The present disclosure relates to a tracked vehicle for the preparation of ski trails.
In particular, the present disclosure relates to a tracked vehicle comprising a frame; two sets of wheels arranged on opposite sides of the frame; two tracks arranged around the respective sets of wheels; and at least one support device for each set of wheels coupled to at least two wheels of the set of wheels and connected to the frame to couple the at least two wheels of the set of wheels to the frame.
A disadvantage of certain tracked vehicles of certain of the prior art is that the tracked vehicle has unwanted vibrations.
One purpose of the present disclosure is to manufacture a tracked vehicle capable of reducing certain of the drawbacks of certain of the prior art.
According to the present disclosure a tracked vehicle for preparing ski trails, the tracked vehicle, is manufactured that comprises:
Such a configuration of the present disclosure provides that the vibrations transmitted from the support device to the frame are reduced by filling the cavity at least partially with the metal foam. This configuration enables one to modify and select the vibration modes of the support device and, consequently, how the vibrations are transmitted from the wheels to the frame that the support device connects to each other.
According to certain embodiments, the inner cavity is divided into sections, and at least one of the sections is filled with metal foam.
According to certain embodiments, the density of the metal foam is within the range between 0.4 g/cm3 and 1 g/cm3.
It should be appreciated that in accordance with the present disclosure, one can adjust the resistance of the support device and its natural frequency and the vibration modes by varying the value of the density of the metal foam. That is, by increasing the density of the metal foam, the natural frequency increases and the frequencies of the vibration modes increase. In a non-limiting embodiment of the present disclosure, the density of the metal foam is 0.7 g/cm3.
According to another embodiment, the section filled with metal foam extends along the inner height of the main body or along the inner length of the main body.
According to another embodiment, the sections filled with metal foam are at least two, wherein one extends along the inner height of the main body and the other extends along the inner length of the main body.
According to another embodiment, there are at least two sections filled with metal foam, wherein the density of the metal foam of one section is different from the density of metal foam of the other section.
According to another embodiment, the at least one section filled with metal foam extends at least partially along the edges of the main body, in particular the section extends completely along the edge of the main body on the inside.
According to another embodiment, the support device comprises three openings passing through the width of the device, each of which is configured to couple a wheel or an articulated joint to the main outer body, and at least one section filled with the metal foam extends around one of the three openings. In certain embodiments, the support device comprises three sections filled with metal foam, wherein each section filled with metal foam wraps around a respective opening.
According to another embodiment, the support device comprises an articulated connection joint, which is housed within one of the openings of the body of the support device, and is coupled to the frame to couple the support device to the frame in an articulated way.
According to another embodiment, the at least two of the set of wheels are support wheels, in particular freely rotating wheels, and are coupled to the support device through two of the three openings, in particular the two end openings.
According to another embodiment, the set of wheels comprises a drive wheel, such as a rear wheel; and a track-adjustment wheel, such as a front wheel having a mobile position with respect to the frame to tension the track.
According to another embodiment, the at least two wheels are intermediate wheels between the track-adjustment wheel and the drive wheel, such wheels are freely rotating wheels.
According to another embodiment, the support device is connected to the frame via a shock-absorber assembly, in particular the shock-absorber assembly is interposed between the support device and the frame to certain embodiments, the shock-absorber assembly is of variable stiffness and/or variable geometry; in particular, the shock-absorber assembly comprises is hydraulic cylinder such as of the double-acting type. in various embodiments, the shock-absorber assembly is mechanical and/or hydraulic and/or electromagnetic and/or of the air-suspension type, or any combination of the above.
According to another embodiment, the support device has a first support element, supporting one of the at least two wheels of the set of wheels; and a second support element, supporting another of the at least two wheels of the set of wheels; and wherein the first support element and the second support element are connected to each other either in an elastically flexible way or via a first articulated joint at a first point. In certain embodiments, the support device comprises at least one additional articulated joint to couple the first element with the second element in an articulated way.
According to another embodiment, the first and second support elements are connected to each other via a shock absorber, in particular at one second point, at least, that is different from the first point. In various embodiments, the shock absorber is of variable stiffness and/or variable geometry and the shock absorber is mechanical and/or hydraulic and/or electromagnetic and/or of the air-suspension type, or any combination of the above.
According to another embodiment, the articulated connection joint is partly housed on the first and/or second support element.
