Improved rotary valve particle dosing device and corresponding agricultural machine

The dosing device with a curved hatch and spacing means addresses fouling and jamming issues, offering precise and responsive particle flow control with reduced operational effort and improved cleaning, suitable for agricultural spreading systems.

FR3159074A1Pending Publication Date: 2025-08-15BUREL PROD
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Patent Information

Application Number
FR2024001323
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-02-12
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

Existing agricultural spreading systems face challenges with dosing devices that are prone to fouling, jamming, and require high operational effort due to the design of sliding hatches on horizontal surfaces, which are difficult to clean and sensitive to vertical gravitational forces.

Method used

A dosing device with a curved hatch rotating around a horizontal axis and spacing means creating a decompression zone, reducing contact surfaces and incorporating a flow selector with calibrated orifices for precise and responsive control of particle flow.

Benefits of technology

The solution provides a self-cleaning, reliable, and efficient dosing system with reduced operational effort, capable of precise flow rate adjustment over a wide range, suitable for various particle types.

✦ Generated by Eureka AI based on patent content.

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Abstract

Improved rotary valve dosing device for particles to be spread, and corresponding agricultural machine. The invention relates to a dosing device (10) for particles to be spread for an agricultural machine, comprising a base (11) intended to form the lower part of a hopper for storing said particles of said agricultural machine. The base (11) comprises a side wall (4) having at least one opening (3) intended for the passage of the particles to be spread through at least one calibrated orifice. A curved hatch (2) is rotatable about a substantially horizontal axis (12) between a position for closing the opening and a position for maximum release of the opening. Such an axis is arranged outside the base and the hopper. According to the invention, the dosing device (10) comprises spacing means defining a spacing space between said side wall (4) and said curved hatch (2). Figure for abstract: Fig 10
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Description

Title of the invention: Improved rotary valve particle dosing device for spreading, and corresponding agricultural machine Technical field

[0001] The field of the invention is that of spreading particles, in the field of agriculture, or products in the form of grains, such as fertilizers or seeds.

[0002] More specifically, the invention relates to the dosage of particles to be spread, in a context of precision agriculture.

[0003] It applies in particular, but not exclusively, to centrifugal spreaders which use one or more rotating mobile discs.

[0004] It also finds application in the field of seeders. Prior art

[0005] In such agricultural machines, the product to be spread is generally stored in a hopper, in the wall of which an opening is provided, intended for the flow of fertilizer or seed.

[0006] Thus, in centrifugal spreaders, the product to be spread is poured from the hopper above each disc, so as to be projected by means of the blades onto the ground on which it is to be deposited. An example of this approach is described in patent document EP 0 170 605.

[0007] Depending on requirements, the quantity of particles delivered to a disc per unit of time can vary, for example by a proportion of 1 to 400. A classic method for calculating spreading instructions is based on the formula D = QLV / 600, where:

[0008] - D is the instantaneous feed rate of the discs (in kg / min) for a unit of given time, corresponding to a spreading cycle;

[0009] - Q is the set dose (in kg / ha), corresponding to the average of the Q sets; required for each mesh present in a given surface associated with a spreading cycle;

[0010] - the given surface is a rectangle defined by:

[0011] - the spreading width L (in m) and

[0012] - the distance traveled during a spreading cycle: Vxt, where V is the speed of the tractor (in km / h), and t the duration of a spreading cycle (in h).

[0013] To the extent that the set dose Q varies greatly for agronomic reasons, where the speed V varies greatly depending on the relief, and where the width L varies depending on the position of the agricultural machine in the field (in particular at the headland, at the edge, at the end or at the tip of the field), it is necessary that the flow rate D can vary greatly, and in a very reactive way.

[0014] Indeed, in the context of precision agriculture, these variations can be permanent, or almost permanent. Indeed, the spreading system knows its precise position, for example using GPS positioning. It also knows the fertilizer requirement of the corresponding area, for example from previously developed maps. Consequently, during spreading, without the spreading being interrupted and without intervention from the farmer, the system can decide to modify the dose of particles delivered. According to another approach, the farmer can himself manually control this dose, using adjustment means provided for this purpose in the cab of his tractor.

[0015] Thus, in the field of spreading as in that of seeders, it is important to be able to regulate the flow rate of the particles to be spread by gravity at the exit of the hopper, in a very precise and very reactive manner over a wide range.

[0016] For most manufacturers of fertilizer distributors, such regulation is carried out by means of a sliding hatch arranged at the bottom of the hopper, as described in document EP 1 707 042. More precisely, the hopper is equipped, in its lower part, with a plastic or stainless steel receptacle, also called a hopper bottom, in which one or more openings are provided. These flat openings, arranged on a horizontal surface of the dosing bottom, can be completely or partially closed by means of a sliding hatch.

