CUTTING ARRANGEMENT AND LAWNMOWER
20240188491 ยท 2024-06-13
Inventors
Cpc classification
International classification
Abstract
A cutting arrangement (2) configured to be attached to a lawnmower (1) to cut vegetation is disclosed. The cutting arrangement (2) comprises a cutting unit (4) configured to rotate in a first rotational direction (R) around a rotation axis (Ax) during operation, a cutting guard (3) comprising a top surface (13) and side walls (34), and a centre body (8) protruding from the 5 top surface (13). The centre body (8) is arranged such that the distance (d11, d12, d13) from the rotation axis (Ax) to radially outer delimiting surfaces (8.1, 8.2, 8.3) of the centre body (8) decreases continuously, seen in the first rotational direction (R), within a first angle (a1) having its vertex (v) at the rotation axis (Ax). The first angle (a1) exceeds 90 degrees or exceeds 180 degrees. The present disclosure further relates to a lawnmower (1) comprising 10 a cutting arrangement (2).
Claims
1. A cutting arrangement configured to be attached to a lawnmower to cut vegetation, wherein the cutting arrangement comprises: a cutting unit configured to rotate in a first rotational direction around a rotation axis during operation, a cutting guard comprising a top surface and side walls, and a centre body protruding from the top surface, wherein the centre body is arranged such that a distance from the rotation axis to radially outer delimiting surfaces of the centre body decreases continuously, seen in a first rotational direction, within a first angle having its vertex at the rotation axis, and wherein the first angle exceeds 90 degrees, or exceeds 180 degrees.
2. The cutting arrangement according to claim 1, wherein the distance from the rotation axis to a radially outer delimiting surface of the centre body at a first side of the first angle is at least 15% greater, or at least 35% greater, than the distance from the rotation axis to a radially outer delimiting surface of the centre body at a second side of the first angle.
3. The cutting arrangement according to claim 1, wherein the distance from the rotation axis to radially outer delimiting surfaces of the centre body decreases with a substantially constant rate within at least a portion of the first angle.
4. The cutting arrangement according to claim 1, wherein the centre body is arranged such that a largest distance from the rotation axis to a first radially outer delimiting surface of the centre body is at least 30% greater than a smallest distance from the rotation axis to a second radially outer delimiting surface of the centre body (8).
5. The cutting arrangement according to claim 1, wherein a volume of a space delimited by radially inner delimiting surfaces of the side walls and radially outer delimiting surfaces of the centre body increases continuously within the first angle seen in the first rotational direction.
6. The cutting arrangement according to claim 1, wherein the cutting guard is arranged such that the distance between the radially outer delimiting surfaces of the centre body and radially inner delimiting surfaces of the side walls increases continuously within the first angle seen in the first rotational direction.
7. The cutting arrangement according to claim 1, wherein the cutting guard is arranged such that the distance from the rotation axis to radially inner delimiting surfaces of the side walls increases continuously within the first angle seen in the first rotational direction.
8. The cutting arrangement according to claim 1, wherein the cutting guard comprises a discharge opening arranged to eject clippings in a main discharge direction from the cutting guard.
9. The cutting arrangement according to claim 8, wherein the cutting arrangement is configured to be attached to the lawnmower such that a forward direction of the cutting arrangement coincides with a forward direction of the lawnmower, and wherein a main discharge direction is transversal to the forward direction of the cutting arrangement.
10. The cutting arrangement according to claim 9, wherein an angle between the main discharge direction and the forward direction of the cutting arrangement is within the range of 30-170 degrees.
11. The cutting arrangement according to claim 8, wherein the cutting arrangement comprises a delimiting wall extending between the centre body and the side walls of the cutting guard, and wherein the delimiting wall forms a delimiting surface of an outlet portion of the discharge opening.
12. The cutting arrangement according to claim 1, wherein the centre body is arranged such that the distance from the rotation axis to radially outer delimiting surfaces of the centre body increases, seen in the first rotational direction, within a second angle having its vertex at the rotation axis.
13. The cutting arrangement according to claim 12, wherein a volume of a space delimited by radially inner delimiting surfaces of the side walls and the radially outer delimiting surfaces of the centre body increases within the second angle seen in the first rotational direction.
14. The cutting arrangement according to claim 8, wherein a tangential moving direction of the cutting unit, upon rotation of the cutting unit in the first rotational direction, coincides with the main discharge direction at a location within the second angle.
15. The cutting arrangement according to claim 1, wherein the cutting arrangement is configured to be attached to the lawnmower such that a forward direction of the cutting arrangement coincides with a forward direction of the lawnmower, and wherein an angle between the forward direction of the cutting arrangement and a second side of the first angle is less than 20 degrees.
