LASER LEVEL DEVICE
20220196402 ยท 2022-06-23
Inventors
Cpc classification
G01C15/12
PHYSICS
International classification
G01C15/00
PHYSICS
Abstract
A laser-level device has a body having a length, a height and a width, with a base, sides and a top, an upper slider engaging a longitudinal track along the top of the device, connected through a lengthwise channel to a lower slider element within the body, a laser module carrying a laser, engaged in a track curved in an arc of about ninety degrees, and a first link engaged pivotally to the lower slider element on a first end and pivotally to the laser module on a second end. The laser module follows the track curvature in response to translation of the slider along the longitudinal track from a fully retracted position to a fully extended position, and the laser emits a laser beam through the central, lengthwise channel, the beam moving in an arc determined by the track curvature.
Claims
1. A laser-level device, comprising: a body having a length, a height and a width, with a base, sides and a top; an upper slider engaging a longitudinal track along the top of the device, connected through a lengthwise channel to a lower slider element within the body; a laser module carrying a laser, engaged in a track curved in an arc of about ninety degrees; and a first link engaged pivotally to the lower slider element on a first end and pivotally to the laser module on a second end; wherein the laser module follows the track curvature in response to translation of the slider along the longitudinal track from a fully retracted position to a fully extended position, and the laser emits a laser beam through the central, lengthwise channel, the beam moving in an arc determined by the track curvature.
2. The laser-level device of claim 1 further comprising a curved window on a first side of the body of the device, and a first pointer extending laterally from the laser module, wherein the pointer follows the curvature of the curved window.
3. The laser-level device of claim 2 further comprising indica along the curved window indicating arcuate rotation of the laser beam from a position with the slider fully retracted to a position with the slider fully extended.
4. The laser-level device of claim 2 further comprising a second link engaged pivotally to the lower slider element on a first end and pivotally to the laser module on a second end, the second link on a side of the curved track opposite the first link, and further comprising a second curved window on a second side of the body of the device and a second pointer extending laterally from the laser module opposite the first pointer, with indicia along both the first and the second window indicating arcuate rotation of the laser beam from a position with the slider fully retracted to a position with the slider fully extended.
5. The laser-level device of claim 1 wherein the body is no more than one inch in width and no more than two inches in height.
6. The laser-level device of claim 1 wherein the body is based on an aluminum extrusion.
7. The laser-level device of claim 6 further comprising an electromechanical modular assembly comprising the laser module carrying a laser, the curved track, the lower slider element links engaged pivotally to the slider on a first end and pivotally to the laser module on a second end, the electromechanical modular assembly engaged to the body via an opening in the base of the body.
8. The laser-level device of claim 1 wherein the curved track is non-circular, radius of track increasing as the first slider extends further along the longitudinal track.
9. The laser-level device of claim 1 further comprising end caps engaging the body at openings on opposite ends.
10. The laser-level device of claim 9 wherein one of the end caps has a horizontal bubble level and a vertical bubble level.
11. The laser-level device of claim 1 wherein the electromechanical assembly further comprises a printed circuit board providing control functions, a battery providing power and an on-off switch that activates the laser.
12. The laser-level device of claim 1 wherein the body has a pointer on one side at a midpoint at the base, such that with the device resting on the base on a surface, with a point on the surface aligned with the pointer, the laser beam, with the first slider fully retracted, defines a vertical line through the pointer and the point on the surface.
13. The laser-level device of claim 1 further comprising one or more lengthwise channels along the top of the device, the channels having V-angled sides, such that that the device may be engaged to a conduit or a pipe along one of the channels.
