Straight taper dipper
10934682 ยท 2021-03-02
Assignee
Inventors
- Dan Feld (South Milwaukee, WI, US)
- Richard Nicoson (Hartford, WI, US)
- William R. Powers (Mukwonago, WI, US)
Cpc classification
International classification
E02F3/40
FIXED CONSTRUCTIONS
Abstract
A dipper having an inlet and an outlet. The dipper includes a front wall and an opposite back wall extending between the inlet and the outlet. The front wall has a substantially linear inner surface between the inlet and the outlet. The dipper further includes two side walls connected between the front wall and the back wall and extending between the inlet and the outlet. Further, the dipper has a lip coupled to the front wall and extending outwardly from the inlet in a direction away from the outlet, the lip having a lip inner surface arranged generally parallel with the substantially linear inner surface of the front wall.
Claims
1. A dipper having an inlet and an outlet, the dipper comprising: a front wall and an opposite back wall extending between the inlet and the outlet, the front wall having a substantially linear inner surface between the inlet and the outlet, the inlet defining an inlet plane; a heel defined on the front wall adjacent the outlet; two side walls connected between the front wall and the back wall and extending between the inlet and the outlet; and a lip coupled to the front wall and extending outwardly from the inlet in a direction away from the outlet, the lip having a lip inner surface positioned outward of the inlet and arranged generally parallel with the substantially linear inner surface of the front wall; wherein a floor reference plane is defined generally perpendicular to the inlet plane, the floor reference plane intersecting the lip and being spaced apart from the heel.
2. The dipper of claim 1, wherein the lip inner surface is generally in line with the substantially linear inner surface of the front wall.
3. The dipper of claim 1, wherein a front/back wall reference plane extends from the inlet to the outlet and is positioned between the front wall and the back wall, and wherein the front/back wall reference plane is angled with respect to the floor reference plane at about ten degrees.
4. The dipper of claim 3, wherein a front wall line is defined by the substantially linear inner surface of the front wall line, wherein the front wall line is arranged relative to the front/back wall reference plane at a front wall angle between about zero degrees and about three degrees.
5. The dipper of claim 4, wherein the front wall angle is about zero degrees.
6. The dipper of claim 1, wherein a side wall reference plane extends from the inlet to the outlet and is positioned between the side walls, and wherein the lip defines opposite side surfaces, each of the side surfaces tapering outwardly from the inlet relative to the side wall reference plane at an angle greater than 0 degrees and no more than about 30 degrees.
7. The dipper of claim 6, wherein each of the side surfaces tapers outwardly from the inlet relative to the side wall reference plane at an angle greater than 0 degrees and no more than about 10 degrees.
8. The dipper of claim 1, wherein a maximum outer dimension of the lip is larger than a comparative outer dimension of the outlet.
9. The dipper of claim 1, wherein the front and the back walls define a front/back wall reference plane extending from the inlet to the outlet and positioned between the front wall and the back wall, and wherein the back wall tapers outwardly relative to the front/back wall reference plane from the inlet to the outlet.
10. The dipper of claim 9, wherein the back wall tapers outwardly relative to the front/back wall reference plane at an angle greater than 0 degrees and no more than about 30 degrees.
11. The dipper of claim 10, wherein the back wall tapers outwardly relative to the front/back wall reference plane at an angle greater than about 1 degree and no more than about 10 degrees.
12. The dipper of claim 1, wherein the two side walls define a side wall reference plane extending from the inlet to the outlet and positioned between the side walls, and wherein each of the side walls tapers outwardly relative to the side wall reference plane from the inlet to the outlet.
13. The dipper of claim 12, wherein each of the side walls tapers outwardly relative to the side wall reference plane at an angle greater than 0 degrees and no more than about 30 degrees.
14. The dipper of claim 13, wherein each of the side walls tapers outwardly relative to the side wall reference at an angle greater than about 1 degree and no more than about 10 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) Before any independent embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other independent embodiments and of being practiced or of being carried out in various ways.
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(11) With reference to
(12) The right side wall 24 defines (see
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(14) The left lip plane 60 is arranged at a left lip angle 64 with respect to the side wall reference plane 40. The left lip angle 64 may be between about zero degrees and about thirty degrees (0x30). In some embodiments, the left lip angle 64 is between about one degree and about ten degrees (1x10). In the illustrated embodiment, the left lip angle 64 is about zero degrees (0).
(15) The right lip plane 68 is arranged at a right lip angle 72 with respect to the side wall reference plane 40. The right lip angle 72 may be between about zero degrees and about thirty degrees (0x30). In some embodiments, the right lip angle 72 is between about one degree and about ten degrees (1x10). In the illustrated embodiment, the right lip angle 72 is about zero degrees (0).
(16) Further, in some embodiments, the lip 36 may be arranged with the outer dimension 56 of the lip 36 larger than a comparative outer dimension at the outlet 32 of the dipper 10 so that the outlet 32 or heel 38 of the dipper 10 does not plow or rake though the material being mined, which would increase the wear on the dipper 10 and increase the force required to move the dipper 10 through the material. The left and right lip angles 64, 72 affect the outer dimension 56 and can be manipulated to provide clearance for the outlet 32, as desired.
(17) With respect to
(18) The front wall 14 defines a straight surface from the inlet 28 to the outlet 32 (as shown in
(19) In the illustrated embodiment (see
(20) The back wall 18 defines (see
(21) With continued reference to
(22) An outlet plane 108 is defined parallel to the inlet plane 100 (and generally perpendicular to the floor reference plane 76) at the outlet 32. An outlet area 112 for the dipper 10 (e.g., at the door) is defined in the outlet plane 108. That is to say, the front wall 14, the back wall 18, the left side wall 22, and the right side wall 26 define an outlet perimeter in the outlet plane 108, and the area within the outlet perimeter defines the outlet area 112 in the outlet plane 108.
(23) As a result of arrangement of the front wall 14, the back wall 18, the left side wall 22, and the right side wall 24, the outlet area 112 is larger than the inlet area 104 (see
(24) The inventive arrangement provides a dipper 10 that improves performance in digging. For example, the dipper 10 may have improved fill, dump and/or full/dump cycle time. The dipper 10 may have reduced drag during digging.
(25) The dipper 10 may be advantageous for oil sands digging. Oil sands expand after being unearthed. The increased volume of the dipper 10 toward the outlet 32 of the dipper 10 allows the oil sands to expand within the dipper 10 while a digging action is occurring, and the oil sands will not be compacted within the dipper 10. Typically, oil sands expand about four percent (4%) in volume during a digging action (e.g., 30 seconds). The straight tapered design of the dipper 10 allows expansion without compaction and/or improves digging characteristics and efficiency. The dipper 10 may also be used to remove/mine other materials, such as, for example, copper, iron ore, overburden material, etc.