16. The cutting arrangement according to claim 1, wherein the radially outer delimiting surfaces of the centre body extends in directions substantially parallel to the rotation axis, or wherein radially inner delimiting surfaces of the side walls extend in directions substantially parallel to the rotation axis.
17. (canceled)
18. The cutting arrangement according to claim 1, wherein a height of the radially outer delimiting surfaces of the centre body is at least 20% of a height of radially inner delimiting surfaces of the side walls.
19. The cutting arrangement according to claim 1, wherein the cutting unit comprises one or more surfaces being angled relative to a rotation plane of the cutting unit to generate an airflow in a direction transverse to the rotation plane during rotation of the cutting unit in the first rotational direction.
20. The cutting arrangement according to claim 19, wherein the surfaces are angled relative to the rotation plane to generate an airflow in a direction towards the top surface of the cutting guard during rotation of the cutting unit in the first rotational direction.
21. The cutting arrangement according to claim 1, wherein the cutting unit is configured to rotate such that one or more radially outer portions of the cutting unit orbits in a circular path inside the cutting guard, and wherein a first radial distance from the circular path to a radially inner delimiting surface of the front section of the cutting guard is greater than a second radial distance from the circular path to a radially inner delimiting surfaces of the rear section of the cutting guard.
22. A lawnmower comprising the cutting arrangement of claim 1, wherein the lawnmower is a self-propelled robotic lawnmower configured to navigate and cut grass in an area in an autonomous manner.
23. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0068] Various aspects of the invention, including its particular features and advantages, will be readily understood from the example embodiments discussed in the following detailed description and the accompanying drawings, in which:
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
DETAILED DESCRIPTION
[0076] Aspects of the present invention will now be described more fully. Like numbers refer to like elements throughout. Well-known functions or constructions will not necessarily be described in detail for brevity and/or clarity.
[0077]
[0078] The lawnmower 1 comprises a lawnmower body 30 and a number of lawnmower support members 41, 41 each configured to abut against a ground surface 32 in a first plane P1 during operation of the lawnmower 1 to support the lawnmower body 30. The lawnmower body 30, as referred to herein, may also be referred to as a lawnmower chassis. Accordingly, the first plane P1 will extend along a ground surface 32 when the lawnmower 1 is positioned on a flat ground surface 32 in an intended use position thereon as is illustrated in
[0079] According to the illustrated embodiments, the lawnmower support members 41, 41 is wheels 41, 41 of the lawnmower 1. According to the illustrated embodiments, the lawnmower 1 comprises four wheels 41, 41, namely two drive wheels 41 and two support wheels 41. The drive wheels 41 of the lawnmower 1 may each be powered by an electrical motor of the lawnmower 1 to provide motive power and/or steering of the lawnmower 1.
[0080] In
[0081] According to the illustrated embodiments, the drive wheels 41 of the lawnmower 1 are non-steered wheels having a fix rolling direction in relation to the lawnmower body 30. The respective rolling direction of the drive wheels 41 of the lawnmower 1 is substantially parallel to the longitudinal direction Id of the lawnmower 1. According to the illustrated embodiments, the support wheels 41 are non-driven wheels. Moreover, according to the illustrated embodiments, the support wheels 41 can pivot around a respective pivot axis such that the rolling direction of the respective support wheel 41 can follow a travel direction of the lawnmower 1.
[0082] As understood from the above, when the drive wheels 41, 41 of the lawnmower 1 are rotated at the same rotational velocity in a forward rotational direction, and no wheel slip is occurring, the lawnmower 1 will move in the forward direction fd indicated in
[0083] According to the illustrated embodiments, the lawnmower 1 may be referred to as a four-wheeled rear wheel driven lawnmower 1. According to further embodiments, the lawnmower 1 may be provided with another number of wheels 41, 41, such as three wheels. Moreover, according to further embodiments, the lawnmower 1 may be provided with another configuration of driven and non-driven wheels, such as a front wheel drive or an all-wheel drive.
[0084] According to the illustrated embodiments, the lawnmower 1 comprises a control arrangement 28. The control arrangement 28 may be configured to control propulsion of the lawnmower 1, and steer the lawnmower 1, by controlling electrical motors of the lawnmower 1 arranged to drive the drive wheels 41 of the lawnmower 1. According to further embodiments, the control arrangement 28 may be configured to steer the lawnmower 1 by controlling the angle of steered wheels of the lawnmower 1. According to still further embodiments, the robotic lawnmower may be an articulated robotic lawnmower, wherein the control arrangement 28 may be configured to steer the robotic lawnmower by controlling the angle between frame portions of the articulated robotic lawnmower.
