Height Adjustment Device and Robotic Mower Comprising a Height Adjustment Device
20220110245 · 2022-04-14
Inventors
Cpc classification
F16H25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B37/0892
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/0233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01D34/64
HUMAN NECESSITIES
International classification
Abstract
The present disclosure relates to a height adjustment device (1) comprising a height adjustment screw (3) having outer threads (5) and being oriented substantially vertically and arranged rotatably in relation to a chassis (7), and an adjustment nut (9) connected to a bracket (11) and comprising inner threads (13) for engagement with the threads (5) of the adjustment screw (3), such that a rotary movement of the height adjustment screw (3) results in a vertical linear movement of the bracket (11). The adjustment nut comprises a first part (15) and a second part (17) which together enclose the adjustment screw (3), wherein the first part (15) being adapted to be attached to the second part. The present disclosure also considers a robotic mower (101) comprising such a height adjustment device.
Claims
1. A height adjustment device comprising a height adjustment screw having outer threads and being oriented substantially vertically and arranged rotatably in relation to a chassis, and an adjustment nut connected to a bracket and comprising inner threads for engagement with the outer threads of the height adjustment screw, such that a rotary movement of the height adjustment screw results in a vertical linear movement of the bracket), wherein the adjustment nut comprising comprises a first part and a second part which together enclose the height adjustment screw, the first part being adapted to be attached to the second part.
2. The height adjustment device according to claim 1, wherein the inner threads of the adjustment nut are located on one of the first and second parts while the other of the first and second parts is free from the inner threads engaging with the height adjustment screw, and the first part is adapted to be attached to the second part by a mutual linear movement parallel with a center axis of the height adjustment screw.
3. The height adjustment device according to claim 2, wherein the inner threads are located at the first part which is connected to the bracket and the second part comprises a corresponding, partly cylindrical surface without threads.
4. The height adjustment device according to claim 2, wherein the first part comprises grooves, and the second part comprises tongues, which are insertable in the grooves in a direction parallel to the center axis.
5. The height adjustment device according to claim 2, wherein a snap function is provided to keep the first and second parts in engagement at an end of said linear movement.
6. The height adjustment device according to claim 1, wherein the height adjustment screw is fitted between first and second recesses in the chassis.
7. The height adjustment device according to claim 1, wherein the height adjustment screw comprises at least one thread stop that prevent further movement beyond a defined end position.
8. The height adjustment device according to claim 2, wherein the height adjustment screw is made up from two halves, joined along the screw center axis.
9. The height adjustment device according to claim 1, wherein the bracket is made in one piece with either of the first and second parts.
10. The height adjustment device according to claim 1, wherein the adjustment nut and the height adjustment screw are made in a plastic material such as Polyoxymethylene, POM.
11. A robotic mower comprising a chassis, wheels carrying the chassis, and a cutting arrangement suspended by the chassis, wherein the cutting arrangement is arranged in the chassis with a height adjustment device, the height adjustment device comprising: a height adjustment screw having outer threads and being oriented substantially vertically and arranged rotatably in relation to the chassis, and an adjustment nut connected to a bracket and comprising inner threads for engagement with the outer threads of the height adjustment screw, such that a rotary movement of the height adjustment screw results in a vertical linear movement of the bracket, wherein the adjustment nut comprises a first part and a second part which together enclose the height adjustment screw, the first part being adapted to be attached to the second part.
12. The robotic mower according to claim 11, wherein the height adjustment screw is arranged in the chassis, being fitted in between first and second recesses therein.
