Striping system and method

10704214 · 2020-07-07

    Inventors

    Cpc classification

    International classification

    Abstract

    A laser is pivotally attached to a line striping machine. The laser projects a planar line outwardly from the line striping machine. The laser freely rotates about a longitudinal axis, under the influence of gravity, relative to the line striping machine, independent of the orientation of the line striping machine, so as to project a vertically planar line regardless of the vertical orientation of the line striping machine. The subject technology compensates for changes in surface contour by providing a rotating laser that projects a vertically compensated projection plane that causes a vertically compensated reference line projected upon the surface.

    Claims

    1. A line striping system comprising: a laser pivotally attached to a line striping machine, the laser being adapted to project a planar line; the laser being adapted to freely rotate about a longitudinal axis, under the influence of gravity, relative to the line striping machine, independent of the orientation of the line striping machine, so as to project a vertically planar line regardless of the vertical orientation of the line striping machine.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    (1) Further features of the inventive embodiments will become apparent to those skilled in the art to which the embodiments relate from reading the specification and claims with reference to the accompanying drawings, in which:

    (2) FIG. 1 depicts a perspective view of line striping system 1 in one aspect of the subject technology. FIG. 2 depicts a perspective view of line display system 16 in one aspect of the subject technology. FIG. 3 depicts a rear view of line striping system 1 on a non-horizontal grade 101. FIG. 4 depicts a perspective view of line striping system 1 in one aspect of the subject technology showing reference line 105 and projection plane 106.

    REFERENCE NUMERALS

    (3) The table below lists the reference numerals employed in the figures, and identifies the element designated by each numeral

    (4) 1 line striping system 1

    (5) 10 laser 10

    (6) 11 laser harness assembly 11

    (7) 12 support arm 12

    (8) 13 vertical compensator housing 13

    (9) 14 [unused]

    (10) 15 support arm housing 15

    (11) 16 line display system 16

    (12) 17 shaft 17

    (13) 18 retaining ring 18

    (14) 19 bearing 19

    (15) 20 proximal end 20 of vertical compensator housing 13

    (16) 21 distal end 21 of vertical compensator housing 13

    (17) 22 top 22 of vertical compensator housing 13

    (18) 23 support arm housing braces 23

    (19) 100 line striping machine 100

    (20) 101 grade 101

    (21) 102 vertically compensated projection plane 102

    (22) 103 skewed projection plane 103

    (23) 104 handle bar 104

    (24) 105 reference line 105

    (25) 106 projection plane 106

    (26) 107 wheels 107 of line striping machine 100

    DETAILED DESCRIPTION

    (27) In the discussion that follows, like reference numerals are used to refer to like structures and elements in the various figures.

    (28) In one aspect of the subject technology, a line striping system 1 comprises a laser 10 pivotally attached to a line striping machine 100. The laser 10 is adapted to project a planar line. Those of skill in the art will appreciate the various commercially available lasers for projecting reference lines upon surfaces for various purposes. Such lasers transmit in a two dimensional projection plane such that a line will be projected upon a surface within the projection plane, within the range of the laser. The strength, and thus the range, of such lasers are typically regulated for safety or other regulatory reasons. Those of skill in the art will appreciate that plane in this sense refers to a projection of light in the visible spectrum, that is restricted (e.g. filtered, polarized) in a projection plane, so as to be perceivable as a line on a surface by a human eye as the projection plane encounters the surface. Accordingly, the dimensions (including thickness) of the projection plane are commensurate with such application.

    (29) The laser 10 is adapted to project a planar line outwardly from the line striping machine 100 in a longitudinal direction. Those of skill in the art will appreciate the functionality of causing a reference line to be projected onto a surface (e.g. a parking lot) to allow a line to be painted onto the surface by a line striping machine as a user of the machine follows the reference line. The laser 10 is adapted to freely rotate about a longitudinal axis, under the influence of gravity, relative to the line striping machine 100, independent of the orientation of the line striping machine 100, so as to project a vertically planar line regardless of the vertical orientation of the line striping machine 100. Thus, such a vertically planar line will be projected upon a surface that coincides with the projection plane.

    (30) The longitudinal axis about which laser 10 freely rotates, is substantially parallel to the direction of travel of the striping machine. In other words, if a line is to be painted upon a parking lot, the laser is aligned such that it is pointed longitudinally and parallel to the direction that the striping machine is travelling in. The laser 10 could be adapted to rotate about a different axis, should the need arise.

    (31) FIG. 4 depicts laser 10 projecting a planar line in a projection plane 106 such that reference line 105 is projected upon a surface. In some situations, a grade (e.g. parking lot) may have a varying contour (FIG. 3) such that the axis of wheels 107 (aka lateral axis) changes as the striping machine travels in a longitudinal direction. The subject technology is adapted to compensate for such changing topology resulting in a painted line that is not adversely affected by the change in contour.

    (32) FIG. 3 depicts a rear view of line striping system 1 on a non-horizontal grade 101 that is substantially parallel to the axis of wheels 107. This axis (aka lateral axis) is perpendicular to the longitudinal direction of travel of the striping machine. If the contour changes from horizontal to non-horizontal (relative to the lateral axis), a conventional laser would project a skewed projection plane 103 that would project a skewed line upon a surface. A user following the skewed line would paint a skewed stripe. The subject technology compensates for such changes in topology because laser 10 (and/or vertical compensator housing 13, discussed below) rotates about the longitudinal axis, under the influence of gravity, as the topology changes. This rotation causes the projection plane 106 to likewise rotate resulting in vertically compensated projection plane 102 that causes a vertically compensated reference line 105 unaffected by the change in contour.

