bike to be able to attach a transport platform above the front wheel. This type of bike with a telescopic frame does not, however, allow you to transport just any load, especially children, due to the position of the platform above the front wheel, which causes instability of the load.

[0005] The bicycles marketed by the American company "Argo Bikes", for their part, allow a bicycle to be modified into a cargo bicycle by connecting the front fork of the bicycle to a platform connected to a steering rod of the offset wheel of the cargo module. The frame of the cargo module is furthermore fixed to the frame of the bicycle at the bottom bracket and by connecting the brakes of the cargo module to the handlebars of the bicycle. This modification, however, requires the use of tools and is quite long to carry out since it requires between five and ten minutes, which is off-putting for daily use. In addition, the attachment point of the cargo module at the bottom bracket of the bicycle requires a significant transformation of said box, so that the conversion system cannot be easily adapted to existing electric bicycles.

[0006] Patent applications WO2018035512 and WO2019014506 describe bicycle-to-cargo bike conversion systems similar to those just described and marketed by the company Argo Bikes. Their main drawback is that the conversion takes too long to complete, making them unsuitable for everyday use.

[0007] Patent application WO2023186599 describes a light vehicle that can be dismantled into two parts, comprising a front structure, including a front wheel, a front fork and a handlebar stem, and a rear structure supporting the rear wheel and the crankset. The handlebar of this light vehicle is also dismantled into two parts, one part being integral with the rear structure and comprising a control for a gear selector and a control for a rear braking system and the second part being integral with the front structure of the vehicle and comprising a control for a front braking system. The solution described in this patent application involves a transformation of the bicycle frame, so that it cannot be adapted to a conventional bicycle frame. In addition, in addition to the bicycle frame, this solution requires modifying other parts such as the brake lever, the headsets, or even the handlebars, which involves a very high manufacturing cost..

[0008] US patent 10,450,029 B2 describes a hooking mechanism for changing the front fork on a bicycle very quickly, without using tools. This mechanism is added to the bicycle frame and is connected to the stem of a handlebar. It allows the connection of a pivot of a front fork to the stem of the handlebar. For this, an annular groove is provided at the end of the pivot of fork and when the fork steerer is inserted through the head tube, the user actuates a latch of the attachment mechanism which engages in the annular groove of the fork steerer to secure said fork steerer. The attachment mechanism described in this patent is added to the frame of the bicycle, above the head tube. In addition to the fact that this addition to the frame is not very aesthetic, its thickness results in a raised handlebar which can be annoying for a user and reduce riding comfort. In addition, the insertion, or removal, of the male imprint of the fork steerer into the female imprint of the attachment mechanism is very difficult without providing clearance between the two imprints. Consequently, without clearance between the two imprints, the assembly or disassembly of the fork steerer requires the use of a mallet and does not facilitate repeated daily conversions.To facilitate the insertion of the male imprint of the fork pivot into a female imprint of the attachment mechanism, it appears necessary to provide a clearance between the two imprints. However, the existence of such a clearance can cause the appearance of a clearance between the fork pivot and the handlebar stem. Such a clearance has an impact on the drive of the front wheel by the handlebar and on the steering precision, which is detrimental and greatly reduces the riding comfort.

[0009] The existing solutions on the market for converting a light vehicle, such as a bicycle, into a modular light vehicle, such as a cargo bike and vice versa, are not entirely satisfactory because they generally require too many steps and are therefore too long to implement for multi-day use. In addition, most of them require the use of tools, which is not acceptable when one wishes to very quickly interchange the front modules of the light vehicle depending on the use one wishes to make of it at the time one wants to use it. Finally, certain solutions may either involve very difficult insertion or removal of the fork pivot, or require the appearance of play in the steering between the handlebar and the front wheel, which affects the steering precision and harms the driving comfort.

[0010] The invention therefore aims to remedy at least one of the drawbacks of the prior art. The invention aims in particular to design a system for converting a light vehicle into a modular light vehicle and vice versa, said light vehicle comprising a rear structure and a front module capable of being connected to said rear structure, said conversion system not requiring the use of any tools and allowing rapid attachment, preferably less than one minute, of the front module to the rear structure, so that it is possible to convert the light vehicle as often as necessary, depending on the multi-daily uses that the user wishes to make of it in order to adapt the loading capacity and the size of the vehicle to his daily needs. The conversion system must be as simple as possible to be able to adapt to existing structures and require minimal modification of parts. The conversion system must also allow good support of the front module and avoid the appearance of play in the steering between the handlebars and the front wheel, to allow for smooth and comfortable driving. Finally, the modular vehicle must remain lightweight to be easily maneuverable and to be able to be used for several kilometers without fatigue.