[0017] The gravitational flow rate of the particles to be spread is therefore regulated, depending on the position of the trapdoor, and therefore the surface area of ​​passage of the particles to be spread through the opening.

[0018] This solution has the advantage of offering a maximized gravity flow rate, for a given opening section of the dosing base. In addition, such a dosing system is particularly compact.

[0019] However, it also has several disadvantages.

[0020] First of all, the opening closure flap slides between two guides in an environment loaded with dust and particles: it is therefore sensitive to fouling and risks getting stuck during operation.

[0021] Furthermore, the location of the hatch, on the lower horizontal surface of the dosing base, makes it difficult to access the latter, to clean it, in the event of fouling.

[0022] Finally, this solution is sensitive to the loading of the hopper, due to the mass of the product, which exerts a vertical gravitational force on a horizontal trap surface: the resultant force exerted on the trap is all the stronger as the mass of product in the hopper is high.

[0023] The solution adopted to date by the Applicant of the present patent application, and described in document EP 3 692 778, consists of providing an opening (or several) in a side wall of the bottom, and closing it with a rotating curved hatch which slides by rotation around a substantially horizontal axis (when the spreader is horizontal), arranged outside the bottom and the hopper. The cylindrical surface of the curved hatch thus comes into contact with the cylindrical surface of the bottom wall of the dispenser to close the opening in a watertight manner.

[0024] It is important for the Applicant to provide a dosing device having further improved performance compared to the aforementioned prior art dosing device, while being simple, convenient and economical both in its manufacture and in its use. Statement of the invention

[0025] The invention meets this need by proposing a device for dosing particles to be spread for an agricultural machine, comprising a base intended to form the lower part of a hopper for storing said particles of said agricultural machine.

[0026] Such a bottom comprises a curved side wall having at least one opening intended for the passage of the particles to be spread from the inside to the outside of the hopper through at least one calibrated orifice, a curved trapdoor being movable in rotation around a substantially horizontal axis, and arranged outside the bottom and the hopper, between a position for closing the opening and a position for maximum release of the opening.

[0027] According to the invention, the dosing device comprises spacing means defining a spacing space between said side wall and said curved hatch.

[0028] The implementation of such spacing means offers numerous advantages to the dosing device of the present invention.

[0029] They make it possible in particular to reduce the contact surface between the side wall and the curved hatch in the vicinity of the opening for the passage of the particles to be spread, and to create a clearance or decompression zone or space around the contact zone so that dust and debris in particular which would be trapped at the level of this contact zone can be evacuated. The device is thus almost self-cleaning.

[0030] Due to the restricted contact surface between the side wall and the curved hatch, the mechanism is very insensitive to the jamming of particles of different sizes between the side wall and the curved hatch in the vicinity of the opening.

[0031] As a result, the solution of the invention makes it possible to offer a further improved operation of the dosing device, in the sense that they make it possible to:

[0032] - reduce the contact pressures (resistant torques) between the side wall and the curved hatch that impair the efficiency of the hatch control motor and / or that require high engine power,

[0033] - to limit friction, which reduces wear on the hatch, and

[0034] - reduce the operating efforts required to open and close the curved hatch and the torque required for rotation to be applied by the actuator(s) (motors or cylinders) which control the passage of the hatch from the closed position to the maximum release position and vice versa.

[0035] Such spacing means further guarantee good operational reliability and good sealing of the parts of the dosing device.

[0036] The dosing device according to the invention is precise, responsive, easy to maintain, compact, and suitable for dosing all types of particles to be spread.

[0037] Preferred, simple, convenient and economical characteristics of the dosing device according to the invention are presented below.

[0038] According to an advantageous characteristic, said spacing means have a rib extending substantially perpendicularly from said side wall in the vicinity of said opening, respectively said curved hatch, and a free edge of which defines at least one contact zone with said curved hatch, respectively said side wall.

[0039] According to another advantageous characteristic, the dosing device comprises a removable flow selector forming an interface between said opening and said curved hatch, and carrying opposite said opening at least one calibrated orifice for the passage of said particles to be spread from the inside of the hopper, and in that said spacing means are formed on said flow selector.

[0040] Such a flow selector is for example in the form of a curved plate, made of metal or plastic, in which the calibrated orifice(s) is / are arranged. This plate is positioned between the opening arranged in the side wall of the bottom and its curved closing hatch. It makes it possible, depending on the shape of the calibrated orifice it carries, to select a range of possible flow rates for the metering device.

