Image placement, scaling and skew are some of the parameters used to assess the quality of a printed image, for example an image printed with a digital or offset printing press. Each of these parameters may be measured on a printed image and the measurement used to calibrate the press to correct any deviations from the desired image placement, scaling or skew. Currently, these and other calibration parameters are measured with an optical ruler or a simple ruler. The effective use of an optical ruler requires a knowledgeable operator. And, optical rulers are expensive. Simple rulers often do not provide sufficiently accurate and reliable measurements.
The present disclosure is directed to a new measuring tool developed in an effort to make measuring calibration parameters for a digital printing press easier and more accurate, using a tool significantly less expensive than an optical ruler. Accordingly, one example embodiment of the new measuring tool is configured to measure parameters often used to calibrate a digital printing press for desired image quality. Embodiments of the new tool, however, are not limited to measuring calibration parameters or to use with a digital printing press. Thus, the following description should not be construed to limit the scope of the disclosure, which is defined in the claims that follow the description.
As used in this document: a “square” means a pattern of lines or other markings depicting at least one right angle and two straight sides used to measure, test or lay out right angles; a “target image” means a printed image having one or more parts or characteristics that may be measured using an embodiment of the new measuring tool; and a “test sheet” means a printable substrate having one or more parts or characteristics that may be measured using an embodiment of the new measuring tool, including but not necessarily limited to a target image.
Also, as used in this document: reference to the X direction means along the X axis or along a line parallel to the X axis in either direction along the axis/line; reference to the Y direction means along the Y axis or along a line parallel to the Y axis in either direction along the axis/line; and, in general, reference to a first direction means along a first line or along a line parallel to the first line in either direction along the line, and reference to a second direction means along a second line or along a line parallel to the second line in either direction along the line.
Still referring to
Markers 26a and 26b are spaced apart from one another on either side of centerline 24 in the Y direction. Markers 28a and 28b are spaced apart from one another along centerline 24 in the X direction. In the embodiment shown, each marker 26a, 26b is formed by a series of Y direction lines with a predetermined spacing and each marker 28a, 28b is formed by a series of X direction lines with a predetermined spacing. Although other suitable configurations for alignment pattern 16 are possible, the configuration shown in
Reference image 12 also includes first scales 34a and 34b for measuring distances from centerline 24 in the Y direction and second scales 36a and 36b for measuring distances in the X direction from centerline 32. Where, as here, tool 10 is used to measure quality parameters for a printed image, such as image placement, scaling, and skew, reference image 12 should be at least as large as the test sheet. Each first scale 34a, 34b and each second scale 36a, 36b is placed at an outer perimeter of reference image 12 for measuring distances to one of the edges of a test sheet 20 (
Reference image 12 also includes a square 38 for measuring perpendicularity and an out-of-square scale 40 for measuring the magnitude of any deviation in perpendicularity with respect to square 38. In the embodiment shown, each side of square 38 is defined by two line segments 42a, 42b and 44a, 44b. One side 42a, 42b extends in the X direction and the other side 44a, 44b extends in the Y direction. Line segments 42a and 44b intersect at a corner 46. Scale 40 is located at line segment 42b along the X side of square 38. In one example embodiment, square 38 is located near the perimeter of reference image 12, as shown in
With continued reference to
Seventh scales 60a and 60b are positioned opposite one another on either side of X axis centerline 24 in the Y direction for measuring perpendicularity in the XY plane. In the embodiment shown, seventh scales 60a and 60b are positioned along, and span, the Y direction centerline 32 and, referring also to the enlargement of
Referring now to
Referring to
Referring to
Markers 78a and 78b are spaced apart from one another on either side of an X direction centerline 76 along Y direction centerline 86. Markers 80a and 80b are spaced apart from one another along X direction centerline 76. Each marker 78a, 78b is formed by a series of Y direction lines with a predetermined spacing different from the line spacing of markers 26a, 26b in reference image 12 (
Still referring to
One example use of tool 10 with test sheet 20 will now be described with reference to
Referring now to
Once reference image 12 and calibration image 18 are aligned, scaling measurements may be taken along X direction line 76 using scales 54a, 54b and 58a, 58b (fields A and B) and along Y direction line 86 using scales 52a, 52b and 56a, 56b (fields C and D). Distances along scales 52a, 52b and 54a, 54b are read with nonius bars 90a, 90b and 92a, 92b on calibration image 18 (where the lines match) in increments of 0.05 mm (50 microns) up to ±0.35 mm. Distances along scales 56a, 56b and 58a, 58b are read with the sides of rectangle 88 on calibration image 18 (where the lines match) in increments of 0.1 mm up to ±1.5 mm.
The length of test sheet 20 is measured using scales 36a, 36b (fields E and F) by measuring from the center of sheet 20 to the leading edge and to the trailing edge. Distances along each scale 36a and 36b are set off in increments of 1.0 mm along a primary scale and further resolved in increments of 0.1 mm along a secondary scale. Measurements along the secondary scale are read where the edge of the sheet intersects a scale line (the scale lines are not parallel to Y axis).
