HEAD FOR BRUSH CUTTERS
20230041171 · 2023-02-09
Inventors
Cpc classification
International classification
Abstract
A head 1 for a brush cutter of the type comprising a support element 3, connectable to a drive shaft of a brush cutter so as to be set in rotation about a vertical rotation axis Y-Y, a plurality of pins 9, connected to the support element 3, couplable to a plurality of cutting elements 2, so that every cutting element 2 is free to rotate about the respective pin 9 defining a cutting generatrix S. Said plurality of cutting elements 2 being arranged in such a way as to provide the respective cutting generatrices S tangent, in the part distal to the vertical rotation axis Y-Y, to an overall cutting diameter B, defining the overall cutting surface of the head, and tangent, in the part proximal to the vertical rotation axis Y-Y, to a fictitious circumference A, defining a central portion of the support element 3 not reached by the plurality of cutting elements 2. The A/B ratio being comprised between 0.06 and 0.3.
Claims
1. A head (1) for brush cutters, of the type comprising: a support element (3) having a discoid shape and connectable to a drive shaft of a brush cutter so as to be set in rotation about a vertical rotation axis (Y-Y); a plurality pins (9), connected to the support element (3), spaced equally apart along a 360° angular sector and each having an axis of symmetry (y-y) lying on a circumference having as a centre the vertical rotation axis (Y-Y) and a radius (R); a plurality of cutting elements (2) connected to the plurality of pins (9), so that every cutting element (2) is coupled to a respective pin (9), each cutting element (2) being free to rotate about the axis of symmetry (y-y) of the pin (9) onto which the cutting element is fitted, thereby defining a cutting generatrix (S); said plurality of cutting elements (2) being arranged in such a way as to provide the respective cutting generatrices (S) tangent, in the part distal to the vertical rotation axis (Y-Y), to an overall cutting diameter (B) defining the overall cutting surface of the head, and tangent, in the part proximal to the vertical rotation axis (Y-Y), to a fictitious circumference (A), defining a central portion of the support element (3) not reached by the plurality of cutting elements (2); characterised in that the A/B ratio is comprised between 0.06 and 0.3.
2. The head (1) according to claim 1, wherein said plurality of cutting elements (2) is defined by a set of three cutting elements spaced apart from one another by 120°, relative to an angular sector of 360°.
3. The head (1) according to claim 2, wherein the A/B ratio is comprised between 0.06 and 0.15.
4. The head (1) according to claim 1, wherein said plurality of cutting elements (2) is defined by a set of four cutting elements spaced apart from one another by 90°, relative to an angular sector of 360°.
5. The head (1) according to claim 4, wherein the A/B ratio is comprised between 0.16 and 0.3.
6. The head according to claim 1, wherein said support element (3) is defined by an upper plate (6) and a lower plate (7) that can be closed together in a pack through fastening means (8), in order to retain within them the plurality of pins (9) and the plurality of cutting elements (2); each cutting element (2) being rotatably and idly coupled to the respective pin (9) it is fitted onto.
7. The head according to claim 1, wherein each cutting element (9) is defined by a disk body (4) having a plurality of teeth (5) on the periphery thereof.
8. The head according to claim 1, wherein it comprises a plurality of fixed projections (10) solidly joined to the support element (3) so as to define, during the rotation of the support element about the vertical rotation axis (Y-Y), a further cutting element to support the plurality of cutting elements (2).
9. The head (1) according to claim 8, wherein each projection (10) extends from the periphery of the support element (3) and away therefrom, filling an empty space defined by a pair of cutting generatrices (S) belonging to two mutually contiguous cutting elements (2).
10. The head (1) claim 1, wherein the plurality of cutting elements (2) each has a cutting element (2) coplanar with the other cutting elements belonging to the plurality (2).
Description
[0017] Further features and advantages of the present invention will become more apparent from the following indicative and therefore non-limiting description, of a preferred but not exclusive embodiment of a head for brush cutters as illustrated in the accompanying drawings in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026] In the accompanying drawings, a head for brush cutters in accordance with the present invention is indicated in its entirety by the number 1.