[0011] To this end, the invention relates to a system for converting a light vehicle into a modular light vehicle and vice versa, said light vehicle comprising a rear structure and a front module connected to said rear structure by means of a steering pivot, said rear structure comprising a frame supporting at least one rear wheel, a handlebar and a steering socket, secured to said frame and crossed by said steering pivot on which a stem of said handlebar is fixed, said steering pivot being connected to said steering socket by a pivot connection provided by an upper headset bearing and a lower headset bearing, said conversion system being characterized in that said steering pivot is in two parts, a first part forming a female junction and a second part forming a male junction,each of said female and male junctions being integral with said handlebar stem of said rear structure or said front module, said male junction being inserted into said female junction and in that a locking mechanism, integrated into one of said female or male junctions, makes it possible to keep said male junction integral with said female junction.

[0012] Thus, the steering pivot, traditionally fixed to the fork of a bicycle front wheel and to the handlebar stem, is replaced by a steering pivot separable in two parts, comprising a female junction and a male junction intended to cooperate with each other and to be held fixedly to each other by means of an integrated locking mechanism. The conversion system therefore allows a simple conversion of the vehicle by a simple insertion of the male junction into the female junction, each of said junctions being integral with the handlebar stem of the rear structure or the front module. The conversion is carried out without tools and in a very rapid time, generally less than one minute and preferably between thirty seconds and one minute.Such a system therefore makes it possible to convert the light vehicle, such as a bicycle, into a modular vehicle, such as a cargo bike, and vice versa, without constraints and several times a day depending on loading and space requirements. The frame of the rear structure of the bicycle does not need to be modified, so the conversion system can be adapted to existing bicycle frames. To do this, it is sufficient to replace the fork pivot of a conventional bicycle with the steering pivot of the conversion system, one part of which is secured to the handlebar stem of the rear structure and the other part of which is secured to the front module.

[0013] According to other optional features of the conversion system:

[0014] said first part forming a female junction is integral with said handlebar stem of said rear structure of said vehicle and comprises a steering tube, passing through said steering socket and on which said stem of said handlebar is fixed and, fixed inside said steering tube, a sheath, one open end of which forms an orifice of said female junction through which said male junction is inserted, said sheath having, on the periphery of said orifice, a conical bearing surface and, opposite said conical bearing surface, an end in which said locking mechanism is fixed and in that said second part forming a male junction is integral with said front module and comprises in an end surface, oriented opposite said end of said sheath, an opening orifice capable of receiving said locking mechanism and has, opposite said end surface, a conical surface,intended to be pressed against said conical bearing surface of said sheath by actuation of said locking mechanism;

[0015] said first part forming a female junction is integral with said handlebar stem of said rear structure of said vehicle and comprises a steering tube, passing through said steering socket and on which said stem of said handlebar is fixed and, fixed inside said steering tube, a sheath, one open end of which forms an orifice of said female junction through which said male junction is inserted, said sheath having, on the periphery of said orifice, a conical bearing surface and, opposite said conical bearing surface, an end in which is made an opening opening above which is arranged said locking mechanism and in that said second part forming a male junction is integral with said front module and comprises a male end, capable of passing through said opening opening of said sheath and of being inserted into said locking mechanism, and has, opposite said male end, a conical surface,intended to be pressed against said conical bearing surface of said sheath by actuation of said locking mechanism;

[0016] said end of said sheath has a bore against which a cylindrical bearing surface of said male junction is pressed, when the locking mechanism is actuated;

[0017] the locking mechanism is selected from a ball pin or a stop pin or a locking lever or a ball joint and comprises an actuating mechanism accessible from the top of the steering tube;

[0018] the locking mechanism is a ball pin, the locking balls of which, in the locking position, press against an internal end face of said male junction, so that they hold by friction said conical surface of said male junction against said conical bearing surface of said female junction;

[0019] a negative clearance, between zero millimeters and a value equal to the radius of the balls ball pin locking, is provided between the outlet orifice of the ball pin locking balls and said internal end face of said male junction;

[0020] the locking mechanism is a ball pin and through holes are provided in the annular wall of said male junction, opposite the outlet orifices of the locking balls of said ball pin, to accommodate said locking balls in the locking position, so that they block the rotation of the two male and female junctions relative to each other and keep said conical surface of said male junction in abutment against said conical bearing surface of said female junction;

[0021] said through holes are substantially offset downwards relative to the outlet orifices of said locking balls of said ball spindle, by a value between zero millimeters and a value equal to the radius of said locking balls;

[0022] the locking mechanism is a ball connection arranged above the through hole made at the end of the sheath and in the locking position, the balls of said ball connection are positioned in blind holes made in the external annular wall of said male end of said male junction;

[0023] the front module is a front bicycle wheel, the fork of which is integral with said male junction, or a cargo module comprising at least one offset wheel and a rotation transmission system of which is integral with said male junction;

[0024] when the front module is a cargo module and the frame of said rear structure comprises a pedal assembly, said conversion system further comprises a system for fixing a frame of the cargo module to the frame of said rear structure of the modular light vehicle, said fixing system connecting a first point of said frame of said rear structure, located between the pedal assembly and the steering socket, to a second point of said frame of the cargo module located opposite said first point.