[0085] The control arrangement 28 may be configured to control propulsion of the lawnmower 1 and may be configured to steer the lawnmower 1 so as to navigate the lawnmower 1 in an area to be operated. The lawnmower 1 may further comprise one or more sensors arranged to sense a magnetic field of a wire, and/or one or more positioning units, and/or one or more sensors arranged to detect an impending or ongoing collision event with an object. In addition, the lawnmower 1 may comprise a communication unit connected to the control arrangement 28. The communication unit may be configured to communicate with a remote communication unit to receive instructions therefrom and/or to send information thereto. The communication may be performed wirelessly over a wireless connection such as the internet, or a wireless local area network (WLAN), or a cellular network, or a wireless connection for exchanging data over short distances using short-wavelength, i.e. ultra-high frequency (UHF) radio waves in the industrial, scientific, and medical (ISM) band from 2.4 to 2.486 GHz.
[0086] The control arrangement 28 may be configured to control propulsion of the lawnmower 1, and steer the lawnmower 1, so as to navigate the lawnmower 1 in a systematic and/or random pattern to ensure that an area is completely covered, using input from one or more of the above described sensors and/or units. Furthermore, the lawnmower 1 may comprise one or more batteries arranged to supply electricity to components of the lawnmower 1. As an example, the one or more batteries may be arranged to supply electricity to electrical motors of the lawnmower 1, such as one or more electric propulsion motors, by an amount controlled by the control arrangement 28. The lawnmower 1 comprises a cutting arrangement 2. The cutting arrangement 2 is configured to cut vegetation, such as leaves, as is further explained herein.
[0087] In
[0088]
[0089] According to the embodiments illustrated in
[0090] The cutting guard 3 comprises a top surface 13 and side walls 34. The top surface 13 of the cutting guard 3 faces the first plane P1 indicated in
[0091] As can be seen in
[0092]
[0093]
[0094] As can be seen in
[0095] Moreover, a rotation plane pr of the cutting unit 4 is indicated in
[0096] The cutting arrangement 2 is configured such that the rotation plane pr of the cutting unit 4 is substantially parallel to a ground surface 32, and thus also to the first plane P1 referred to above, when a lawnmower 1 comprising the cutting arrangement 2 is positioned in an intended upright use position on a flat ground surface 32. The feature that the rotation plane pr of the cutting unit 4 is substantially parallel to a ground surface 32, and thus also to the first plane P1, may encompass that the angle between the rotation plane pr and the ground surface 32 is less than 15 degrees, or less than 10 degrees when a lawnmower 1 comprising the cutting arrangement 2 is positioned in an intended upright use position on a flat ground surface 32. Likewise, the feature that the rotation plane pr of the cutting unit 4 is substantially parallel to the first plane P1, may encompass that the angle between the rotation plane pr and the first plane P1 is less than 15 degrees, or less than 10 degrees.
[0097] Thus, as understood from the above, according to the illustrated embodiments, the rotation axis Ax is substantially perpendicular to the first plane P1 and thus also substantially perpendicular to a ground surface 32 when the lawnmower 1 is positioned onto a flat ground surface 32 in the intended use position. According to some embodiments, the angle between the rotation axis Ax and the first plane P1 may be within the range of 82 degrees-98 degrees or may be within the range of 85 degrees-95 degrees.
[0098] As is indicated in
[0099] This is because the decreasing radius of the centre body 8 in the rotational direction R of the cutting unit 4 can improve the generation of airflow and the generation of negative pressure inside the cutting guard 3 while reducing the rotational resistance of the cutting unit 4 and hence the energy consumption of the cutting unit 4. In addition, since the cutting arrangement 3 provides conditions for a more efficient generation of airflow and generation of negative pressure inside the cutting guard 3, a cutting arrangement 2 is provided having conditions for an improved cutting result, as is further explained herein.
[0100] The feature that the first angle a1 has its vertex v at the rotation axis Ax of the cutting unit 4 means that the first angle a1 is measured at the rotation axis Ax of the cutting unit 4. Moreover, the first angle a1 is measured between a first side s1 thereof and a second side s2 thereof. The first angle a1 may be measured in the rotation plane pr of the cutting unit 4 or in a plane parallel to the rotation plane pr of the cutting unit 4.
[0101] According to the illustrated embodiments, the first angle a1 is approximately 271 degrees. According to further embodiments, the first angle a1 may be within one of the following ranges: 90-340 degrees, 180-340 degrees, 90-305 degrees, 180-305 degrees, or 250-290 degrees. In this manner, an efficient generation of airflow and a negative pressure inside the cutting guard 3 can be ensured.
[0102] According to the illustrated embodiments, the distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8 at the first side s1 of the first angle a1 is approximately 63% greater, than the distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.3 of the centre body 8 at the second side s2 of the first angle a1. According to further embodiments, the distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8 at the first side s1 of the first angle a1 may be at least 15% greater, or at least 35% greater, than the distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.3 of the centre body 8 at the second side s2 of the first angle a1. Thereby, it can be ensured that the cutting arrangement 2 can generate airflow and a negative pressure inside the cutting guard 3 in an energy efficient manner to efficiently lift grass towards the cutting unit 4, as is further explained herein.