[0041] Thus, thanks to such a device, two degrees of freedom are available for adjusting the flow rate of the particles to be spread. On the one hand, the flow rate can be adjusted according to the position of the curved rotating hatch, and its degree of obstruction of the opening made in the bottom. On the other hand, it can also be adjusted according to the shape of the calibrated orifice that is interfaced between the rotating hatch and this opening. For example, a flow selector carrying a calibrated orifice taking the form of a fine vertical slot is very advantageous at low flow rates.

[0042] According to a particular aspect, said spacing means have a rib extending substantially perpendicularly from said flow selector in the vicinity of the calibrated orifice, respectively said curved hatch, and one edge of which free defines at least one contact zone with said curved hatch, respectively said flow selector.

[0043] According to another particular aspect, said spacing means introduce a distance between said side wall, or the flow selector, and said curved hatch of between 1 and 20 mm, preferably between 2 and 15 mm.

[0044] According to an advantageous characteristic, said rib has at least one discontinuity.

[0045] According to another advantageous characteristic, said discontinuity(ies) extend in the lower part of said opening or of the calibrated orifice.

[0046] According to a particular aspect, at the level of at least one of said discontinuities, said rib is replaced by a flexible element.

[0047] According to another particular aspect, at least a portion of said rib is extended, at its free edge, by a flexible element.

[0048] According to another particular aspect, said portion(s) are formed in the lower part of said opening or said calibrated orifice, said rib being rigid on the other parts, in particular in the upper part, of said opening or said calibrated orifice.

[0049] According to an advantageous characteristic, said flexible element belongs to the group comprising brushes and seals.

[0050] The invention also relates to an agricultural machine for spreading or sowing particles, comprising a particle storage hopper, and a dosing device as described above, arranged in the lower part of said hopper. Presentation of the figures

[0051] Other aims, characteristics and advantages of the invention will appear more clearly on reading the following description, given as a simple illustrative, and non-limiting, example, in relation to the figures, among which:

[0052] [Fig-1] illustrates an agricultural machine for spreading particles, such as fertilizer or seeds;

[0053] [Fig.2] illustrates a desired flow control curve, according to a mode of rea lization of the invention;

[0054] [Fig.3] schematically illustrates the curved closure hatch of the metering device according to an embodiment of the invention, in a reduced opening position suitable for small flow rates;

[0055] [Fig.4] schematically illustrates the curved shutter hatch of the device of dosage according to one embodiment of the invention, in a maximum opening position suitable for high flow rates;

[0056] [Fig.5] illustrates an overall perspective view of a dosing device according to a embodiment of the invention;

[0057] [Fig.6] provides an exploded view of the dosing device of [Fig.5];

[0058] [Fig.7] illustrates in synthetic schematic form the operating principle of a dosing device according to an embodiment of the invention comprising a flow selector interfaced between the bottom and the hatch;

[0059] [Fig.8] is a front view of a flow selector implemented in a mode of production of the dosing device of the invention and having spacing means;

[0060] [Fig.9] is a side view of the flow selector of [Fig.8];

[0061] [Fig. 10] illustrates an overall perspective view of a dosing device according to one embodiment of the invention;

[0062] [Fig. 11] is a side view of the metering device of [Fig. 10];

[0063] [Fig. 12] is a perspective view of a brush intended to be implemented in an embodiment of the dosing device of the invention;

[0064] [Fig. 13] very schematically and partially illustrates a dosing device according to an embodiment of the invention comprising a flow selector interfaced between the bottom and the hatch;

[0065] [Fig. 14] illustrates very schematically an alternative embodiment of the spacing means of the dosing device of [Fig. 13];

[0066] [Fig. 15] is another variant embodiment of the spacing means of the dosing device.

[0067] Detailed description of embodiments of the invention

[0068] The general principle of the invention is based on the implementation of a curved trapdoor, movable in rotation around a horizontal axis, to close the opening made in the dosing base of a device for dosing particles to be spread. Such a curved trapdoor makes it possible to vary the angle of the wall of the dosing base crossed by the particles to be spread, depending on its degree of opening or closure.

[0069] Advantageously, the dosing device implements spacing means defining a spacing space between said side wall and said curved hatch. The fact of spacing the side wall and the curved hatch makes it possible in particular to reduce the contact surface between these elements in the vicinity of the opening for passage of the particles to be spread, and to create a clearance or decompression zone or space around the contact zone so that dust and debris in particular which would be trapped at the level of this contact zone can be evacuated. The device is thus almost self-cleaning.

[0070] Such a dosing device is fitted to a machine for spreading solid fertilizer or seeds on a cultivable plot, an example of which is illustrated schematically in [Fig.l].