[0025] Other features and advantages of the invention will appear on reading the description given by way of illustrative and non-limiting example, with reference to the appended Figures which represent:

[0026] [Fig.l], a sectional view of a conversion system according to the invention, in the locked position,

[0027] [Fig.2], another sectional view of the conversion system of [Fig.l], rotated 90° along the axis of rotation AA relative to [Fig.l] and in the locked position,

[0028] [Fig.3], a sectional view of a detail of a locking mechanism in operation according to a particular embodiment,

[0029] [Fig.4], a diagram of a rear structure of a light vehicle connected to a module before appearing in the form of a cargo module,

[0030] [Fig.5], a sectional view of a system for fixing the frame of a front cargo module on the frame of the rear structure of a light vehicle.

[0031] The term "rear structure" of a light vehicle means a structure comprising a frame supporting at least one wheel and a handlebar, the handlebar being formed of a stem and a handlebar. The frame may also support a pedal set. This rear structure may also be equipped with electric assistance.

[0032] The term "front module" of a light vehicle means a structure comprising at least one front wheel and intended to be connected to the rear structure of a light vehicle. This may be a simple wheel with its steering fork, in which case the light vehicle is a bicycle-type vehicle, or a cargo-type module comprising an elongated frame capable of receiving a platform or a box to allow the transport of loads or people and comprising one or more offset wheels. More generally, it may be any other type of module connectable to the rear structure of a light vehicle.

[0033] The term "steering socket" means a tube, integral with the frame of the rear structure of the vehicle, through which a steering pivot is inserted intended to connect the handlebar of the vehicle to the steering of the front module so that the rotation of the handlebar causes the rotation of the wheel(s) of the front module. The handlebar comprises a stem which is fixed, from above, to the steering pivot.

[0034] The term "top" or "above" of a part of a light vehicle means the upper part of a part, when it is mounted on said light vehicle, the upper part being oriented towards the handlebars and the lower part being oriented towards the ground.

[0035] [Fig. 1] represents a sectional view of a conversion system according to the invention. This conversion system comprises a steering pivot separable into two parts, comprising a female junction 1000 and a male junction 2000 intended to cooperate with each other and to be held fixedly to each other by means of an integrated locking mechanism 1300. [Fig. 1] represents this steering pivot in the locked position. [Fig. 2] represents another sectional view, rotated 90° along the axis of rotation AA relative to the sectional view of [Fig. 1], of this steering pivot in the locked position. The term “axis of rotation AA” means the axis of revolution of the steering pivot, around which said steering pivot is rotated by the stem 110 of the handlebar 100. The same references are used in figures 1 and 2 to designate the same elements and the two figures are described simultaneously for reasons of simplification of the explanations.

[0036] Advantageously, the female junction 1000 is secured to the handlebar stem 110 100 of the rear structure of the vehicle while the male junction 2000 is secured to the front module.

[0037] The female junction 1000 of the steering pivot comprises a steering tube 1100 passing through the steering socket 200, which is secured to the frame of the rear structure of the light vehicle.

[0038] The steering tube 1100 and the steering socket 200 are connected by a pivot connection provided by an upper headset bearing 210 and a lower headset bearing 220, arranged respectively at the upper end and at the lower end of the steering socket 200. Conventionally, a headset comprises a ball bearing sandwiched between a cup, a seal and a conical ring. The cups are however not necessary when the headset is integrated into the steering socket 200 as shown in Figures 1 and 2. The bearings of the upper 210 and lower 220 headsets therefore make it possible to make the junction between the steering socket 200, secured to the frame of the rear structure of the vehicle, and the steering pivot. They also ensure the rotation of this steering pivot in order to allow the user to steer the vehicle by turning the handlebars.A cover 211 is provided on top of the upper headset bearing 210 to prevent any entry of water or dust.

[0039] The handlebar 100 of the vehicle comprises on the one hand a handlebar 120, intended to be held in the hand and on which are provided in particular levers for controlling braking systems and possibly gear changes and on the other hand, a stem 110 intended to be fixed on said steering tube 1100, so that it encloses said steering tube 1100 and rests above the cover 211 of the upper headset bearing 210.

[0040] A spacer 250 can be placed between the cover 211 of the bearing of the upper headset 210 and the bottom of the stem 110 of the handlebar. Such a spacer 250 makes it possible to adjust the height of the stem 110 and therefore of the handlebar 100. Generally, a set of spacers whose height varies between one millimeter and thirty millimeters for example, is delivered to the store. It is then at the time of the final assembly of the vehicle, by the store employees, that the choice of the height of the spacer is conventionally made.

[0041] Inside the steering tube 1100 is fixed a sheath 1200, one open end of which forms the orifice 1211 of said female junction 1000 through which said male junction 2000 is inserted. The sheath 1200 has, on the periphery of said orifice 1211, a conical bearing surface 1210. A locking mechanism 1300 is further fixed in a through orifice 1231 formed in one end 1230 of the sheath 1200, opposite said conical bearing surface 1210. This locking mechanism 1300 can be fixed by welding, by screwing or by means of a pin 1312 or by any other known means. This locking mechanism 1300 is actuated by means of an actuating mechanism 1320 accessible from the top of said steering tube 1100.