    (33) In one aspect, the laser 10 is operatively attached to a vertical compensator housing 13 that is pivotally attached to a line striping machine 100. The vertical compensator housing 13 is adapted to freely rotate about a longitudinal axis, under the influence of gravity, relative to the line striping machine 100, independent of the orientation of the line striping machine 100, such that laser 10 projects a vertically planar line regardless of the vertical orientation of the line striping machine 100.

    (34) In one aspect, a line striping system 1 comprises a line display system 16 mounted to the line striping machine 100. In one aspect, the line display system 16 is mounted to a handle bar 104 of the line striping machine 100. The line display system 16 comprises a support arm 12 operatively connected to a support arm housing 15, and a vertical compensator housing 13 pivotally attached to the support arm 12 such that the vertical compensator housing 13 freely rotates about a longitudinal axis, under the influence of gravity, relative to the line striping machine 100, independent of the orientation of the line striping machine 100, so as to project a vertically planar line regardless of the vertical orientation of the line striping machine 100. In one aspect, the support arm housing 15 is connected (either removably or fixedly) to the handle bar 104.

    (35) In one aspect, the support arm 12 is connected to support arm housing 15 in a telescoping relationship such that support arm 12 can be laterally adjusted and fixed in place by thumb screws or other types of fasteners. In one aspect, this is accomplished by support arm 12 and support arm housing 15 being made from tubular (rectangular or round) material (e.g. metal or sufficiently hard plastic or carbon based material) such that support arm 12 fits inside of support arm housing 15. As depicted (e.g. FIG. 1) support arm 12 is connected on the right side of support arm housing 15. It should be understood that it can alternatively be connected to the left side. In one aspect, the line display system 16 is attached to the line striping machine 100 by support arm housing braces 23 attached to support arm housing 15. In one aspect, the support arm housing braces 23 are attached to the handle bar 104 (e.g. FIG. 1).

    (36) The vertical compensator housing 13 (and/or laser 10 in some aspects) rotates relative to the line striping machine 100 (and/or support arm 12 in some aspects) such that when the line striping machine 100 encounters a non-level grade (and thus is not vertically oriented), the vertical compensator housing 13 remains vertically oriented, or plumb (in one plane). The word plumb is defined herein to refer to maintaining a vertical gravitational alignment in one plane. Thus, the term varies somewhat from a plumb bob that maintains vertical integrity in two dimensions. It should be noted that the vertical compensator housing 13 and/or laser 10 could be adapted to provide such two dimensional compensation using gimbals and/or bearings operatively connected between the vertical compensator housing 13 and/or laser 10 and line striping machine 100.

    (37) In one aspect, the vertical compensator housing 13 is pivotally attached to the support arm 12 by a bearing 19 and a shaft 17 connected to the support arm 12. The bearing 19 is operatively connected to the shaft 17. In one aspect, the bearing 19 is radially outside of and encloses a portion of the shaft 17. The vertical compensator housing 13 is operatively connected to the bearing 19 whereby the vertical compensator housing 13 rotates relative to the shaft and support arm 12. In one aspect (FIG. 1), the shaft 17 extends through the vertical compensator housing 13 such that a distal end thereof (the proximal end of the shaft being connected to the support arm 12) protrudes from a distal end 21 of the vertical compensator housing 13 such that a retaining ring 18 can be secured to the distal end of the shaft (e.g. by a thumb screw). It should be noted that the functionality of the bearing as described herein can also be achieved with a gimbal.

    (38) In one aspect, the vertical compensator housing 13 is attached to the handle bar 104 of the line striping machine 100 in a manner analogous to the shaft-bearing arrangement described above wherein the shaft is connected directly to the handle bar 104 instead of the support arm 12. In this spirit, it should be understood that the vertical compensator housing 13 (or laser 10) can be attached to other parts of line striping machine 100. It should be understood that the laser (and vertical compensator housing 13 if used) should be adequately weighted to allow rotation influenced by gravity. Laser 10 is energized by various means including internal battery, or alternatively wired to an external battery.

    (39) In one aspect (FIG. 1) the laser 10 being operatively connected to the vertical compensator housing 13 comprises the laser 10 operatively connected to a laser harness assembly 11, and the laser harness assembly 11 being attached to a top 22 of the vertical compensator housing 13. In one aspect, laser harness assembly 11 has a u-shaped cross section forming an upwardly oriented channel into which laser 10 is mounted. Laser harness assembly 11 can be removably or securedly attached to the top 22 of the vertical compensator housing 13 by various means, including welding. Alternatively, vertical compensator housing 13 can be molded or machined to include laser harness assembly 11.

    (40) The functionality and structure of the vertical compensator housing 13 can be varied. For example, the vertical compensator housing 13 could be a structure similar to retaining ring 18. Such a retaining ring could be attached directly to the laser, and also to a bearing, the bearing being fixedly connected to the line striping machine (e.g. to the handle bar). Thus, the design is simplified.

    (41) While this invention has been shown and described with respect to detailed embodiments thereof, it will be understood by those skilled in the art that changes in form and detail thereof may be made without departing from the scope of the claims of the invention.

    (42) The invention is in no way limited to the specifics of any particular embodiments and examples disclosed herein. For example, the terms aspect, example, preferably, alternatively, and the like denote features that may be preferable but not essential to include in some embodiments of the invention. In addition, details illustrated or disclosed with respect to any one aspect of the invention may be used with other aspects of the invention. Additional elements and/or steps may be added to various aspects of the invention and/or some disclosed elements and/or steps may be subtracted from various aspects of the invention without departing from the scope of the invention. Singular elements/steps imply plural elements/steps and vice versa. Some steps may be performed serially, in parallel, in a pipelined manner, or in different orders than disclosed herein. Many other variations are possible which remain within the content, scope, and spirit of the invention, and these variations would become clear to those skilled in the art after perusal of this application.