[0027]
[0028] The support element 3 is rotationally connected to a drive shaft (not shown in the figures, as known) and has a vertical rotation axis Y-Y about which the support element 3 rotates.
[0029] As visible in the accompanying drawings, the support element 3 is preferably circular in shape.
[0030] The support element 3, when driven by the drive shaft, rotates about the vertical axis Y-Y thereof with an angular speed ωu.
[0031] As a result of the rotation of the support element 3, the plurality of cutting elements 2 can also rotate.
[0032] More precisely, each cutting element 2 belonging to the plurality of cutting elements, during the rotation of the support element 3, describes a rotary motion around the rotation axis y-y thereof, in
[0033] B indicates the overall cutting diameter obtained by drawing a circumference tangent in the external part of the cutting generatrices S defined by each cutting element 2. In order for the cutting diameter to be tangent to all the cutting generatrices of the cutting elements 2, a geometric condition is preferred for which each cutting element 2 has the rotation axis y-y thereof on a circumference having the vertical axis Y-Y of the support element 3 as its centre.
[0034] In
[0035] A indicates a fictitious circumference, tangent in the inner part of the cutting generatrices S defined by each cutting element 2 and having a diameter equal to Da.
[0036] Following the diagram, B is the overall cutting diameter obtained from the circumference tangent to the cutting generatrices S and distal to the vertical axis Y-Y, A is a circumference tangent to the cutting generatrices S in the part proximal to the vertical axis Y-Y representing the central portion of the support element not reached by the plurality of cutting elements 2.
[0037] In this context, the Applicant has designed the system illustrated in
[0038] Through this kinematic parallelism, the Applicant has assessed how to maximise the angular speed ωb so as to maximise the impact with grass.
[0039] To maximise the angular speed ωb, it is possible to apply the Willis formula thus obtaining: ωb=ωu*(1+A/B) with A and B respectively the diameter of the fictitious sun and the overall cutting diameter of the head. To maximise the angular speed, through the Willis formula, it is necessary to vary the values given by the ratio A/B and therefore, in one case, obtain large values of A and, in the opposite case, obtain small values of B.
[0040] The first case, large values of A leads to a configuration as shown in
[0041] The solution illustrated in
[0042] Subsequently, the Applicant studied the same model by setting a maximisation of the passage depth, indicated in
[0043] In this context, it can be noted that H is, again, a function of the ratio A/B with increasing behaviour as A decreases,
[0044] A diagram representative of the ideal condition of the head 1 with the maximised passage depth H is shown in
[0045] At this point, the Applicant carried out a kinematic study of the head 1, providing it with a plurality of cutting elements 2.
[0046]
[0047] The kinematic studies illustrated in
[0048] By applying the speed composition formula it is possible to understand how the point P is subject to a dragging speed Vt, with respect to the rotation axis of the support element 2 passing through the axis of vertical symmetry Y-Y is a relative speed Vr, with respect to the rotation axis of the cutting element 3 passing through the axis y-y.
[0049] The result of the two speeds is the absolute speed Va, also represented in the opposite direction, −Va, as a reaction induced by the impact on the head and therefore on the brush cutter.
[0050]
[0051] By comparing the two figures it is possible to reach this comparative table:
TABLE-US-00001 Data of FIG. 4 Data of FIG. 5 Distance YY-P 146.7 mm Distance YY-P 143 Diameter 2 220 Diameter 2 177 Diameter 3 80 Diameter 3 123 Vt 89 m/s Vt 91 m/s Vr 116 m/s Vr 112 m/s Va 57 m/s Va 33 m/s
[0052] The comparison in the table allows to ascertain how the configuration of
[0053] In other words, from the table it is possible to ascertain how, with a substantially equal distance YY-P, the value of the absolute speed in the example of
[0054] At this point, the Applicant continued modelling the head, maintaining the analogy with the planetary gearbox system.
