A SNOW TILLER FOR THE PREPARATION OF SKI RUNS
20220106750 · 2022-04-07
Inventors
Cpc classification
International classification
Abstract
A snow tiller for the preparation of ski runs, has a frame extending symmetrically on opposite sides with respect to a longitudinal axis; a tiller module coupled to the frame and having a shaft; and a easing, which is arranged around the shalt; a finisher, which has a flexible mat with one end coupled to the casing; and a pressure bar that is fixed to the flexible mat; and an adjusting assembly connected to the pressure bar and to the frame and/or to the casing and configured to enable a free oscillation of the pressure bar around an axis parallel to the longitudinal axis of the snow tiller and to selectively actuate a controlled adjustment of the distance between the pressure bar and the casing.
Claims
1.-10. (canceled)
11. A snow tiller configured to be advanced in a traveling direction, the snow tiller comprising: a frame configured to extend symmetrically on opposite sides of a longitudinal axis parallel to the traveling direction; at least one tiller module coupled to the frame and comprising: a shaft configured to rotate around a rotation axis transverse to the longitudinal axis and equipped with a plurality of tools configured to penetrate a snow cover of a ski run, and a casing arranged around the shaft; a finisher comprising: a flexible mat configured to define a support area on the snow cover and comprising an end coupled to the casing, and a pressure bar configured to extend transverse to the longitudinal axis, the pressure bar being fixed to the flexible mat at a distance from the end coupled to the casing; and an adjusting assembly connected to the pressure bar and at least one of the frame and the casing, the adjusting assembly configured to: enable a free oscillation of the pressure bar relative to an axis parallel to the longitudinal axis, and selectively adjust the distance between the pressure bar and the casing.
12. The snow tiller of claim 11, wherein the adjusting assembly is configured to selectively control a free oscillation of the pressure bar relative to an axis transverse to the longitudinal axis to adjust the distance between the pressure bar and the casing.
13. The snow tiller of claim 1 1. wherein the adjusting assembly comprises a crossbar configured to extend transverse to the longitudinal axis, the crossbar coupled to the pressure bar and coupled, via a first universal joint, to the frame.
14. The snow tiller of claim 13, wherein the adjusting assembly comprises a linear actuator coupled, via a second universal joint, to the frame and coupled, via a third universal joint, to the crossbar, the linear actuator configured to control an oscillation of the crossbar relative to an axis passing through the first universal joint and transverse to the longitudinal axis to adjust the distance between the pressure bar and the casing.
15. The snow tiller of claim 14, wherein at least one of the second universal joint and the third universal joint comprises an articulated head.
16. The snow tiller of claim 14, wherein the linear actuator comprises a double-acting hydraulic cylinder controllable by force.
17. The snow tiller of claim 13, wherein a plane on which the rotation axis lies and which passes through the first universal joint identifies a spatial region under the plane in which the pressure bar and the end of the flexible mat coupled to the casing are configured to be arranged.
18. The snow tiller of claim 13, wherein the pressure bar is coupled to the crossbar and to the flexible mat to enable a translatory movement of the pressure bar along a direction parallel to the longitudinal axis.
19. The snow tiller of claim 18, wherein: the pressure bar comprises a plurality of sections that are rigid and coupled to each other to enable relative oscillations between the sections with respect to the axis parallel to the longitudinal axis, and the crossbar is connected to each section by a connecting element having an articulated head shape.
20. The snow tiller of claim 13, wherein the crossbar is coupled to the pressure bar such that the crossbar and the pressure bar are configured to oscillate relative to an axis passing through the first universal joint and transverse to the longitudinal axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Further features and advantages of the present disclosure will be apparent from the following description of a non-limiting embodiment thereof, with reference to the attached flanges, wherein:
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] With reference to
[0029] Throughout the present description, the terms “front”, “rear”, “frontal”, and “side” will specifically refer to the traveling direction D1 of the snow tiller 1.
[0030] The snow tiller 1 comprises a frame 2; two tiller modules 3 (one of which is not shown) supported by the frame 2 and substantially aligned in a transverse direction with respect to the longitudinal axis A1; a finisher 4 at the rear; and an adjusting assembly 5 for each tiller module 3.
[0031] The frame 2 comprises a front hitch 6 configured to be connected to the drawbar (not shown in the figures); a support bar 7; two forks 8, each of which is configured to support a respective tiller module 3 and to enable small oscillations of the tiller module 3 around an axis parallel to the longitudinal axis A1.
[0032] Each tiller module 3 is suspended from the respective fork 8, so that a tiller module can oscillate, and is hinged to the adjacent tiller module 3. Such a configuration provides that the snow tiller 1 is able to adapt to the ground hollows transverse to the traveling direction D1.
