GROUND COMPACTOR
20250101692 ยท 2025-03-27
Inventors
Cpc classification
E01C19/268
FIXED CONSTRUCTIONS
E01C19/264
FIXED CONSTRUCTIONS
E01C19/238
FIXED CONSTRUCTIONS
International classification
E01C23/09
FIXED CONSTRUCTIONS
Abstract
A ground compactor for compacting ground material (10), comprising at least one compactor roller (22) rotatable on a machine frame about a roller rotation axis (W) substantially orthogonal to a longitudinal direction (L) of the compactor and a vertical direction (H) of the compactor and extending substantially in a transverse direction (Q) of the compactor, with an edge processing device (24) associated therewith for processing a side edge (38) of compacted ground material (10), wherein the edge processing device (24) comprises an edge processing disk (26) rotatably supported on a disk carrier (30) about an edge processing rotation axis (K), characterized in that the edge processing rotation axis (K) is set or can be set at a first angle of incidence (W1) with respect to the transverse direction (Q) of the compactor in the longitudinal direction (L) of the compactor.
Claims
1. A ground compactor for compacting ground material (10), comprising at least one compactor roller (22) rotatable on a machine frame about a roller rotation axis (W) substantially orthogonal to a longitudinal direction (L) of the compactor and a vertical direction (H) of the compactor and extending substantially in a transverse direction (Q) of the compactor, with an edge processing device (24) associated therewith for processing a side edge (38) of compacted ground material (10), wherein the edge processing device (24) comprises an edge processing disk (26) supported on a disk carrier (30) for rotation about an edge processing rotation axis (K), characterized in that the edge processing rotation axis (K) is set or can be set at a first angle of incidence (W1) with respect to the transverse direction (Q) of the compactor in the longitudinal direction (L) of the compactor.
2. The ground compactor according to claim 1, characterized in that the first angle of incidence (W1) is in the range of 5-15.
3. The ground compactor according to claim 1 or 2, characterized in that the first angle of incidence (W1) is variable.
4. The ground compactor according to any one of claims 1-3, characterized in that the edge processing rotation axis (K), starting from the disk carrier (30), is set in the direction away from the at least one compactor roller (22) at the first angle of incidence (W1) with respect to the compactor transverse direction (Q) in a compactor working movement direction (A) essentially parallel to the compactor longitudinal direction (L).
5. A ground compactor according to any one of claims 1-4, characterized in that the edge processing rotation axis (K) is set or can be set at a second angle of incidence (W2) with respect to the compactor transverse direction (Q) in the compactor vertical direction (H).
6. The ground compactor according to claim 5, characterized in that the second angle of incidence (W2) is in the range of 25-35.
7. The ground compactor according to claim 5 or 6, characterized in that the second angle of incidence (W2) is variable.
8. The ground compactor according to claim 1, characterized in that the edge processing rotation axis (K), starting from the disk carrier (30), is set in the direction away from the at least one compactor roller (32) at the second angle of incidence (W2) with respect to the compactor transverse direction (Q) in a compactor downward direction (U) essentially parallel to the compactor vertical direction (H).
9. A ground compactor according to any one of claims 1-8, characterized in that the edge processing disk (26) is supported on the disk carrier (30) in a radially inner region (28) with respect to the edge processing rotation axis (K) so as to be rotatable about the edge processing rotation axis (K) and has a circular outer peripheral rim (32) concentric with the edge processing rotation axis (K).
10. A ground compactor according to any one of claims 1-9, characterized in that the edge processing disk (26) has, on an edge processing side (44) facing the at least one compactor roller (22), an edge processing surface (46) which is non-orthogonal with respect to the edge processing rotation axis (K) at least in regions, or/and in that the edge processing disk (26) has, on a deflecting side (40) facing away from the at least one compactor roller (22), a deflecting surface (42) which is non-orthogonal with respect to the edge processing rotation axis (K) at least in regions.
11. The ground compactor according to claim 10, characterized in that the edge processing surface (46) is convexly curved at least in regions, or/and in that the deflecting surface (42) is concavely curved at least in regions.
12. The ground compactor according to claim 10 or 11, characterized in that the edge processing disk (26) has substantially the same thickness between the edge processing surface (46) and the deflecting surface (42) in all peripheral regions and radial regions.
13. The ground compactor according to any one of claims 1-12, characterized in that a scraper (50) for scraping off ground material (10) adhering to the edge processing disk (26) and overlapping it on its edge processing side (44) facing the compactor roller (22) and/or on its deflecting side (40) facing away from the compactor roller (22), is associated with the edge processing disk (26).