[0055] Therefore, taking advantage of the analogy with the planetary gearbox system, defining with S the cutting generatrices of each cutting element 2 and plotting with B the overall cutting diameter, externally tangent to the cutting generatrices S of each cutting element 2, and with A the fictitious circumference, internally tangent to the cutting generatrices S of each cutting element 2 and representing the central portion of the support element 3 not reached by the plurality of cutting elements 2, the Applicant determined a ratio A/B comprised between 0.06 and 0.3 (or 0.06<A/B<0.3).
[0056] In particular, by setting a number of cutting edges equal to 3, with a radially distributed arrangement at 120°, the Applicant has determined an optimal ratio A/B comprised between 0.06 and 0.15 and by setting a number of cutting edges equal to 4, with a radially distributed arrangement at 90°, an optimal ratio A/B comprised between 0.16 and 0.3.
[0057] By means of the modelling performed, the Applicant has determined that the ratio A/B comprised between 0.06 and 0.3 results in a better cutting performance of the cutting elements 2 and a reduction of the vibrations to the head 1, and therefore to the brush cutter, in case of impact against an obstacle.
[0058] The following
[0059] Each cutting element 2 defines, during the rotation of the support element 3, a circular-shaped cutting generatrix S.
[0060] Each cutting element is coplanar with the other cutting elements belonging to the plurality 2 so as to define a cutting plane P.
[0061] In the figures it is possible to appreciate that the preferred variant of the cutting element 2 is defined by a discoid body 4 having a plurality of teeth 5 at the periphery thereof.
[0062] The plurality of elements of cutting elements 2 is coupled to the support element 3 through a plurality of pins 9.
[0063] Said plurality of pins 9 is uniformly distributed on the support element 3, having an angular sector of 360°, a staggered distribution of 90°.
[0064] Said plurality of pins 9 is distributed on a circumference having radius R and centre in the vertical rotation axis Y-Y of the support element 3.
[0065] A cutting element 2 is fitted at each pin 9 so as to be rotatably idle about the pin 9 and trapped inside the support element 3.
[0066] The support element 3 is preferably defined by a discoid body with an upper plate 6 and a lower plate 7.
[0067] The lower and upper plate 6,7 can be closed together in packs due to fastening means 8. By closing the fastening means 8, the plurality of cutting elements is retained within the lower 7 and upper 6 plate, while by opening the fastening means 8 it is possible to open the plates to replace one or more cutting elements 2.
[0068] A second variant of the head 1 of
[0069] The projections 10 have different functions. In the event of pronounced wear of the cutting elements 2, the arcuate projections 10 protect the cutting elements 2 from further wear. As the cutting element 2 is consumed, the head 1 could reach a configuration where it would be entirely devoid of a cutting surface since the cutting elements 2 are no longer active. As a result of the arcuate projections 10, in addition to favouring a protection of the residual part of the plurality of cutting elements 2 which remains intact, an additional cutting surface is generated by virtue of the rotation of the support element 3.
[0070] In addition, by filling the spaces between a pair of contiguous cutting elements 2, the projections 10 prevent the grass from being transported by the plurality of cutting elements 2 inside the support element 3 thus preventing the accumulation of debris grass from compromising the rotation of the plurality of cutting elements 2 around the axes y-y thereof.
[0071] By exploiting the operating principles of a planetary gearbox with a head 1 as conceived, the Applicant was able to determine the overall cutting diameter portion on the support element and the area of the support element 3 not reached by the plurality of optimal cutting elements 2 which allows good cutting performance and good shock absorption.
[0072] Thereby, in addition to ensuring a better performance of the brush cutter, it has created a cutting tool which is less subject to wear and which is better able to absorb the impact of an obstacle.
[0073] In addition, even in the event of tool wear, the Applicant has created an additional element, the plurality of projections 10, which allow to support the plurality of cutting elements in the cutting steps.