[0033] With reference to
[0034] Each tiller module 3 comprises a motorised shaft 10, which rotates around a rotation axis A2 that extends in a direction substantially transversal to the longitudinal axis A1 and is equipped with a plurality of tools 11 configured to penetrate the snow cover; and a easing 12 arranged around the shaft 10 and configured to define a processing chamber 13 in which the snow is processed. In the embodiment shown, the casing 12 also has a bearing function to support the shall 10 and to connect the tiller module 3 to the frame 2.
[0035] The finisher 4 comprises a flexible mat 14 coupled to the casing 12 to define the continuation of the casing 12; and a pressure bar 15 that extends in a direction transverse to the longitudinal axis A1 and is fixed above the flexible mat 14.
[0036] The flexible mat 14 comprises a portion 16 that extends from the casing 12 to the pressure bar 15 and can be configured according to the distance between the pressure bar 15 and the casing 12.
[0037] With reference to
[0038] The adjusting assembly 5 comprises a crossbar 18 that extends transversely to the longitudinal axis A1 directly above the pressure bar 15, and is coupled to the pressure bar 15 and to the support 9.
[0039] In particular, the crossbar 18 is connected to each section 17 of the pressure bar 15 via respective connecting elements 19.
[0040] In a particular, non-limiting embodiment of the present disclosure, each connecting element 19 comprises an articulated head so as to enable relative small independent oscillations of each section 17 of the pressure bar 15 around a plurality of axes passing through the respective articulated head.
[0041] With reference to
[0042] The linear actuator 21 is a hydraulic cylinder selectively controlled by force and in a position to adjust the distance between the pressure bar 15 and the casing 12.
[0043] In a non-limiting example of the present disclosure, the snow tiller 1 comprises two adjusting assemblies 5, in which each linear actuator 21 is coupled to the respective fork 8 and in which each crossbar 18 is coupled to the respective support 9.
[0044] In more detail, a housing for the universal joint 20, such as a spherical joint, is located in the central portion of the body of the crossbar 18.
[0045] In a non-limiting embodiment of the present disclosure, the linear actuator 21 is a double-acting hydraulic cylinder the ends of which are coupled, respectively, to the frame 2 via a universal joint 22 and to the crossbar 18 via a universal joint 23.
[0046] In particular, a central portion of the crossbar 18 comprises a seat configured to be connected to the linear actuator 21 via the universal joint 23, which comprises an articulated head.
[0047] In use, the adjusting assembly 5 enables the selective adjustment of the distance between the pressure bar 15 and the casing 12, via adjusting the length of the linear actuator 21. The adjustment of the distance between the pressure bar 15 and the casing 12 enables the configuration of the portion 16 of flexible mat 14, between the pressure bar 15 and the casing 12, to be adjusted, thus varying the amount of snow present in the processing chamber 13. In particular, with reference to
[0048] In contrast, with reference to
[0049] In a particular embodiment, the length of the linear actuator 21 is manually controlled by the driver of the tracked vehicle via a special control interface arranged in the cab (not shown in the figures).
[0050] In a particular embodiment, the length of the linear actuator 21 is controlled automatically. In particular, the length of the linear actuator 21 is controlled according to some parameters detected by special sensors (not shown in the figures), such as according to the properties of the snow cover, the height of the shaft 10 with respect to the snow cover, and the position of the shaft 10 with respect to the casing 12.
[0051] With reference to
[0052] The adaptation of the pressure bar 15 to the snow cover conformation is also favoured by the connecting elements 19 comprising the articulated heads that make it possible for each section 17 to make relative small independent oscillations around a plurality of axes.
[0053] In a particular, non-limiting embodiment of the present disclosure, a plane P on which the rotation axis A2 lies and passing through the universal joint 20 identifies first spatial region above the plane P and a second spatial region below the plane P. The linear actuator 21 is arranged in the first spatial region, while the pressure bar 15 and the end of the flexible mat 14, which is connected to the casing 12, are arranged in the second spatial region. It should he appreciated that based on the possibility of adjusting the configuration of the portion 16 of the mat 14, the amount of snow contained in the processing chamber 13 can be selectively adjusted so as to enable sufficient snow accumulation, when processing a snow cover, in order to level out irregularities in the snow cover or to avoid excessive amounts of tilled snow in the processing chamber 13 when not required.
[0054] Variations can be made to the present disclosure without departing from the scope of the appended claims. As such, the present disclosure also covers embodiments that are not described in the detailed description and equivalent embodiments. Accordingly, various changes and. modifications to the presently disclosed embodiments will be apparent to those skilled in the art.