[0071] It is in the form of a tractor 100 equipped with a hopper 1 containing the fertilizer or seeds 140 to be spread.

[0072] The bottom of the hopper 1 comprises two openings, then two adjustable feed devices, then two devices for adjusting the distribution of the fertilizer, for example in the form of chutes, allowing particles contained 140 in the hopper 1 to pass through, and placed above two distributors each comprising a rotating disc 150 carrying projection blades.

[0073] Two dosing devices 10 equip the bottom of the hopper 1.

[0074] The discs 150 are most often arranged in a substantially horizontal position and their rotation around a substantially vertical axis 160 ensures the projection of the contents 140 of the hopper by centrifugal effect, in the form of a sheet, in the general shape of a crescent, extending to the rear of the spreading machine.

[0075] A terminal 21, arranged in the cabin of the tractor 100, allows the control of the dosing devices 10.

[0076] We now present, in relation to [Fig.5] and [Fig.6] which are overall perspective and exploded views respectively, a dosing device 10 according to an embodiment of the invention.

[0077] Such a dosing device 10 (identified by the dotted line contours in [Fig.5]) comprises a bottom 11, which can be integrated into the hopper, or be secured to it, for example by welding.

[0078] In the example of [Fig.5], such a bottom 11 has a substantially circular, bowl-shaped section: it can be made of plastic material, or be in the form of a steel receptacle. It is arranged in the lower part of the hopper 1.

[0079] In the lower part of the bottom 11, a side wall 4 of the latter carries an opening 3, through which the particles to be spread can flow from the inside to the outside of the hopper 1, for example to be deposited on spreading discs (not shown).

[0080] This opening 3 can be closed by means of a curved hatch 2, movable in rotation around an axis 12. The curved hatch 2, in this example, has a surface corresponding substantially to a portion of a cylinder (spool). Other shapes of surfaces of revolution can also be envisaged, for example a portion of a sphere.

[0081] The curved trapdoor 2 of convex shape penetrates into the bottom 11 which has a corresponding opening 3 of concave shape.

[0082] Furthermore, in this embodiment of [Fig.5] and [Fig.6], a flow selector 15 is interfaced between the opening 3 and the curved hatch 2. This flow selector 15 carries a calibrated orifice 17 arranged opposite the opening 3 and through which the product to be spread passes, when it flows from the inside to the outside of the hopper 1.

[0083] Removable fixing means are provided to secure the flow selector 15 to the bottom 11. Thus, in this embodiment, the flow selector 15 can slide opposite the opening 3, so as to place the calibrated orifice 17 appropriate to the use intended by the customer opposite the opening 3 for the passage of the particles to be spread.

[0084] It is possible for the user to choose and install the flow selector 15 which corresponds to the product which he wishes to spread.

[0085] An actuator 13 of the rotating curved hatch 2 can be used to control the movement of the hatch 2, from a position of maximum closure of the calibrated orifice 17 (and therefore of the opening 3), in which the gravity flow rate of the product to be spread is zero, to a position of maximum release of the calibrated orifice 17 (and therefore of the opening 3), in which the gravity flow rate of the product to be spread is maximum.

[0086] Such an actuator 13 can take the form of a motor, or a jack.

[0087] The curved hatch 2, movable in rotation around the axis 12, and actuated by a stepper motor in this example, frees or closes, totally or partially, depending on its position, the calibrated orifice 17 (and therefore the opening 3).

[0088] The assembly comprising the curved hatch 2 and the actuator 13 is arranged outside the bottom 11 and can pivot relative to the latter, to free access to the flow selector 15, and facilitate its change.

[0089] Furthermore, such an assembly is configured to be easily removable from the dosing device 1, in order to allow easy and rapid cleaning.

[0090] The curved hatch 2 and the actuator 13 are arranged outside the bottom, which improves their accessibility for cleaning and maintenance.

[0091] A horizontal shaft 14 is arranged in a housing in the upper part of the bottom 11, and is intended to carry an agitation tooth. Such an optional shaft 14 is for example driven by an oscillating movement, and makes it possible to agitate the product to be spread, to facilitate its gravitational flow.

[0092] An agitation tooth (not visible) is intended to be connected to the horizontal agitation arm 14, to produce an oscillating agitation movement of the particles to be spread, in the lower part of the bottom 11.

[0093] It should be noted that by bottom, we mean both a receptacle or container secured to the hopper in its lower part, for example by welding, and the lower part of the hopper itself in an integrated solution. Such a dosing bottom is also called a bowl (or in English "hopper bottom").

[0094] It will also be noted that the flow selector 15 carries spacing means 18 located in the vicinity of the calibrated orifice 17 and which will be described in more detail later.