14. A method determining angular separation between a first point and a second point on one or more surfaces, comprising: placing a laser-level device having a body with a length, a height and a width, a base, sides and a top, with a upper slider engaging a longitudinal track along the top of the device, connected through a lengthwise channel to a lower slider element within the body, a laser module carrying a laser, engaged in a track curved in an arc of about ninety degrees, and a first link engaged pivotally to the lower slider element on a first end and pivotally to the laser module on a second end, stationary on a flat support surface; translating the upper slider along the longitudinal track, causing the laser module to move along the curved track and the laser to emit a beam through the lengthwise channel, until the laser beam illuminates the first point; reading from indicia along a curved window on one side of the device an angular position of the first point relative to the device; translating the upper slider along the longitudinal track until the laser beam illuminates the second point; reading from indicia along the curved window an angular position of the second point relative to the device; and determining the angular separation between the first and the second point by subtracting the angular deviation of the first point from the angular deviation of the second point.
15. The laser-level device of claim 2 further comprising a second link engaged pivotally to the lower slider element on a first end and pivotally to the laser module on a second end, the second link on a side of the curved track opposite the first link, and further comprising a second curved window on a second side of the body of the device and a second pointer extending laterally from the laser module opposite the first pointer, with indicia along both the first and the second window indicating arcuate rotation of the laser beam from a position with the slider fully retracted to a position with the slider fully extended, comprising reading angular deviation from either side of the device.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE INVENTION
[0016]
[0017] There are two openings 116 and 111 through body 102 in which bubble tube level indicators 107 are placed to be visible to a user. These bubble indicators are useful for a user to determine whether a horizontal surface is level or a vertical surface is plumb. A position pointer 106 ending at base surface 109 is a reference point for a user to position device 101 at a specific point for determining angular reference to other points in an environment.
[0018] In one embodiment an internal electro-mechanical mechanism comprising a laser module riding in an internal curved guide (not seen in
[0019]
[0020] Elements 209 are magnets that are inserted under end caps 202 and 203 before insertion into extrusion 201, and electromechanical assembly 204 is fitted to extrusion 201 from below and fastened in place. Slider 103 is then joined to lower slider element 204 through a longitudinal slot in extrusion 201. Once the end caps and the electromechanical assembly are joined to the extrusion, frames 205, as well as frames 207 are joined to the assembly, as may be seen in the assembled view
[0021]
[0022] Slider 103 may be seen in
[0023] As slider 103 is urged forward along track 104 the direction of the laser beam travels through an arc determined by the curvature of track 303 until module 302 reaches the end of track 303, at which point the beam will have moved through an arc of about ninety degrees.
[0024] Laser module 302 is implemented to track 303 in very close tolerance, so there is little of no deviation of the laser beam due to mechanical play. In one embodiment the fit of slider 103 engaged to lower slider element 211 is also a close fit with some friction, so direction of the laser beam is retained when a user stops moving the slider, and the position of pointer 113 may be read from scale 112. It may be seen in
[0025] Although it is not shown in
[0026] Referring again to
[0027] In prior art devices a laser module is implemented on the end of a single pivoted link that is pivoted near the base point 106. Such a link cannot be pivoted exactly at that point, so there is an inherent error in the arc implementation, and the device with this single link is limited to having a circular arc, which may require additional height for the device.
[0028] In the instant invention the laser module is guided in a track that describes a circular arc about point 106, so the laser moves as though it pivots about point 106. In alternative embodiments there may be two tracks and a telescoping arm to guide the laser module.
[0029]
[0030] The engaged and moving elements the electro-mechanical assembly in
[0031] Another important feature seen in
[0032] An important purpose of grooves 404, 405 and 406 is to engage conduits and pipes of different diameters with the laser level device in a manner that the device may be used with the bubble levels to determine level and plumb for such conduits and pipes. In
[0033]
[0034]
[0035] Slider 103 is also shown at a second position [B] a distance x along track 104. At this second position the laser module inside the device is moved along the curved track to a new position wherein the laser produces a beam along line 606. Pointer 113 is also shown at a new position in window 114. A user is enabled to read the angular separation between points 604 and 607 on scale 112. A user may manipulate the slider, and thus the laser beam, to determine angular separation between chosen points along walls of the ceiling in a room.
[0036] It will be apparent to the skilled person that the embodiments described above with reference to figures are entirely exemplary and are not limiting to the scope of the invention, in which there may be many other embodiments not described in detail. The scope of the invention is limited only by the claims that follow.