[0042] The internal annular surface of the end 1230 of the sheath 1200, opposite the orifice 1211 of said female junction 1000, further has a bore 1220, against which a cylindrical bearing surface 2220 of said male junction 2000, once inserted and locked, comes to rest. A short centering between the male junction 2000 and the sheath 1200, at the end of said male junction 2000, thus makes it possible to obtain this cylinder / cylinder contact between the bore 1220 of the sheath 1200 and the cylindrical bearing surface 2220 of said male junction, so as to guide the male junction 2000 in the sheath 1200 and to block the rotation of the male junction 2000 along an axis perpendicular to the axis of rotation AA.

[0043] The sheath 1200 is fixed to the steering tube 1100 by any known means, such as for example gluing, welding, screwing, or riveting. It can thus be fixed by welding for example, against the lower end of the steering tube 1100 which is positioned in abutment above the conical bearing surface 1210. Preferably, it is fixed to the steering tube 1100 so that it can be removed to allow maintenance work. In this case, it can be fixed by means of at least one screw 1240 for example, screwed through the wall of the steering tube 1100 and into the thickness of the end 1230 of the sheath 1200, opposite the orifice 1211 of said female junction 1000. Preferably, it is fixed by means of three screws 1240 arranged at equal distances from each other around the periphery of the steering tube 1100.

[0044] The conversion system according to the invention further comprises a male junction 2000, secured to the front module of the vehicle, intended to be inserted into the orifice 1211 of the female junction 1000 and to be positioned against the bore 1220 of the sheath 1200. This male junction is in the form of a hollow tube and comprises an end surface 2230. A through orifice 2231 is provided in this end surface 2230 to accommodate the locking mechanism 1300. The cylindrical bearing surface 2220 located at the cylindrical end of the male junction is intended to be pressed against the bore 1220 of the sheath 1200 when the two male and female junctions are locked to each other. The male junction 2000 further has, at its opposite end, a conical surface 2210 intended to be pressed against the conical bearing surface 1210 of said orifice 1211 of said female junction 1000 by actuation of said locking mechanism 1300.This male junction 2000 extends, under the conical surface 2210 by a tube 2100 whose external walls are fixed integrally to the front module, that is to say to the fork in the case where the front module is a fork fixed to a front wheel, or to the offset steering tube, itself integral with a rotation transmission system, in the case of a cargo module. The fixing of this male junction to the front module is preferably carried out by welding.

[0045] The locking mechanism 1300 makes it possible to press the male junction against the female junction and to vertically tighten the two parts sufficiently to hold them securely together and prevent them from rotating or translating relative to each other. Thus, the locking mechanism makes it possible to press the conical surface 2210 of the male junction 2000 against the conical bearing surface 1210 of the sheath 1200 of the female junction 1000 and to press the cylindrical bearing surface 2220 of the male junction 2000, opposite the conical surface 2210, against the bore 1220 of the sheath 1200. Pressing the male junction 2000 against the bore 1220 located at the top of the sheath 1200 and against the conical bearing surface 1210 located on the periphery of the orifice 1211 of the female junction 1000, makes it possible to avoid the appearance of play between the male and female junctions and to make them completely integral with each other.

[0046] The locking mechanism 1300 may take different forms. It may take the form of a stop pin, not shown in the figures. In this case, the pin comprises a tube in which a rod is movable in translation between a locked position and an unlocked position by actuation of a push button. Locking balls are positioned at the end of the tube, opposite the push button. The rod comprises an annular groove which forms, with the tube which surrounds it, a housing in which the locking balls are housed in the unlocked position. Pressure on the push button acts on a spring which pushes the rod into the tube so that the annular groove is positioned opposite the locking balls and a housing is created, in which the locking balls are housed. The balls are then in the unlocked position.By releasing the push button, the spring returns to its rest position and pulls on the stem, so that the diameter of the stem pushes the locking balls towards the outside of the tube, in a locking position. The push button for actuating the stop pin is in this case arranged at the top of the steering tube 1100, preferably on the top of said steering tube 1100.

[0047] The locking mechanism may also be in the form of a locking lever. In this case, the mechanism comprises a rod at the end of which a lever is capable of pivoting from a position coaxial with the rod in the unlocked position to a position at 90° relative to the rod in the locked position, said lever being actuated by means of a push button or a lever arranged on the top of the steering tube 1100.

[0048] Preferably, and as shown in Figures 1 and 2, the locking mechanism 1300 is in the form of a ball pin actuable by means of a wheel 1320 accessible from the top of the steering tube 1100. Such a ball pin comprises at least two balls, preferably three, called locking balls 1350 arranged in a housing of the locking mechanism when the mechanism is in the unlocked position and capable of extending out of their housing towards the outside of the mechanism, in the locked position. A plug 1341 makes it possible to dismantle the balls, during maintenance operations of the mechanism for example. The locking balls 1350 extend out of their housing under the action of a thrust which can be exerted by a rod or, preferably, a thrust ball 1340. The locking mechanism comprises a tapped hole 1311 into which a rod 1310 is inserted, the opposite end of which comprises a wheel 1320 accessible from the top of the steering tube 1100. Preferably, the wheel 1320 for actuating the mechanism is arranged on the top of the steering tube 1100. When the user turns the wheel 1320, for example clockwise, he screws the rod 1310 into the tapped hole 1311 and then pushes the end of the rod, or the push ball 1340, then driving the locking balls 1350 towards the outside of their housing. Conversely, when the user turns the wheel in the opposite direction, counterclockwise in the example, he unscrews the rod 1310 in the tapped hole 1311, allowing the end of the rod or the push ball 1340 to rise in its housing and the locking balls 1350 to return to their housing.