[0095] The principle of closure by curved hatch is known and represented diagrammatically- tically in figures [Fig.3] and [Fig.4].

[0096] In [Fig. 3], the curved hatch 2 is in a reduced opening position. The angle of inclination a, which corresponds to the average angle of inclination of the opening released by the curved hatch 2 relative to the vertical, is small. In this position, the dosing device is adapted to a low flow rate of the product to be spread.

[0097] In [Fig. 4], the curved hatch 2 is in a maximum opening position. The angle of inclination a, which corresponds to the average angle of inclination of the opening released by the curved hatch 2 relative to the vertical, is high. In this position, the dosing device is suitable for a high flow rate of the product to be spread. This is made possible by the particular positioning of the hatch 2, which is arranged outside the bottom, but whose axis of rotation is located close to the opening, substantially vertical to the upper boundary of the opening.

[0098] Thus, the use of a curved hatch 2 advantageously allows: to reduce the flow rate in the minimum opening position of the hatch, compared to the prior art; to increase the flow rate in the maximum opening position of the hatch, compared to the prior art; to increase the passage section of the product to be spread for a given size, compared to a flat hatch; to promote a continuous flow of the product to be spread at a low flow rate (because the section of the orifice cleared by the hatch is sufficient for a stable flow of the product to be spread).

[0099] The operating principle of such a flow selector can be better understood with regard to [Fig.8] which illustrates in schematic form an embodiment of the invention, in which the device comprises three main elements, namely: a first element referenced A comprising the bottom 11 in the side wall of which an opening 3 of concave shape is provided; a second element referenced B comprising the trapdoor 2 of convex shape, movable in rotation around a hub to match the concave shape of the opening 3 of the bottom; a third element referenced C, which interfaces between the opening 3 and the hatch 2, comprising a flow selector 15 in which a calibrated orifice 17 is provided through which the particles flow.

[0100] Conventional devices, such as that described in patent document EP 0 183 292 for example, do not include this third element referenced C. Thus, the flow rate is only adjusted by adjusting the position of the movable hatch 2, and therefore the degree of closure of the opening 3 by the latter.

[0101] The presence, according to one embodiment of the invention, of this element referenced C offers an additional degree of freedom, which is particularly advantageous for adjusting the flow rate more precisely (and in particular achieving low flow rates), and therefore allowing greater versatility of the dosing device, depending on the shape of this calibrated orifice, for example by adapting the geometry of this orifice to the type of particles to be spread.

[0102] It should be noted that the implementation of a flow rate selector in the dosing device of the invention is however optional.

[0103] In another embodiment not illustrated in the figures, the calibrated orifice is directly formed by the opening 3 provided in the side wall 4 of the dosing base 11.

[0104] Advantageously, the dosing device of the invention, whether or not implementing a flow rate selector, comprises spacing means defining a spacing or decompression space between said side wall 4 of the dosing base 11 and the curved hatch 2.

[0105] In the particular embodiment of the metering device described in relation to figures 5 to 13 and which implements a flow selector, the spacing means are arranged in the vicinity of the calibrated orifice 17 on the flow selector 15, and more precisely on the face of the flow selector 15 intended to be oriented towards the curved trapdoor 2.

[0106] In this exemplary embodiment of the metering device of the invention, as can be seen in [Fig. 8] in particular, the calibrated orifice 17 of the flow selector 15 through which the particles to be spread flow from the inside to the outside of the hopper has a substantially triangular shape with a width increasing progressively from the bottom (at the bottom of the hopper) towards the top, the passage section of the particles to be spread through the calibrated orifice increasing progressively from the bottom of the opening towards the top of the latter.

[0107] It should be noted that the width is understood here as the horizontal dimension (variation "from bottom to top").

[0108] By combining the phenomenon of modification of the angle of inclination a in figures 3 and 4, obtained thanks to the use of a rotating curved trap, with this progressive enlargement of the passage section of the calibrated orifice, we obtain a control curve of the parabolic gravity flow rate as illustrated in [Fig.2],

[0109] The curve in figure [Fig.2] illustrates the evolution of the gravity flow rate of a product to be spread, expressed in kg / min, as a function of the position of an actuator controlling the movement of a hatch closing the opening made in the side wall of a hopper 1, for an embodiment of a curved hatch closing a calibrated orifice of substantially triangular shape of a flow selector.

[0110] In [Fig.2], the maximum gravity flow rate that can be obtained is noted y2: it is obtained for a maximum displacement x2 of the actuator controlling the rotating curved hatch. A low flow rate yi can also be obtained for a displacement of the actuator Xi.