Any skew of sheet 20 in the print zone may be measured using scales 34a and 34b (fields G and H) by comparing the distance from line 24 to the edge of sheet 20 at each scale 34a and 34b. Distances along each scale 34a and 34b are set off in increments of 1.0 mm along a primary scale and further resolved in increments of 0.1 mm along a secondary scale. Measurements along the secondary scale are read where the edge of the sheet intersects a scale line (the scale lines are not parallel to the X axis).
Any skew in calibration image 18 caused by misalignment of the print head to the media path will be evident in a deviation in perpendicularity of Y direction line 86 with respect to X direction line 76 on calibration image 18. Any such deviation in perpendicularity may be measured using scales 60a and 60b (fields K and L). Distances along scales 60a and 60b are read with nonius bars 94a, 94b on calibration image 18 (where the lines match) in increments of 0.05 mm (50 microns) up to ±0.5 mm.
Image placement on sheet 20 may be measured using scales 36a and 36b (fields E and F) and scales 34a and 34b (fields G and H). Measuring the distances from the center of calibration image 18 to the edges of test sheet 20 indicates the placement of image 18 on sheet 20.
An deviation in the perpendicularity of the edges of sheet 20 may be measured using square 38 and scale 40 (fields N, M and O). A corner of sheet 20 is placed in the corner 46 of square 38 and one edge aligned with line segments 44a and 44b. Any deviation in perpendicularity of the adjacent edges of sheet 20 will be evident along line segments 42a and 42b, and measured at scale 40 in increments of 0.1 mm up to ±0.7 mm.
Suction cup margin may be measured using circle patterns 62, 64 and scale 36a (fields I, J and E). The location of the suction cups is marked on test sheet 20 by, for example, coating the suction cups with ink and running a sheet through the press. Suction cup marks 96a and 96b may be placed on test sheet 20 along with a calibration image 18, or suction cup marks 96a and 96b may be placed on a test sheet without a calibration image. Circles patterns 62 and 64 on tool 10 are aligned with suction cup marks 96a and 96b and the “margin” to leading edge 66 measured on scale 36a in increments of 0.05 mm.
The centering of sheet 20 in the printer media path may be measured using circle patterns 62, 64 and scale 34a (fields I and J with G). Circle patterns 62 and 64 on tool 10 are aligned with suction cup marks 96a and 96b on test sheet 20 and the distance to the edge of sheet 20 measured on scale 34a. This measured distance, which indicates half the sheet width, may be compared to the actual sheet width to determine whether or not sheet 20 is centered in the media path.
As noted at the beginning of this Description, the exemplary embodiments shown in the figures and described above illustrate but do not limit the disclosure. Other forms, details, and embodiments may be made and implemented. Therefore, the foregoing description should not be construed to limit the scope of the disclosure, which is defined in the following claims.
| Number | Name | Date | Kind |
|---|---|---|---|
| 1708551 | Nell | Apr 1929 | A |
| 4244639 | Kanda | Jan 1981 | A |
| 4607433 | Meeker | Aug 1986 | A |
| 4641436 | Tzen et al. | Feb 1987 | A |
| 4734993 | Pan | Apr 1988 | A |
| 5137025 | Turner, II | Aug 1992 | A |
| 5511316 | Fischer et al. | Apr 1996 | A |
| 5557996 | Reber et al. | Sep 1996 | A |
| 5666737 | Ryan, III | Sep 1997 | A |
| 5791062 | Walker | Aug 1998 | A |
| 5819422 | Schafer | Oct 1998 | A |
| 6049987 | Robell | Apr 2000 | A |
| 6092297 | Simon | Jul 2000 | A |
| 6115926 | Robell | Sep 2000 | A |
| 6311408 | Madayag | Nov 2001 | B1 |
| 6839971 | Schafer et al. | Jan 2005 | B2 |
| 6925724 | Tandy | Aug 2005 | B2 |
| 6983544 | Echizenya | Jan 2006 | B2 |
| 7032534 | Thiemann et al. | Apr 2006 | B1 |
| 7100295 | Chang | Sep 2006 | B1 |
| 7127826 | Russell | Oct 2006 | B2 |
| 7185441 | Lockyer | Mar 2007 | B2 |
| 7251898 | Schafer et al. | Aug 2007 | B2 |
| D601442 | Haren | Oct 2009 | S |
| 7854073 | Webb | Dec 2010 | B1 |
| 7918032 | Zaremski | Apr 2011 | B2 |
| 20050034317 | Burandt et al. | Feb 2005 | A1 |
| 20050257393 | Spanski et al. | Nov 2005 | A1 |
| 20100223798 | Zimmerman | Sep 2010 | A1 |
| Number | Date | Country | |
|---|---|---|---|
| 20110232114 A1 | Sep 2011 | US |