[0049] The locking mechanism 1300 in the form of a ball pin, and including a thrust ball 1340, is preferred because it allows smooth movement of the entry and exit of the locking balls 1350 and therefore flexible locking.

[0050] This mechanism makes it possible to securely lock the male 2000 and female 1000 junctions of the steering pivot, so that the junctions are secured to each other and do not move relative to each other.

[0051] According to a first embodiment and as illustrated in Figures 1 and 2, in the locking position, the locking balls 1350 press against an internal end face 2232 of said male junction 2000 located on either side of said receiving orifice 2231 of said locking mechanism 1300. In the locking position, the locking balls 1350 press against said internal end face 2232 of the male junction 2000, they keep the male junction 2000 pressed against the sheath 1200. Thus, the conical surface 2210 of the male junction 2000 is pressed against the conical bearing surface 1210 of the sheath 1200, so as to block any translation and any rotation along the axis AA, by friction, of the male junction 2000 relative to the female junction 1000.In addition, the cylindrical bearing surface 2220 of the male junction 2000 is pressed against the bore 1220 of the sheath 1200, so as to guide the male junction in its housing and to block any rotation of the male junction 2000 along an axis perpendicular to the axis AA of revolution of the steering pivot, relative to the female junction 1000.

[0052] In an illustrative, but in no way limiting, example, the locking balls 1350 have a diameter of five millimeters. Of course, other balls having different diameters can be used without departing from the scope of the invention. Advantageously, a negative clearance is provided between the outlet orifice of the locking balls 1350 and the internal end face 2232 of the male junction 2000. Such a negative clearance allows the locking balls 1350, in the locking position, to maintain the male junction 2000 in tension, by raising it towards the top of said sheath 1200, and to maintaining pressure on the conical surface 2210 of said male junction 2000 against the conical bearing surface 1210 of said female junction, so as to block the rotation of the male junction along the axis AA by friction at the level of the conical bearing surface.

[0053] This tightening makes it possible, on the one hand, to ensure that the conical surface 2210 is correctly positioned and, on the other hand, to transmit the torque, by adhesion, so that when a user turns the handlebar 100, the rotation of the stem 110 causes the rotation of the entire steering pivot formed by the male junction 2000 and the female junction 1000. This rotation of the steering pivot is then transmitted either to a fork when the front module is a fork fixed on a front wheel, or to a steering tube offset from a cargo module.

[0054] Advantageously, the negative clearance is between zero millimeters and a value equal to the radius of the locking balls 1350 of the ball spindle. Thus, for balls of five millimeters in diameter for example, the negative clearance is between zero and two and a half millimeters.

[0055] This embodiment, allowing a blocking of the rotation along the axis AA by friction at the level of the conical bearing surface, however requires machining of the surface of the conical bearing surface 1210 of the sheath 1200 on the one hand and of the conical surface 2210 of the male junction 2000 on the other hand, so as to make them very adherent. However, this machining process is quite expensive to carry out.

[0056] Consequently, to reduce production costs, a second embodiment, as shown in [Fig. 3], consists of blocking the rotation of the male and female junctions relative to each other by blocking and no longer by adhesion. Such an embodiment makes it possible to keep the surface of the conical bearing surface 1210 of the female junction 1000 as well as the conical surface 2210 of the male junction 2000 smooth. This embodiment consists of providing as many through holes in the annular wall of the male junction 2000 as there are locking balls 1350 in the ball spindle. These through holes, referenced 2240 in [Fig. 3], are made at locations located opposite the outlet orifices 1351 of said locking balls 1350.Thus, when the locking mechanism 1300 is actuated, the locking balls 1350 come out of their housing and are positioned in the through holes 2240, so that they block the rotation of the two male junctions 2000 and female 1000 relative to each other and keep the conical surface 2210 of the male junction 2000 pressing against the conical bearing surface 1210 of the female junction 1000.

[0057] Advantageously, said through holes 2240 are substantially offset downwards relative to the outlet orifices 1351 of the locking balls 1350, by a value between zero millimeters and a value equal to the radius of the locking balls of the ball spindle. This offset of the through holes 2240 allows the locking balls 1350 to exert an upward tensile force on said junction. male 2000, when they are engaged in said through holes, and to drive the male junction 2000 towards the top of said sheath 1200 in order to lock the parts against each other, so that the conical surface 2210 of the male junction 2000 is pressed against the conical bearing surface 1210 of the female junction 1000. In addition, the drilling diameter of the through holes 2240 is preferably slightly smaller than that of the locking balls 1350. The offset of the through holes 2240 and their diameter thus makes it possible to avoid the appearance of any play in the rotational drive of the male 2000 and female 1000 junctions. The male 2000 and female 1000 junctions are locked in rotation relative to each other and are integral with each other, so that when a When the user turns the handlebars, the handlebar stem drives the two steering pivot joints simultaneously in rotation around the AA axis to turn the wheel(s) of the front module.