[0103] According to the illustrated embodiments, the distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8 at the first side s1 of the first angle a1 is the largest distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8. Likewise, the distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.3 of the centre body 8 at the second side s2 of the first angle a1 is the smallest distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8. Thus, according to the illustrated embodiments, the centre body 8 is arranged such that the largest distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8 is approximately 63% greater than the smallest distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.3 of the centre body 8. According to further embodiments, the centre body 8 may be arranged such that the largest distance d11 from the rotation axis Ax to a radially outer delimiting surface 8.1 of the centre body 8 is at least 30% greater, or at least 40% greater, than the smallest distance d13 from the rotation axis Ax to a radially outer delimiting surface 8.3 of the centre body 8.
[0104] According to the illustrated embodiments, the distance d11, d12, d13 from the rotation axis Ax to radially outer delimiting surfaces 8.1, 8.2, 8.3 of the centre body 8 decreases with a substantially constant rate within a large proportion of the first angle a1 as seen in the first rotational direction R. In
[0105] The distances d11, d11, d12, d13 from the rotation axis Ax to radially outer delimiting surfaces 8.1, 8.2, 8.3, 8.11 of the centre body 8, as referred to herein, may be measured in the rotation plane pr of the cutting unit 4, or in a plane parallel to the rotation plane pr of the cutting unit 4, in a radial direction rd of the cutting unit 4.
[0106] According to the illustrated embodiments, the volume V of a space 36 delimited by radially inner delimiting surfaces 34.1-34.5 of the side walls 34 and radially outer delimiting surfaces 8.1-8.4 of the centre body 8 increases continuously within the first angle a1 seen in the first rotational direction R. Thereby, further efficient aerodynamic properties can be provided inside the cutting guard 3.
[0107] Moreover, as is indicated in
[0108] Furthermore, according to the illustrated embodiments, the cutting guard 3 is arranged such that the distance d18, d19 from the rotation axis Ax to radially inner delimiting surfaces 34.1, 34.4 of the side walls 34 increases continuously within the first angle a1 seen in the first rotational direction R. Thereby, even further efficient aerodynamic properties can be provided inside the cutting guard 3. In this manner, it can be ensured that an airflow and a negative pressure inside the cutting guard 3 can be generated in an efficient manner to lower the energy consumption of the cutting arrangement 2 and improve the cutting result thereof. The distance d18, d19 from the rotation axis Ax to radially inner delimiting surfaces 34.1, 34.4 may be measured in the rotation plane pr of the cutting unit 4, or in a plane parallel to the rotation plane pr of the cutting unit 4, in a radial direction rd of the cutting unit 4.
[0109] As can be seen in
[0110] As indicated above, the cutting arrangement 2 is configured to be attached to the lawnmower 1 such that a forward direction fd of the cutting arrangement 2 coincides with a forward direction fd of the lawnmower 1. As can be seen in
[0111] As can be seen in
[0112] In
[0113] The feature that the second angle a2 has its vertex v at the rotation axis Ax of the cutting unit 4 means that the second angle a2 is measured at the rotation axis Ax of the cutting unit 4. Moreover, the second angle a2 is measured between a first side s1 thereof and a second side s2 thereof. According to the illustrated embodiments, the second side s2 of the first angle a1 constitutes a first side s1 of the second angle a2. Likewise, the first side s1 of the first angle a1 constitutes a second side s2 of the second angle a2. The second angle a2 may be measured in the rotation plane pr of the cutting unit 4 or in a plane parallel to the rotation plane pr of the cutting unit 4.
[0114] According to the illustrated embodiments, the second angle a2 is approximately 89 degrees. According to further embodiments, the second angle a2 may be within one of the following ranges: 10-270 degrees, 20-180 degrees, 55-270 degrees, 55-180 degrees, or 70-110 degrees. Thus, as understood from the above described, according to the illustrated embodiments, the sum of the first and second angles a1, a2 is approximately 360 degrees. According to further embodiments, the sum of the first and second angles a1, a2 may be within the range of 320-360 degrees.
[0115] According to the illustrated embodiments, the volume V of a space 36 delimited by radially inner delimiting surfaces 34.3, 34.5 of the side walls 34 and the radially outer delimiting surfaces 8.3, 8.4, 8.5 of the centre body 8 increases within the second angle a2 seen in the first rotational direction R. Thereby, conditions are provided for generating airflow and a negative pressure inside the cutting guard 3 in a further efficient manner, while ensuring that clippings can be discharged from the cutting guard 3 in an efficient manner.