13. The robotic mower according to claim 11, wherein a driving electric motor is attached to and enclosed by to a cutting arrangement casing, which is slideable with regard to the chassis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
DETAILED DESCRIPTION
[0018] The present disclosure relates to a height adjustment device that, for instance, can be used in a robotic lawn mower 101 as illustrated in
[0019] The cutting arrangement 107, 113 is adjustable upwards and downwards with regard to the lawn surface, as defined by the lawn mower wheels 103, 105 when resting on the lawn surface. To this end, the cutting disc 107 and the driving electric motor 109 driving the cutting disc are attached to and, in the motor's 109 case, enclosed by to a cutting arrangement casing 113. The casing 113 in turn is arranged slideably with regard to the chassis, e.g. suspended by guides therein, or by being arranged in an opening in the casing 113 having a complementing inner shape. For instance, the casing 113 may be cylindrical and run in a cylindrical recess having an inner diameter roughly corresponding to the outer diameter of the casing 113.
[0020] The height adjusting device which is used for making the cutting arrangement 107, 113 move upwards and downwards is illustrated in greater detail in the enlarged portion of
[0021] The height adjustment device comprises a screw 3 which is oriented substantially vertically as defined by the usual orientation of the mower standing on a flat horizontal lawn surface. The screw 3 is arranged rotatably in relation to the chassis 7, in the illustrated case it is fitted inside the chassis 7, its both ends being supported and affixed in a rotatable manner by parts of the chassis, e.g. being inserted in cylindrical recesses 19 therein, as illustrated. The screw comprises an outer thread 5 over most of its outer surface and, in the illustrated case, comprises a cog 21 that can be run by a servo, a stepping motor, or the like (not shown). Optionally the cog 21 may be integrated with the screw 3, i.e. made in one piece therewith. The screw 3 may be hollow and may be made up by two halves 3a, 3b, each having a cog 21 half and being joined along the length of the screw 3vv as best seen in
[0022] The height adjustment device further comprises an adjustment nut, a part of which 15 is shown in
[0023] The nut comprises inner threads 13 which is in engagement with the outer threads 5 of the adjustment screw 3. Thereby, a rotary movement of the height adjustment screw 3 results in a vertical linear movement of the bracket 11. By driving the cog 21 with a stepping motor, for instance, to rotate the screw 3, it is therefore possible to make the bracket 11 and thereby the cutting arrangement to move upwards and downwards with regard to the lawn surface.
[0024]
[0025] This could be accomplished in various ways such as gluing the first part 15 to the second part 17, attaching the first part 15 to the second part 17 by means of screws, or having one part of the nut connected to the other by means of a hinge with a snap lock at the opposing side. However, it may preferably be achieved by means of a sliding snap function as will be shown, as this provides an efficient assembling of the parts 15, 17.
[0026] In the example illustrated in
[0027] In the illustrated case, the screw 3, nut 9 and bracket 11 are made in Polyoxymethylene (POM), which is considered a suitable material thanks to its high stiffness, dimensional stability, and low friction. However, other plastic materials or metals such as steel aluminum, magnesium, or zinc, for instance, may be considered.
[0028] The first and second parts are adapted to be attached to each other by a mutual linear movement, parallel with the center axis 23 of the adjustment screw. As illustrated, the first nut part 15 may then comprise grooves 25 at each side of the threaded part 13. The second part 17 may comprise corresponding tongues 27 that fit in those grooves 25 when inserted in a direction parallel with the screw axis 23, optionally in a form locking manner.
[0029] There may be provided locking features, such as illustrated in the enlarged portion of
[0030] There may be provided thread stops 33 at one or both thread 5 ends that prevent further rotation of the screw 3 and correspondingly any further linear movement of the screw 3 beyond a defined end position. The thread stops 33 may be a diversion of the thread from the helix-shape of the remainder of the thread 5 or simply an obstacle in the thread 5 that will become stuck against the corresponding inner thread of the nut 9. In
[0031] The present disclosure is not limited to the above-described examples and may be varied and altered in different ways within the scope of the appended claims. For instance, it would be possible to change the location of the adjustment screw such that it is instead located in the cutting device. Further the tongues and grooves of the nut parts could change places or be replaced with other corresponding means such as pins fitting into openings, for instance.