[0058] An alternative embodiment, not shown in the figures, may consist of using a locking mechanism into which the male junction 2000 is inserted. In this case, the locking mechanism may be in the form of a ball connection, arranged on top of the end 1230 of the sheath and its through orifice 1231. The ball connection comprises balls regularly positioned on its internal annular wall. It is actuated by a mechanism, located on top of the steering tube 1100, which causes it to rise or fall between a respectively unlocked position and a locked position. When the male junction 2000 is inserted into the female junction 1000, its end passes through the through orifice 1231 made at the end 1230 of the sheath 1200, and is inserted into the ball connection arranged above the sheath 1200.According to this embodiment, during locking, the ball connection descends towards the sheath until the locking balls are positioned in blind holes, provided in the external annular wall of the male end of said male junction 2000 at right angles to the locking balls of the ball connection.

[0059] The stack consisting of the conical bearing surface 1210 of the sheath 1200, the steering tube 1100, the lower headset bearing 220, the steering socket 200, the upper headset bearing 210, the cover 211, the spacer 250 and the stem 110 is maintained under pressure by means of a plug 1400 positioned on top of the steering tube 1100 and under the actuating wheel 1320 of the locking mechanism 1300. Thus, the pressure exerted by the plug 1400 on the stack makes it possible to eliminate any play that might remain between the different parts of the stack, by pressing the lower headset bearing 220 against the external surface of the sheath 1200, opposite the conical bearing surface 1210.

[0060] Advantageously, an insert 1500, fixed to the steering tube 1100 by means of at least one pin 1510 for example, can be provided to ensure good retention of the rod 1310 of the locking mechanism connected to the wheel. 1320 actuation.

[0061] The assembly of parts, comprising the steering tube 1100, the sleeve 1200 and the locking mechanism 1300 with its actuating mechanism 1320, forming the female junction 1000 of the steering pivot remains permanently in place in the steering socket 200 secured to the frame of the rear structure of the vehicle. It is not intended to be disassembled by the user, but only by an informed person, a cycle mechanic, in the event of maintenance.

[0062] [Fig. 4] schematically represents a rear structure 500 of a bicycle connected to a front module in the form of a cargo module 600. The rear structure 500 comprises a frame 550 supporting a rear wheel 520, a crankset 510, as well as a handlebar 100 whose stem 110 is inserted from above onto a steering pivot. The crankset 510 drives the rear wheel 520 in rotation by a mechanical connection, conventionally by a chain or belt, and / or by means of a motor when the vehicle is assisted by an electric motor. The rear structure 500 can further accommodate a saddle and a derailleur mechanism controlled by a lever positioned on the handlebar of the handlebar to allow the vehicle to change speed.

[0063] The front module 600 can be in different forms and can be interchanged depending on the user's loading needs. Thus, the front module can be in the form of a conventional front wheel with its fork connected to the male junction of the steering pivot. In this case, the male junction secured to the fork of the front wheel is fixedly connected to the female junction of the steering pivot secured to the rear structure to allow transmission of the rotational torque between the handlebar and the front wheel.

[0064] The front module may furthermore be in the form of a cargo module 600 as shown diagrammatically in [Fig. 4], comprising a frame 650 and a location 660 intended to receive a platform and / or a body to enable the transport of loads or people and comprising one or more offset wheels 620. The cargo module also comprises a steering tube secured to a rotation transmission system to be able to act on the offset wheel(s). In the example illustrated in [Fig. 4], the cargo module comprises a single offset wheel 620.The cargo module 600 is then connected to the rear structure 500 in such a way that the male junction of the steering pivot, secured to the steering tube of the cargo module 600 and to the rotation transmission system, is fixedly connected to the female junction of the steering pivot secured to the stem 110 of the handlebar 100 of the rear structure 500 to allow transmission of the rotational torque between the handlebar and the offset front wheel via said rotation transmission system. The rotation transmission system comprises for example a first steering pulley 630, . on which the male junction of the steering pivot acts via the steering tube of the cargo module. This first steering pulley 630 is connected by cables 631 to a second pulley not shown in [Fig.4], located above the offset wheel 620 and connected to the fork 621 of this offset wheel. According to an alternative embodiment, the rotation transmission system can be a steering rod system conventionally used on cargo bikes. The rotation transmission system with steering pulleys and cables is however preferred because it allows a better turning radius to be obtained and improves driving comfort.

[0065] [Fig.4] schematically illustrates an example of a front module. Of course, the front module can take other forms with one or more offset wheels, without departing from the scope of the invention.