Description
[0021] The present invention is described in detail below with reference to the accompanying figures. In particular:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] It should be noted that the ground compactor 12 can be constructed differently than shown in
[0030] The structure of such an edge processing device 24 is described in detail below with reference to
[0031] The edge processing device 24 comprises an edge processing disk 26, which is supported in a central region 28 thereof on a disk carrier 30 so as to be rotatable about an edge processing rotation axis K and has a circular outer peripheral rim 32 concentric with the edge processing rotation axis K.
[0032] The disk carrier 30 is fixed to a swivel arm 34, which in turn can be swiveled about a swivel axis, for example parallel to the roller rotation axis D of the compactor roller 22, on a suspension element rotatably supporting the compactor roller 22 on the front carriage 20. The swiveling of the swivel arm 34 can be effected, for example, by a piston/cylinder device 36. By swiveling the swivel arm 34, the edge processing device 24 can be pivoted between its active position shown in
[0033]
[0034] By this setting of the edge processing rotation axis K at the first angle of incidence W1, as can be seen in
[0035] This processing operation of the ground material 10 by means of the edge processing disk 26 set at the first angle of incidence W1 leads to two significant advantages. On the one hand, the edge processing disk 26, which also rotates about the edge processing rotation axis K during edge processing, acts with its concavely curved deflecting surface 42 as a deflector or plow for the ground material 10 separated in the region of the side edge 38 and guides it outwards, i.e. laterally in the direction away from the compactor roller 22. This effect is particularly efficient due to the shell-like structure of the edge processing disk 26 with preferably the same thickness in all regions, in that in the lowest region of the edge processing disk 26 in the height direction, i.e. where it is in contact with the ground material 10 for processing the side edge 38, the edge processing surface 42 is approximately parallel to the longitudinal direction of the compactor or to the compactor working movement direction A. Against the compactor working movement direction A, the deflecting surface 42 curves outwards away from the compactor roller 22, so that when moving the ground compactor 12 and thus also the entire edge processing device 24 in the compactor working movement direction A, separated ground material 10 is moved away in the direction away from the already processed side edge 38 by the deflecting surface 42, which is curved outwards in the respective lower region, i.e. away from the compactor roller 22.
[0036] A second effect of setting the edge processing disk 26 at the first angle of incidence W1 is that, due to the circular geometry of the outer peripheral rim 32, a curvilinear transition with a radius R is formed in the transition from the side edge 38 to an adjacent, essentially horizontally oriented surface region 48 of the ground material 10. The radius R increases with increasing first angle of incidence W1.
[0037] By creating this curved transition between the side edge 38 and the adjoining surface region 48 of the ground material 10, a sharp-edged, for example right-angled transition is avoided. This leads to the particular advantage that if ground material, for example asphalt material, is to be deployed in this region, i.e. adjacent to the side edge 38 or in the surface region 48, in a further processing process, the formation of a cavity not filled with this material is avoided in this transition region.
[0038] The effects introduced by setting the edge processing rotation axis K at the first angle of incidence W1 can then be used even more efficiently if the edge processing rotation axis K is additionally also set at a second angle of incidence W2, starting from the disk carrier 30, with respect to the compactor transverse direction Q in the compactor vertical direction H, downwards, i.e. in a compactor downward direction U that is essentially parallel to the compactor vertical direction H. This setting also at the second angle of incidence W2 thus achieves an orientation of the edge processing rotation axis K such that it lies neither in an essentially horizontally oriented plane spanned by the compactor transverse direction Q and the compactor longitudinal direction L, nor in an essentially vertically oriented plane spanned by the compactor transverse direction Q and the compactor vertical direction H.
[0039] Since, in the edge processing device 24 described above, the edge processing disk 26, which is designed in the form of a plate or bowl, for example with such a structure also in the form of a truncated cone, also assumes the function of a lateral deflector for separated ground material 10, there is a fundamental risk that this ground material 10, for example provided by asphalt material, will adhere to the edge processing disk 26, in particular the deflecting surface 42 thereof. To avoid this, a scraper 50, shown in principle in
[0040] In the embodiment shown, the ground processing disk 26 is supported by the disk carrier 30 in a defined, unchangeable manner with regard to the angles of incidence W1, W2. In an alternative embodiment, the disk carrier could be constructed with two parts that can be moved or adjusted relative to one another, so that at least one of the angles of incidence W1, W2 is variable. The radius R and the deflection effect can be influenced primarily by changing the first angle of incidence W1. By changing the second angle of incidence W2, primarily the inclination of the side edge 38 can be influenced.
[0041] Finally, it should be pointed out that in the directional information indicated above, the longitudinal direction of the compactor L was considered in particular taking into account a ground compactor 10 moving in a straight line. In the case of a ground compactor 10 traveling in a curve, the longitudinal direction of the compactor L can be considered, for example, as the direction of extension orthogonal to the vertical direction of the compactor H and to the transverse direction of the compactor Q, which is also orthogonal to a roller rotation axis D considered in each case in conjunction with an edge processing device 24.