[0111] This therefore provides increased precision at low flow rates and good responsiveness at high flow rates. The combination of these two capabilities therefore provides the dosing device according to this embodiment of the invention with high versatility.

[0112] In the embodiment illustrated in Figures 5 to 13, the spacing means have a rib, or a rim, 18 extending substantially perpendicularly from the flow selector 15 (which is shown alone in Figures 8 and 9), and partly around the calibrated orifice 17.

[0113] The rib 18 extends around the calibrated orifice 17 (that is to say in its upper part and on its lateral parts) except in the lower part of the latter, and forms a contact element with the curved hatch 2 when the latter comes to at least partially close the calibrated orifice 17.

[0114] The rib 18 therefore has a discontinuity in the lower part.

[0115] In an exemplary embodiment, the rib has several discontinuities.

[0116] In another embodiment, the rib extends all around the calibrated orifice.

[0117] Figures 10 and 11 show the metering device comprising the flow selector 15 with the rotating curved hatch 2 in the position clear of the calibrated orifice 17.

[0118] It is noted that, in this exemplary embodiment, the wall 4 in which the opening 3 is formed has a curved surface corresponding substantially to the surface of revolution of the curved hatch 2 and of the flow selector 15.

[0119] The flow selector 15 can be mounted mobile in translation or in rotation in front of the opening 3 for the passage of the particles: the movement of the flow selector makes it possible to place the calibrated orifice 17 for the use intended by the customer opposite the opening 3 for the passage of the particles to be spread.

[0120] The dosing device comprises means for removable attachment of the flow selector 15.

[0121] These figures show in particular the particular geometry of the rib 18 which constitutes a projecting part or a rim, and which extends over the periphery of a part of the calibrated orifice 17.

[0122] The outer surface of the curved hatch 2 slides against the free edge of the rib 18 when the curved hatch 2 in particular partially or totally closes the calibrated orifice 17.

[0123] The free edge of the rib 18 defines a contact zone Zc (shown in [Fig. 13]) with the curved hatch 2 which is linear in this example.

[0124] Rather than cylinder-on-cylinder contact of the curved hatch with the bottom wall of the metering device or the flow selector as in the prior art, it is therefore proposed to implement spacing means of reduced size creating a reduced contact surface with the curved hatch.

[0125] The restricted contact of a cylindrical surface (that of the curved hatch) with the free edge of the rib 18 has the effect of limiting the resistant torques which in the prior art are induced in particular by the geometric defects of the two cylindrical surfaces in contact which are assumed to be coaxial and dimensionally adjusted.

[0126] This also makes it possible to create a release / decompression zone Zd directly around the contact zone Zc.

[0127] This makes the device of the invention robust, not very sensitive to fouling and almost self-cleaning because any dust and debris are easily evacuated towards this release / decompression zone Zd through the contact zone Zc.

[0128] At the discontinuity located in the lower part of the calibrated orifice 17, the rib is replaced by a flexible element in this embodiment. The flexible element is here a brush 5 which is mounted on the bottom 11 of the hopper.

[0129] The brush 5 is illustrated alone in [Fig. 12] and has a substantially “L” overall shape with a support part 51 having a longitudinal groove for fixing the brush to the bottom 11 of the hopper and a flexible part 52 made up of juxtaposed brush bristles.

[0130] The brush 5 is visible once mounted on the bottom 11 of the hopper in Figures 10 and 11. It extends close to the lower part of the calibrated orifice 17, below the lower edge of the flow selector 15, over all or part of the width of the latter. The bristles of the brush are relatively flexible but nevertheless have sufficient stiffness allowing them to remain straight and in the substantially horizontal position called the retaining position illustrated in Figures 10 and 11 to stop the particles when the curved hatch 2 is closed and completely blocks the calibrated orifice.

[0131] The front edge 2A of the curved trapdoor 2 is intended to come into contact with these brush bristles in the position of closing the calibrated orifice 17. These brush bristles delimit with the front edge 2A a retention space Zr for the particles which flow at the level of the lower part of the calibrated orifice 17 (that is to say at the level of the discontinuity of the rib 18), this lower part constituting a leakage path for the particles flowing from the hopper. This retention space Zr delimited schematically in dotted lines in [Fig. 12] has a good seal and makes it possible to release and collect particles which would be trapped between the free edge of the rib 18 and the curved hatch 2 when the calibrated orifice 17 is closed by the curved hatch 2. This has the consequence of very significantly reducing the forces or the closing torque of the curved hatch 2 which must be applied by the actuator(s) (motors), and therefore of to be able to use small motors in the dosing device of the invention.