[0066] When the front module is a cargo module 600, it is preferable to fix it at a second point of the rear structure 500 to allow the rear structure 500 to recover the traction forces and avoid the appearance of an overhang between the rear structure 500 and the front module 600. This second fixing point is advantageously located on the frame 550 of the rear structure 500, at a point 551 of the frame 550, located between the crankset 510 and the head tube 200, and opposite a point 651 of the frame 650 of the front module. This choice of positioning the fixing point on the frame between the crankset 510 and the head tube 200 is preferred compared to a conventional fixing point at the bottom bracket because the conventional choice often requires a more significant modification of the bottom bracket. However, if you want to adapt to an existing bicycle frame, it is preferable to have the least amount of transformation to do.

[0067] The attachment between the frame 650 of the cargo module and the frame 550 of the rear structure 500 can be achieved by any known means. For example, it can be achieved by means of a clamp or a tightening strap, or a hook. Such an attachment does not require modification of the frame of the rear structure. The attachment can also be achieved with a locking means chosen from a locking pin, or a ball pin for example, or any other known attachment means.

[0068] Preferably, the attachment is made by means of a ball pin. Such an attachment is shown in more detail in [Fig. 5]. To achieve this attachment, the frame of the rear structure of the light vehicle is slightly modified so as to integrate therein an insert 555, forming a female socket and having a conical bearing surface 556. Similarly, the frame 650 of the cargo module is slightly modified so as to integrate therein an insert 655, forming a male socket and having a conical bearing surface 656. These two inserts 555, 655 are fixed to their respective frame 550, 650 by any known means. They are preferably fixed by welding. A ball pin 700 is fixed in the male insert 655 of the frame 650 of the cargo module. An orifice is provided in the insert 555 of the frame 550 of the rear structure, to accommodate the locking mechanism 700. An actuating wheel, not shown in [Fig. 5], accessible through a recess 652 made in the frame 650 of the cargo module, in line with the insert 655, makes it possible to actuate the ball pin for its locking and unlocking. Thus, when locking the ball pin 700, the locking balls come out of their housing and press on an end surface 557 of the female insert 555 and clamp the two inserts against each other, so that the two conical bearing surfaces 556 and 656 opposite each other press against each other and prevent any translational movement between the two frames.

[0069] Preferably, a negative clearance is provided between the outlet orifice 558 of the locking balls and the end surface 557 of the female insert 555. This negative clearance allows the locking balls, in the locking position, to maintain the female insert 555 in tension by pressing it against the male insert 655 of the frame 650 of the cargo module and to maintain the conical surface 556 of said female insert 555 under pressure against the conical surface 656 of said male insert 655, so as to block any movement of one frame relative to the other.

[0070] Advantageously, this negative clearance is between zero millimeters and a value equal to the radius of the locking balls of the ball spindle. Thus, for balls of five millimeters in diameter for example, the negative clearance is between zero and two and a half millimeters.

[0071] When the front module is connected to the rear structure of the light vehicle, it is also preferable to connect the brakes of the front module to a control lever generally located on the handlebar. Advantageously, the brakes are hydraulic disc brakes. Such a braking system has the advantage of being very easy to connect, by means of a hydraulic connector, of the bayonet type, to the control lever and therefore does not require a specific tool.

[0072] The conversion system that has just been described makes it possible to convert a bicycle into a cargo bicycle and vice versa, without tools and in a very rapid time, generally less than one minute and preferably between thirty seconds and one minute. It allows an efficient connection of the two parts of the bicycle and ensures a comfortable ride by avoiding the appearance of any play in the steering. It adapts to existing bicycles, electric or not, by replacing the conventional fork pivot of the front wheel with the two-part steering pivot. Such a conversion system makes it possible to have a single cargo module that fits several bicycles of the same family. It therefore saves space in terms of parking and limits costs by purchasing a single cargo module for several members of the same family.

Claims

Claims

1. System for converting a light vehicle into a modular light vehicle and vice versa, said light vehicle comprising a rear structure (500) and a front module (600) connected to said rear structure (500) via a steering pivot, said rear structure (500) comprising a frame (550) supporting at least one rear wheel (520), a handlebar (100) and a steering socket (200), integral with said frame (550), crossed by said steering pivot on which is fixed a stem (110) of said handlebar (100), said steering pivot being connected to said steering socket (200) by a pivot connection provided by a top headset bearing (210) and a bottom headset bearing (220), said conversion system being characterized in that said steering pivot is in two parts, a first part forming a female junction (1000) and a second part forming a male junction (2000),each of said female (1000) and male (2000) junctions being integral with said handlebar stem (110) (100) of said rear structure (500) or said front module (600), said male junction (2000) being inserted into said female junction (1000) and in that a locking mechanism (1300), integrated into one of said female (1000) or male (2000) junctions, makes it possible to keep said male junction (2000) integral with said female junction (1000).,

2. Conversion system according to claim 1, characterized in that said first part forming a female junction (1000) is integral with said stem (110) of the handlebar (100) of said rear structure (500) of said vehicle and comprises a steering tube (1100), passing through said steering socket (200) and on which said stem (110) of said handlebar (100) is fixed and, fixed inside said steering tube (1100), a sheath (1200) one open end of which forms an orifice (1211) of said female junction (1000) through which said male junction (2000) is inserted, said sheath (1200) having, on the periphery of said orifice (1211), a conical bearing surface (1210) and, opposite said conical bearing surface (1210), an end (1230) in which said locking mechanism (1300) is fixed. and in that said second part forming a male junction (2000) is integral with said front module (600) and comprises in an end surface (2230),oriented opposite said end (1230) of said sheath (1200), an opening (2231) capable of ac-, pick up said locking mechanism (1300) and has, opposite said end surface (2230), a conical surface (2210), intended to be pressed against said conical bearing surface (1210) of said sheath (1200) by actuation of said locking mechanism (1300).