[0116] In
[0117] According to the illustrated embodiments, an angle a3 between the forward direction fd of the cutting arrangement and the second side s2 of the first angle a1 is approximately 3 degrees. Moreover, as indicated above, according to the illustrated embodiments, the second side s2 of the first angle a1 constitutes a first side s1 of the second angle a2. Thereby, a smooth transition is provided between the area of the centre body 8 in which the distance d12 from the rotation axis Ax to radially outer delimiting surfaces 8.2 of the centre body 8 decreases and the area of the centre body 8 in which the distance d22 from the rotation axis Ax to radially outer delimiting surfaces 8.4 of the centre body 8 increases as seen in the first rotational directing R.
[0118] The feature that the angle a3 between the forward direction fd of the cutting arrangement 2 and the second side s2 of the first angle a1 is approximately 3 degrees means that the second side s2 of the first angle a1 substantially coincides with the forward direction fd of the cutting arrangement 2. In other words, according to the illustrated embodiments, the centre body 8 is arranged such that the area thereof in which the distance d21 from the rotation axis Ax to a radially outer delimiting surfaces 8.3 of the centre body 8 at which the distance d21 transitions from a decreasing distance d21 to an increasing distance d21, as seen in the first rotational directing R, is positioned to face substantially in the forward direction fd of the cutting arrangement 2. According to further embodiments, the angle a3 between the forward direction fd of the cutting arrangement and the second side s2 of the first angle a1 may be less than 40 degrees or may be less than 20 degrees. The angle a3 between the forward direction fd of the cutting arrangement and the second side s2 of the first angle a1 may also be referred to as a third angle a3.
[0119]
[0120] According to the embodiments illustrated in
[0121] Moreover, the cutting arrangement 2 illustrated in
[0122] In
[0123] According to the illustrated embodiments, the height h2 of the radially outer delimiting surfaces 8.1-8.5 of the centre body 8 is approximately 74% of the height h1 of the radially inner delimiting surfaces 34.1-34.5 of the side walls 34. According to further embodiments, the height h2 of the radially outer delimiting surfaces 8.1-8.5 of the centre body 8 may be at least 20%, or may be at least 50%, of the height h1 of the radially inner delimiting surfaces 34.1-34.5 of the side walls 34. Moreover, according to the illustrated embodiments, the top surface 13 of the cutting guard 3 is substantially flat and faces the first plane P1 and thus also faces a ground surface 32 when the lawnmower 1 is positioned onto a flat ground surface 32 in an intended use position. Moreover, according to the illustrated embodiments, the top surface 13 of the cutting guard 3 is substantially parallel to the first plane P1 and thus also to a ground surface 32 when the lawnmower 1 is positioned onto a flat ground surface 32 in the intended use position. Thus, according to the illustrated embodiments, the radially outer delimiting surfaces 8.1-8.5 of the centre body 8 are substantially perpendicular to the top surface 13 of the cutting guard 3. Likewise, according to the illustrated embodiments, the radially inner delimiting surfaces 34.1-34.5 of the side walls 34 are substantially perpendicular to the top surface 13 of the cutting guard 3.
[0124] The height h1 of the radially inner delimiting surfaces 34.1-34.5 of the side walls 34 may be measured in directions parallel to the rotation axis Ax of the cutting unit 4. Likewise, the height h2 of the radially outer delimiting surfaces 8.1-8.5 of the centre body 8 may be measured in directions parallel to the rotation axis Ax of the cutting unit 4. According to the illustrated embodiments, the height h1 of the radially inner delimiting surfaces 34.1-34.5 of the side walls 34 is approximately 25% of the radius of the cutting unit 4. According to further embodiments, the height h1 of the radially inner delimiting surfaces 34.1-34.5 of the side walls 34 may be within the range of 7%-40%, or may be within the range of 15%-35%, of the radius of the cutting unit 4.
[0125] According to the illustrated embodiments, the cutting unit 4 comprises one or more surfaces 21, 22 being angled relative to a rotation plane Pr of the cutting unit 4 to generate an airflow in a direction d1 transverse to the rotation plane Pr during rotation of the cutting unit 4 in the first rotational direction R. In more detail, according to the illustrated embodiments, the surfaces 21, 22 are angled relative to the rotation plane Pr to generate an airflow in a direction d1 towards the top surface 13 of the cutting guard 3 during rotation of the cutting unit 4 in the first rotational direction R.
[0126]
[0127] The cutting member 19 further comprises a first and a second section 21, 22 comprising a first and a second surface 21, 22 respectively. That is, the first section 21 of the cutting member 19 comprises the first surface 21 and the second section 22 of the cutting member 19 comprises the second surface 22. Each of the first and a second surfaces 21, 22 is angled relative to the rotation plane Pr of the cutting unit 4 to generate an airflow in a direction d1 transverse to the rotation plane Pr during rotation of the cutting arrangement 2.
