The present invention relates in general to an apparatus for discriminating between two objects based on surface reflectivity differences, and more specifically to discriminating between printing plates covered by a polymer emulsion and interleaf paper between the plates.
A computer-to-plate (CTP) device 204, shown in
In the course of imaging plates, the plate placed at the top of the stack is picked and transferred to the exposure area for imaging. When an interleaf paper (slip-sheet) is at the top of the stack, the paper is picked and disposed of, before picking the plate. There is a need for discriminating between plate and the interleaf paper are used, to correctly identify the topmost object on the stack.
U.S. Pat. No. 6,825,484 (Burkatovsky) describes a discriminating device based on measurements of the light reflections from the surfaces with different roughness. For example, discrimination between paper and non-covered by emulsion printing plate will be reliable due to substantially different roughness of paper as opposed to a smooth and glossy plate metal surface. But discrimination between paper and emulsion covered plate will often be inaccurate due to the small difference between their roughness properties.
Another method for discriminating the slip sheets and emulsion covered printing plate described in U.S. Pat. No. 7,157,725 (Kawamura). This method is based on the difference between absorbance (reflectance) of a slip sheet and a plate, irradiated by light of 570-740 nm wavelengths.
Reflectance of emulsions and papers produced by different manufacturers may vary substantially. An example of reflections from papers and emulsions of different manufacturers is shown in
It should be noted that not only manufacturer media variations and differences between the batches of media lead to reflection deviations. Changing parameters such as distance to media, light source, ambient light are also impact on reflections thus making difficult to practical implementation of the method suggested by Kawamura et al.
The purpose of this invention is to improve the paper slip sheet and emulsion covered plate discrimination capability.
Briefly, according to one aspect of the present invention an apparatus for discrimination between a first surface type and a second surface type is based on the first surface type reflectivity higher than a second surface type reflectivity:
a) a light source adapted to illuminate light on a media surface, the media surface is made from the first surface type or from the second surface type;
b) a light source driver adapter to control the intensity applied on the light source;
c) a photosensor adapted to receive and measure the reflection value from the media surface;
d) a first gain element adapted to adjust the received reflection intensity from the photosensor;
e) a second gain element to receive part of the light source intensity and adjust it;
f) a subtractor adapted to receive a first adjusted value from first gain element value and a second adjusted value from second gain element value and subtract the second adjusted value from the first adjusted value to create a subtractor output value wherein the subtractor output value is close to zero in response to the second surface type and the subtractor output value is maximal in response to the first surface type;
g) a threshold value generator adapted to generate a threshold reference value; and
h) a comparator adapted to compare between the adjusted reflection value and the threshold reference value to create a discrimination decision between the first surface type or the second surface type.
The invention and its objects and advantages will become more apparent in the detailed description of the preferred embodiment presented below.
In the following detailed description, numerous specific details are set forth in order to provide a thorough understanding of the disclosure. However, it will be understood by those skilled in the art that the teachings of the present disclosure may be practiced without these specific details. In other instances, well-known methods, procedures, components and circuits have not been described in detail so as not to obscure the teachings of the present disclosure.
While the present invention is described in connection with one of the embodiments, it will be understood that it is not intended to limit the invention to this embodiment. On the contrary, it is intended to cover all alternatives, modifications, and equivalents as covered by the appended claims.
The schematic illustration of a discriminating device known the art is shown in
An adjustment element 542 is connected by its inputs to the outputs of the photosensor 420 and the illumination control unit 404. The output of the adjustment element 542 is connected to the first input of comparator 124 while the second input of comparator 124 is connected to the threshold reference 428.
The irradiation of the tested media provided by the light source 416 controlled by the illumination set point signal Vi produced by illumination control unit 404 through the light source driver 412. The photosensor 420 generates signal V
Vs=V
R
*G
R
−V
i
*G
i (1)
In this case according to Equation (1) VS will equal to VR.
Vs=V
R (2)
In the case when VS equals VR, according to Equation (1), the behavior of the proposed discrimination device shown in
Line 704 in
DF=Vsp/Vse (3)
As much as the Vsp value is bigger than Vse value, the discrimination will be more reliable, due to covering of a larger reflection range and thus decreasing the sensitivity of reflection deviations.
In other words in order to improve the discrimination capability of a discrimination device the value of DF needs to be increased. This can be achieved by adjusting the amplification factors 534 (G
DF0=Vsp0/Vse0. (4)
Now by increasing 538 (Gi) up to the moment when Vse will be close to zero we obtain the situation when Vse is practically not dependent upon the light source 416 current and remains low within the light source current possible range (line 716). Respectively after adjusting 538 (Gi) while examining the paper slip sheet, the Vsp line 704 will change its slope. The Vsp dependence on light source 416 current after Gi adjustment is presented by line 712.
Increasing the light source 416 current to Im by means of illumination control unit 404 we obtain Vsph value while examining paper and Vsel value while examining emulsion covered plate. As Vsph is bigger than Vsp and Vsel is lower than Vse thus according to equation (3) the value of representing discrimination factor
DF1=Vsph/Vsel (5)
will be much bigger than DF0 (4), thus yielding a substantially improved discrimination capabilities. The maximum value of Vsph is restricted by power supply voltage. In other words the threshold margin is enough to support the discrimination of plates and emulsions from various manufacturers.
It should be noted that the DF1 value may be achieved also without light source 416 current changing (from In to Im). This can be obtained by increasing the amplification factor 534 (G
As it can be seen from
The invention has been described in detail with particular reference to certain preferred embodiments thereof, but it will be understood that variations and modifications can be effected within the scope of the invention.
Reference is made to commonly-assigned copending U.S. patent application Ser. No. ______ (Attorney Docket No. 96545/NAB), filed herewith, entitled METHOD FOR DISCRIMINATING BETWEEN OBJECTS, by Burkatovsky; the disclosure of which is incorporated herein.