[0132] In an alternative embodiment, the brush 5 is mounted on the flow selector 15.

[0133] In another embodiment, at least a portion of the rib may extend, at its free edge, by a flexible element, such as a brush or a flexible seal. In an exemplary embodiment illustrated in [Fig. 15], the rib 18 is rigid in the upper part of the calibrated orifice 17 and on its lateral edges. A flexible seal 19 or flexible lip is arranged in the lower part of the calibrated orifice 17, the opposite ends of the flexible seal being in contact with the rib 18 so that the spacing means are continuous. The deformation of the flexible seal 19 makes it possible in particular to release the particles blocked at the contact zone between the curved trapdoor 2 and the rib 18 located in the lower part of the calibrated orifice 17.

[0134] [Fig. 13] is a detailed view illustrating very schematically the spacing space provided between the side wall 4 of the dosing base 11 located in the vicinity of the opening 3 and the curved trapdoor 2. In this figure, the curved trapdoor 2 closes the calibrated orifice 17 and therefore prevents the passage of particles outside the hopper.

[0135] The height of the rib is referenced “e” in [Fig. 14]. It defines the distance and the gap between the side wall 4 of the dosing base 11 and the curved hatch 2 which are not in contact as in the prior art.

[0136] The reduced / thin contact surface Zc between the free edge of the rib 18 and the surface of the curved hatch 2 is observed, which forms a sealing line. The decompression zone Zd located around the rib 18 in the spacing space which extends between the side wall 4 of the dosing bottom 11 and the curved hatch 2 is also observed.

[0137] The decompression zone Zd allows the evacuation or release of particles which may leak from the calibrated orifice 17 through the contact surface Zc. The reduced dimensions of the contact surface Zc minimize the risk of particles becoming trapped at the interface of the free edge of the rib 18 and the surface of the curved trap 2.

[0138] The rib 18 extends in this embodiment perpendicular to the surface of the flow selector 15, and therefore to the side wall 4 of the dosing base.

[0139] In the embodiment of [Fig. 14], the rib 18 extends at an angle [3 less than 90° relative to the surface of the flow selector 15, and therefore to the side wall 4 of the dosing base.

[0140] More generally, the angle [3 can be between 80° and 90°, and for example equal to 85° + / -0.5°.

[0141] Such a relief integrated into the rib 18 makes it possible to create a decompression zone once the particles flowing from the hopper have passed the opening in the bottom.

[0142] It also helps promote rapid flow of particles.

[0143] As previously emphasized, the implementation of a flow selector in the metering device of the invention is however optional.

[0144] In another embodiment not illustrated in the figures, the calibrated orifice is directly formed by the opening 3 provided in the side wall 4 of the dosing base 11. In this case, the spacing means can be provided on the side wall 4 of the dosing base and take the form of a rib as described previously coming into contact with the curved hatch.

[0145] In other embodiments not illustrated in the figures, the spacing means may be provided on the wall of the curved hatch and come into contact with a flow selector or with the side wall 4 of the dosing base when the dosing device does not use a flow selector.

[0146] Of course, the specific features or variations described in correspondence with one of the embodiments may be adapted and / or implemented in another embodiment.

[0147] In the various embodiments, the rib may be rigid or flexible, or even be rigid except in a given area of ​​the rib where it is flexible. This flexibility located in the given area may be obtained, for example, by providing one or more slots in the direction of the height of the rib, or by providing a more flexible material on the free edge of the rib.

[0148] It can be made of plastic, rubber or polyurethane preferably.

[0149] Its free edge may for example be flat, rounded or pointed.

[0150] The spacing means introduce a distance between said side wall 4 of the dosing bottom, or the flow selector 15, and said curved hatch 2 of between 1 and 20 mm, preferably between 2 and 15 mm.

[0151] When the rib is discontinuous, it can be replaced by a flexible element at at least one of said discontinuities.

[0152] Said flexible element belongs to the group comprising brushes and seals.

[0153] The rib can be mounted reversibly and easily replaced when worn.

[0154] Such a dosing device is precise, responsive, easy to maintain, compact, and suitable for dosing all types of particles to be spread, regardless of the associated optimal flow rate curve.

[0155] The dosing device according to these different embodiments is thus adapted to types of particles to be spread which vary in shape and size (fertilizers or seeds of spherical shapes with a diameter of 2 to 5 mm; pellets of cylindrical shapes with a diameter of 3 to 6 mm and a length of 8 to 15 mm; spherical microproducts of diameter 1mm, with shapes and dimensions similar to grains of sand).

[0156] The curved hatch according to these different embodiments has a surface substantially defining a portion of a surface of revolution around the horizontal axis. It may be a portion of a cylindrical or spherical surface.