[0128]
[0129] As best seen in
[0130] Moreover, according to the illustrated embodiments, each of the first and second surfaces 21, 22 is angled to generate airflow towards the top surface 13 of the gutting guard 3 upon rotation of the cutting unit 4 in the first rotational direction R. Due to these features, efficient aerodynamic properties of the cutting member 19 is provided to efficiently generate a negative pressure inside the cutting guard 3 while avoiding a high rotational resistance of the cutting unit 4. Accordingly, due to these features, an even more efficient cutting arrangement 2 is provided.
[0131] According to the illustrated embodiments, the fourth angle a4 is approximately 5 degrees and the fifth angle a5 is approximately 20 degrees. Thus, according to the illustrated embodiments, the angle between the first and second surfaces 21, 22 is approximately 15 degrees. According to further embodiments, the fourth angle a4 may be within the range of 0-12 degrees or may be within the range of 2-7 degrees, and the fifth angle a5 may be within the range of 12-38 degrees or may be within the range of 17-23 degrees. In this manner, a negative pressure inside the cutting guard 3 can be generated in an efficient manner while avoiding a high rotational resistance of the cutting unit 4.
[0132] The cutting member 19 comprises a sharp leading edge 17, i.e. a sharp edge at a front section of the cutting member 19 seen in the moving direction md of the cutting member 19. The sharp leading edges 17 of the cutting members are also indicated in
[0133] As best seen in
[0134] Moreover, according to the illustrated embodiments, the first section 21, the second section 22, the attachment section 24, and the connecting section 25 are formed by bending of one piece of a sheet metal material. Moreover, each of the first section 21, the second section 22, the attachment section 24, and the connecting section 25 is substantially planar. Thus, according to the illustrated embodiments, each of the first and second surfaces 21, 22 is substantially planar. Due to these features, a cutting member 19 is provided having conditions for cutting vegetation in an efficient manner while having conditions and characteristics suitable for being manufactured and assembled in a cost-efficient manner.
[0135] Even though the cutting member 19 according to the illustrated embodiments comprises two surfaces 21, 22 having different angles relative to the rotation plane Pr of the cutting unit 4, the cutting members 19 of the cutting unit 4 may comprise only one surface angled relative to the rotation plane Pr of the cutting unit. According to such embodiments, the angle between such a surface and the rotation plane pr of the cutting unit 4 may be within one of the herein given ranges for the fourth and fifth angles a4, a5.
[0136] As indicated above, each cutting section 19 of the cutting unit 4 according to the embodiments illustrated in
[0137] As is indicated in
[0138] As indicated in
[0139] As can be clearly seen in
[0140] As understood from the herein described, the radial direction rd of the circular path C is perpendicular to the rotation axis Ax of the cutting unit 4 and extends in the rotation plane pr of the cutting unit 4. Moreover, the radial direction rd of the circular path C coincides with a radial direction rd of the cutting unit 4. Furthermore, according to the illustrated embodiments, the radial direction rd of the cutting unit 4 coincides with a radial direction rd of the cutting guard 3.
[0141] In addition, as understood from the above described, the first radial distance r1 can be obtained by subtracting the radius r of the circular path C from the distance between the rotation axis Ax of the cutting unit 4 and the inner surface 5 of the front section 5 of the cutting guard 3. Likewise, the second radial distance r2 can be obtained by subtracting the radius r of the circular path C from the distance between the rotation axis Ax of the cutting unit 4 and the inner surface 6 of the rear section 6 of the cutting guard 3. The radius r of the circular path C can also be referred to the radius r of the cutting unit 4, also referred to above, measured from the rotation axis Ax of the cutting unit 4 to a radially outer portion 4 of the cutting unit 4.
[0142] According to the illustrated embodiments, the first radial distance r1 is approximately five times larger than the second radial distance r2. In other words, according to the illustrated embodiments, the first radial distance r1 is approximately 500% of the second radial distance r2. According to further embodiments, the first radial distance r1 may be within the range of 150%-1300% of the second radial distance r2 or may be within the range of 350%-900% of the second radial distance r2.
[0143] Since the first radial distance r1 is greater than the second radial distance r2, a cutting arrangement 2 is provided having conditions for cutting grass in an energy efficient manner while having conditions for obtaining an improved cutting result. The cutting result can be improved because grass is allowed to raise to an upright straight position by its own stiffness after having been bent by the front section 5 of the cutting guard 3 during movement of the cutting guard 3 in the forward direction fd over a lawn. That is, when the cutting arrangement 2 is moved in the forward direction fd indicated in
[0144] Moreover, the need for forming a large negative pressure inside the cutting guard 3 is circumvented, or at least reduced, which provides conditions for operating the cutting arrangement 2 in an energy efficient manner. In addition, the greater distance from the front section 5 of the cutting guard 3 to the circular path C can reduce the negative pressure inside the cutting guard 3 which in turn can reduce the rotational resistance of the cutting unit 4 and hence the energy consumption of the cutting arrangement 2.