Other features and advantages of the present disclosure will be more apparent from the following description of a non-limiting embodiment thereof, with reference to the figures, wherein:
With reference to
With reference to
With reference to
Each set of wheels 3 comprises a front wheel 3a, a rear wheel 3b, and four central wheels 3c arranged between the front wheel 3a and the rear wheel 3b. The wheel 3b is a drive wheel.
With reference to
With reference to
The track configurations 4 depend on the configurations of the respective sets of wheels 3. In particular, each set of wheels 3 is adjustable between two limit configurations to adjust a portion of the track in contact with the snowpack M.
With reference to
In the case shown in
In addition, each support device 15 couples the respective two central wheels 3c of the set of wheels 3 in an articulated way to the frame 2 to couple the at least two central wheels 3c of the set of wheels 3 to the frame 2.
With reference to certain of the figures, each support device 15 comprises three openings 23 passing through the width of the support device 15, in particular holes 23 extending along the width of the support device 15, Each through-opening 23 is configured to couple a wheel or articulated joint to the support device 15.
The support device 15 comprises an articulated connection joint 17, which, in certain embodiments, is housed within one of the openings 23 of the main body 18 of the support device 15, and is coupled to the frame 2 for coupling, in an articulated way, the support device 15 to the frame 2.
With reference to
With reference to
In the non-limiting embodiment shown in
In another embodiment of the present disclosure (not shown in the figures), for example, it is possible to fill one of the sections—either the one extending along the internal height of the main body or the one extending along the internal length of the main body—with metal foam.
In another embodiment of the present disclosure (not shown in the figures), there are more than two sections that extend in various directions in the inner cavity of the support device and one or more of these sections can be filled with metal foam depending on the vibration frequencies and/or vibration modes to attenuate.
According to another embodiment of the present disclosure (not shown in the figures), one section filled with metal foam extends at least partially along the edges of the main body, in particular the section extends completely along the edge of the main body on the inside.
In addition, it is possible to fill one or more sections that have different directions with metal foam in the inner cavity depending on the desired stifthess to give the support device, or to strengthen specific areas of the support device, In addition, the sections to be filled vary according to the total weight required for the support device.
In addition, the density of the metal foam is within a range between 0.4 g/cm3 and 1 g/cm3. In this way, the resistance of the support device and its natural frequency and vibration modes can be adjusted by varying the density of the metal foam. That is, by increasing the density of the metal foam, the natural frequency increases and the frequencies of the vibration modes increase. in a non-limiting embodiment of the present disclosure, the density of the metal foam is 0.7 g/cm3.
In another embodiment of the present disclosure, there are at least two sections filled with metal foam, wherein the density of the metal foam of one section is different from the density of metal foam of the other section.
In accordance with the non-limiting embodiment of the present disclosure shown in
According to the present disclosure, any of the embodiments described above may be chosen depending on the vibration frequencies and/or vibration modes to, in different embodiments, dampen, and/or areas to strengthen the support device, and/or the desired weight of the support device, and/or the desired stiffness of the support device.
It should be appreciated that in accordance with the present disclosure, the vibrations transmitted from the support device to the frame are reduced by filling the cavity at least partially with the metal foam. Such a configuration enables one to modify and select the vibration modes of the support device and, consequently, how the vibrations are transmitted from the wheels to the frame that the support device connects to each other.
In the non-limiting embodiment of the present disclosure shown in
In the non-limiting embodiment of
The shock-absorber assembly 60 comprises a hydraulic cylinder 61, such as the double-acting type. In different embodiments, the shock-absorber assembly 60 can be of the mechanical and/or hydraulic and/or electromagnetic and/or air suspension type, or any combination of the above.
In the embodiment shown in
Furthermore, it is evident that the present disclosure also covers embodiments not described in the detailed description and equivalent embodiments, which fall within the scope of protection of the appended claims. That is, the scope of protection of the present disclosure is defined by the claims which cover variants not specifically described and equivalent embodiments. Accordingly, various changes and modifications to the presently disclosed embodiments will be apparent to those skilled in the art.
Number | Date | Country | Kind |
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102018000009419 | Oct 2018 | IT | national |
This application is a national stage application of PCT/IB2019/058702, filed on Oct. 11, 2019, which claims the benefit of and priority to Italian Patent Application No. 102018000009419, filed on Oct. 12, 2018, the entire contents of which are each incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2019/058702 | 10/11/2019 | WO | 00 |