3. Conversion system according to claim 1, characterized in that said first part forming a female junction (1000) is integral with said stem (110) of the handlebar (100) of said rear structure (500) of said vehicle and comprises a steering tube (1100), passing through said steering socket (200) and on which said stem (110) of said handlebar (100) is fixed and, fixed inside said steering tube (1100), a sheath (1200) one open end of which forms an orifice (1211) of said female junction (1000) through which said male junction (2000) is inserted, said sheath (1200) having, on the periphery of said orifice (1211), a conical bearing surface (1210) and, opposite said conical bearing surface (1210),an end (1230) in which a through orifice (1231) is made above which said locking mechanism is arranged and in that said second part forming a male junction (2000) is integral with said front module (600) and comprises a male end, capable of passing through said through orifice (1231) of said sheath (1200) and of being inserted into said locking mechanism, and has, opposite said male end, a conical surface (2210), intended to be pressed against said conical bearing surface (1210) of said sheath (1200) by actuation of said locking mechanism.,

4. Conversion system according to claim 2 or 3, characterized in that said end (1230) of said sheath (1200) has a bore (1220) against which a cylindrical bearing surface (2220) of said male junction (2000) is pressed, when the locking mechanism (1300) is actuated.

5. Conversion system according to claim 2 or 3, characterized in that the locking mechanism (1300) is selected from a ball pin or a stop pin or a locking lever or a ball joint and comprises an actuating mechanism (1320) accessible from the top of the steering tube (1100).

6. Conversion system according to claims 2 and 5, characterized in that the locking mechanism (1300) is a ball pin, the locking balls (1350) of which, in the locking position, press against an internal end face (2232) of said male junction (2000), so that they maintain by friction said conical surface (2210) of said male junction (2000) against said conical bearing surface (1210) of said female junction (1000).

7. Conversion system according to claim 6, characterized in that a negative clearance, between zero millimeters and a value equal to the radius of the locking balls (1350) of the ball spindle, is provided between the outlet orifice of the locking balls (1350) of the ball spindle and said internal end face (2232) of said male junction (2000).

8. Conversion system according to claims 2 and 5, characterized in that the locking mechanism (1300) is a ball pin and in that through holes (2240) are provided in the annular wall of said male junction (2000), opposite the outlet orifices (1351) of the locking balls (1350) of said ball pin, to accommodate said locking balls (1350) in the locking position, so that they block the rotation of the two male (2000) and female (1000) junctions relative to each other and maintain said conical surface (2210) of said male junction (2000) in abutment against said conical bearing surface (1210) of said female junction (1000).

9. Conversion system according to claim 8, characterized in that said through holes (2240) are substantially offset downwards relative to the outlet orifices (1351) of said locking balls (1350) of said ball spindle, by a value between zero millimeters and a value equal to the radius of said locking balls (1350).

10. Conversion system according to claims 3 and 5, characterized in that the locking mechanism is a ball connection arranged above the through orifice (1231) made at the end (1230) of the sheath (1200) and in that in the locking position, the balls of said ball connection are positioned in blind holes provided in the external annular wall of said male end of said male junction (2000).

11. Conversion system according to one of claims 1 to 3, characterized in that the front module is a front bicycle wheel, the fork of which is integral with said male junction (2000), or a cargo module (600) comprising at least one offset wheel (620) and a rotation transmission system of which is integral with said male junction (2000).

12. Conversion system according to claim 1, characterized in that when the front module is a cargo module (600) and the frame (550) of said rear structure (500) comprises a pedal assembly (510), said conversion system further comprises a system for fixing a frame (650) of the cargo module (600) on the frame (550) of said rear structure (500) of the modular light vehicle, said fixing system connecting a first point (551) of said frame (550) of said rear structure (500), located between said pedal assembly (510) and the steering socket (200), to a second point (651) of said frame (650) of the cargo module (600) located opposite said first point (551).

Citation Information

Patent Citations

  • Interchangeable front fork mechanism

    US10450029B2

  • Bicycle conversion kit and cargo bicycle apparatus

    WO2018035512A1

  • Cargo bicycle conversion system

    WO2019014506A1

  • Disassemblable handlebar for a straddleable lightweight vehicle

    WO2023186599A1

  • Multi-range clutch for alternating, tool-free changing of various front frames on a convertible bike.

    CH712352A2