[0145] Thus, due to the features of the cutting arrangement 2, the energy consumption of a lawnmower 1 comprising the cutting arrangement 2 can be lowered and the cutting result can be improved. In addition, the cutting arrangement 2 provides conditions for increasing available operational time of a lawnmower comprising the cutting arrangement 2 before an energy storing unit of the lawnmower has to be charged or refilled. As a further result thereof, the cutting arrangement 2 provides conditions for operating the lawnmower 1 comprising the cutting arrangement 2 in a more cost-efficient manner.
[0146] Moreover, as understood from the above, due to the relatively large distance r1 from the inner surface 5 of the front section 5 and radially outer portions 4 of the cutting arrangement 2, the surfaces 21, 22 of the cutting members 19 can be provided with relatively small angles relative to the rotation plane Pr of the cutting unit 4 while ensuring a satisfactory cutting result. By using relatively small angles between the one or more surfaces 21, 22 and the rotation plane pr, a low rotational resistance of the cutting unit 4 and hence a low energy consumption of the cutting unit 4 is provided.
[0147] Moreover, small angles between the one or more surfaces 21, 22 and the rotation plane pr lower air flow in unwanted directions which in turn reduces the rotational resistance of the cutting unit 4 and hence the energy consumption of the cutting arrangement 2. In addition, as understood from the above described, since the cutting arrangement 2 can ensure that grass can have time to raise to an upright straight position by its own stiffness, a satisfactory cutting result can be obtained despite a lower negative pressure inside the cutting guard 3 caused by the relatively small angle between the one or more surfaces 22 and the rotation plane pr of the cutting unit 4.
[0148] As indicated in
[0149] As mentioned above, according to the embodiments illustrated in
[0150] According to some embodiments, the cutting unit 4 may comprise at least two cutting members 19 arranged at different distances from a rotation axis Ax of the cutting unit 4. Thereby, a cutting arrangement 2 is provided having conditions for cutting vegetation in a further efficient manner. This is because the at least two cutting members 19 will cut vegetation at different radiuses from the rotation axis Ax of the cutting unit 4.
[0151] As indicated in
[0152] In
[0153] As can be seen in
[0154] Moreover, as can be seen in
[0155] According to the illustrated embodiments, the radius r of the circular path C is 200 mm. According to further embodiments, the radius r of the circular path C may be within the range of 50-400 mm or within the range of 150-250 mm. Moreover, according to the illustrated embodiments, the length L of the cutting edges 17 of the cutting unit 4 is approximately 58 mm. According to further embodiments, the length L of the cutting edges 17 may be within the range of 20-80 mm, or within the range of 35-65 mm. Moreover, the length L of the cutting edges 17 may be within the range of 12%-50% of the radius r of the circular path C or may be within the range of 17%-33% of the radius r of the circular path C.
[0156] Moreover, according to the illustrated embodiments, the first radial distance r1 is approximately 35 mm. According to further embodiments, the first radial distance r1 may be within the range of 15-80 mm, or may be within the range of 25-45 mm. Furthermore, according to the illustrated embodiments, the second radial distance r2 is approximately 7 mm. According to further embodiments, the second radial distance r2 may be within the range of 2-14 mm, or may be within the range of 4-9 mm. Moreover, according to the illustrated embodiments, the third radial distance r3 is approximately 10 mm. According to further embodiments, the second radial distance r2 may be within the range of 5-20 mm, or may be within the range of 7-13 mm.
[0157] According to the illustrated embodiments, the motor 31 is configured to rotate the cutting unit 4 in the first rotational direction R during operation of the lawnmower 1 at a rotational speed causing the one or more radially outer portions 4 of the cutting unit 4 to orbit at a velocity of approximately 70 metres per second. According to further embodiments, the motor 31 may be configured to rotate the cutting unit 4 during operation of the lawnmower 1 at a rotational speed causing the one or more radially outer portions 4 of the cutting unit 4 to orbit at a velocity within the range of 60-80 metres per second, or within the range of 65-75 metres per second.
[0158] Tests have shown that the cutting arrangement 2 according to the illustrated embodiments is able to reduce the energy needed for cutting with approximately 50% while ensuring a satisfactory cutting result. As explained herein, this is at least partly obtained by the combination of the shape of the cutting guard 3, the shape of the centre body 8, the relatively large distance r1 from the inner surface 5 of the front section 5 and radially outer portions 4 of the cutting arrangement 2 and the fact that the surfaces 21, 22 for generating airflow can be provided with relatively small angles relative to the rotation plane Pr of the cutting unit 4.