[0157] The side wall according to these different embodiments has, in an area carrying the opening, a surface complementary to the surface of revolution of the hatch. Again, this surface can therefore be a portion of a cylinder or sphere.

[0158] The flow selector according to these different embodiments has a surface complementary to the surface of revolution of the trapdoor. Again, this surface can therefore be a portion of a cylinder or sphere.

[0159] It is of course possible to provide as many flow selectors as necessary, depending on the range of products to be spread that one wishes to use. The flow selectors are thus interchangeable and each have a calibrated orifice of a distinct shape. These calibrated orifices can have a width that increases progressively from the bottom to the top of the orifice. It would also be possible to provide calibrated orifices of constant width, for example for small particles.

[0160] The maximum flow rate that the metering device can achieve depends on the section of this calibrated orifice.

[0161] As explained above, each flow selector 15, and each corresponding calibrated orifice 17 makes it possible to achieve a range of flow rates of the products to be spread; in other words, each flow selector 15 is associated with a specific flow curve.

[0162] A flow selector having a calibrated orifice of small cross-section can be used to achieve low flow rates of seeds for example, while a flow selector having a calibrated orifice of large cross-section will be advantageous for spreading fertilizer pellets.

[0163] It is therefore important, depending on the flow rate selector 15 that the user has mounted on the dosing device 10, that the agricultural machine, and more particularly its computer, uses, to control the spreading, the appropriate flow rate curve, associated with the chosen flow rate selector 15.

[0164] The calculator of the agricultural machine can memorize as many flow curves as there are flow selectors 15 available for the dosing device 10.

[0165] The same flow selector 15 can carry several calibrated orifices, two calibrated orifices for example.

Claims

Claims

1. Device (10) for dosing particles to be spread for an agricultural machine, comprising a bottom (11) intended to form the lower part of a hopper (1) for storing said particles of said agricultural machine, said bottom (11) comprising a curved side wall (4) having at least one opening (3) intended for the passage of said particles to be spread from the inside to the outside of the hopper (1) through at least one calibrated orifice (17), a curved hatch (2) being movable in rotation about a substantially horizontal axis (12) and arranged outside said bottom (11) and said hopper (1), between a position for closing said at least one opening (3) and a position for maximum release of said at least one opening (3), characterized in that it comprises spacing means defining a spacing space between said side wall (4) and said curved hatch (2).

2. Dosing device according to claim 1, characterized in that said spacing means have a rib (18) extending substantially perpendicularly from said side wall (4) in the vicinity of said opening (3), respectively said curved hatch (2), and a free edge of which defines at least one contact zone with said curved hatch (2), respectively said side wall (4).

3. Device according to claim 1, characterized in that it comprises a removable flow selector (15) forming an interface between said opening (3) and said curved hatch (2), and carrying opposite said opening (3) at least one calibrated orifice (17) for the passage of said particles to be spread from the inside of the hopper, and in that said spacing means are formed on said flow selector (15).

4. Dosing device according to claim 3, characterized in that said spacing means have a rib (18) extending substantially perpendicularly from said flow selector (15) in the vicinity of the calibrated orifice (17), respectively said curved trapdoor (2), and a free edge of which defines at least one contact zone with said curved trapdoor (2), respectively said flow selector (15).

5. Dosing device according to any one of claims 1 to 4, characterized in that said spacing means introduce a distance between said side wall (4) or the flow selector (15) and said curved hatch (2) between 1 and 20 mm, preferably between 2 and 15 mm.

6. Dosing device according to claim 2, 4 or 5, characterized in that said rib (18) has at least one discontinuity.

7. Dosing device according to claim 6, characterized in that said discontinuity(ies) extend in the lower part of said opening (3) or of the calibrated orifice (17).

8. Dosing device according to claim 6 or 7, characterized in that, at the level of at least one of said discontinuities, said rib (18) is replaced by a flexible element.

9. Dosing device according to any one of claims 2 to 8, characterized in that at least a portion of said rib (18) is extended, at its free edge, by a flexible element.

10. Dosing device according to claim 9, characterized in that said portion(s) are formed in the lower part of said opening (3) or said calibrated orifice (17), said rib (18) being rigid on the other parts, in particular in the upper part, of said opening (3) or said calibrated orifice (17).

11. Dosing device according to any one of claims 8 to 10, characterized in that said flexible element belongs to the group comprising brushes and seals.

12. Agricultural machine for spreading or sowing particles, comprising a hopper (1) for storing said particles, characterized in that it comprises a dosing device (10) according to any one of claims 1 to 11, arranged in the lower part of said hopper.

Citation Information

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