[0159] The wording first rotational direction R is used herein for reasons of brevity and clarity for describing the intended rotational direction R of the cutting unit 4. A second rotational direction is not mentioned or indicated in the figures but is a rotational direction opposite to the first rotational direction R. The first rotational direction R, referred to herein, may also be referred to as an intended rotational direction of the cutting unit 4.
[0160] As indicated above, the distances d11, d11, d12, d13, d22 from the rotation axis Ax to radially outer delimiting surfaces 8.1, 8.2, 8.3, 8.4, 8.11 of the centre body 8, as referred to herein, may be measured in the rotation plane pr of the cutting unit 4, or in a plane parallel to the rotation plane pr of the cutting unit 4. Since the distances d11, d11, d12, d13, d22 are measured from the rotation axis Ax to radially outer delimiting surfaces 8.1, 8.2, 8.3, 8.4, 8.11 of the centre body 8, the distances d11, d11, d12, d13, d22 may be measured in a radial direction rd of the cutting unit 4. Therefore, the distances d11, d11, d12, d13, d22 from the rotation axis Ax to radially outer delimiting surfaces 8.1, 8.2, 8.3, 8.4, 8.11 of the centre body 8, as referred to herein, may also be referred to as radial distances 8.1, 8.2, 8.3, 8.4, 8.11.
[0161] Likewise, as indicated above, the distance d18, d19 from the rotation axis Ax to radially inner delimiting surfaces 34.1, 34.4 may be measured in the rotation plane pr of the cutting unit 4, or in a plane parallel to the rotation plane pr of the cutting unit 4. Since the distance d18, d19 is measured from the rotation axis Ax to radially inner delimiting surfaces 34.1, 34.4, the distance d18, d19 may be measured in a radial direction rd of the cutting guard 3. Therefore, the distance d18, d19 from the rotation axis Ax to radially inner delimiting surfaces 34.1, 34.4, as referred to therein, may also be referred to as a radial distance d18, d19.
[0162] Moreover, as indicated above, the distance d15, d16, d17 between the radially outer delimiting surfaces 8.1, 8.2, 8.3 of the centre body 8 and radially inner delimiting surfaces 34.1, 34.2, 34.3 of the side walls 34 may be measured in a radial direction rd of the cutting unit 4. Therefore, the distance d15, d16, d17 between the radially outer delimiting surfaces 8.1, 8.2, 8.3 of the centre body 8 and radially inner delimiting surfaces 34.1, 34.2, 34.3 of the side walls 34, as referred to therein, may also be referred to as a radial distance d15, d16, d17.
[0163] The above mentioned distances d11, d11, d12, d13, d22, d15, d16, d17, d18, d19 may alternatively be measured in a radial direction rd of the circular path C or in a radial direction rd of the cutting guard 3. Moreover, the above mentioned distances d11, d11, d12, d13, d22, d15, d16, d17, d18, d19 may be measured in a direction extending through the rotation axis Ax of the cutting unit 4 and being perpendicular to the rotation axis Ax of the cutting unit 4.
[0164] The first, second, and third radial distances r1, r2, r3, as referred to herein, may also be referred to as a first, second, or third distance r1, r2, r3. The first, second, and third radial distance r1, r2, r3 may be measured in a radial direction rd of the circular path C, in a radial direction rd of the cutting unit 4, and/or in a radial direction rd of the cutting guard 3. Moreover, the first, second, and third radial distances r1, r2, r3, as referred to herein, may also be referred to as a first, second, or third distance r1, r2, r3 measured in a direction extending through the rotation axis Ax of the cutting unit 4 and being perpendicular to the rotation axis Ax of the cutting unit 4.
[0165] The wording substantially parallel to, as used herein, may encompass that the angle between the objects referred to is less than 10 degrees, or is less than 7 degrees
[0166] The wording substantially planar, as used herein, may encompass that the object referred to deviates less than 10% from the shape of a flat plane.
[0167] The wording substantially perpendicular to, as used herein, may encompass that the angle between the objects referred to is within the range of 80-100 degrees or is within the range of 83-97 degrees.
[0168] It is to be understood that the foregoing is illustrative of various example embodiments and that the invention is defined only by the appended independent claims. A person skilled in the art will realize that the example embodiments may be modified, and that different features of the example embodiments may be combined to create embodiments other than those described herein, without departing from the scope of the present invention, as defined by the appended independent claims.
[0169] As used herein, the term comprising or comprises is open-ended, and includes one or more stated features, elements, steps, components, or functions but does not preclude the presence or addition of one or more other features, elements, steps, components, functions, or groups thereof.