This application is the U.S. national phase of International Application No. PCT/IB2014/0614606 filed 13 May 2014, which designated the U.S. and claims priority to EP Patent Application Nos. 13167568.8 filed 13 May 2013, and 13179654.2 filed 7 Aug. 2013, the entire contents of each of which are hereby incorporated by reference.
The present invention generally relates to a printed security feature provided onto a printable substrate, which printed security feature includes a printed area consisting of a multiplicity of geometric elements printed with a given distribution over the printed area.
European Patent Publications Nos. EP 0 710 574 A2 and EP 1 291 195 A1 each disclose such printed security features.
Further improvements of these known printed security features are required in order to make forgery by counterfeiters even more difficult.
A general aim of the invention is therefore to improve the known printed security features.
More specifically, an aim of the present invention is to provide such a printed security feature that is both difficult to counterfeit and requires high-precision printing equipment for it to be produced in an adequate manner.
Still another aim of the invention is to provide such a solution which enables the creation of a simple and readily understandable optical effect when illuminated by means of non-visible light, such as ultraviolet light, and which requires simple tools (such as suitable UV light source) in order to control the genuineness of the security feature.
These aims are achieved thanks to a printed security feature defined in the claims.
There is accordingly provided a printed security feature provided onto a printable substrate, which printed security feature includes a printed area with at least a first printed section consisting of a multiplicity of geometric elements printed with a given distribution over the printed area. According to the invention, the geometric elements are printed with at least first and second inks which exhibit the same or substantially the same optical appearance when illuminated with visible white light, such that the printed security feature produces a first graphical representation when illuminated with visible white light, at least the first ink being an ink which responds to non-visible light excitation by producing a characteristic optical response differentiating the first ink from the second ink. The printed security feature produces a second graphical representation when illuminated with non-visible light, which second graphical representation exhibits a distinctive two-dimensional graphic element which is revealed only when the printed security feature is illuminated with non-visible light. The first printed section is subdivided into at least three printed portions including first and second printed portions, adjacent to the distinctive two-dimensional graphic element, and a third printed portion, inside boundaries of the distinctive two-dimensional graphic element. In the first printed portion, the geometric elements are printed with the first ink, while, in the second printed portion, the geometric elements are printed with the second ink. In contrast, in the third printed portion, the geometric elements are subdivided into first and second contiguous portions, the first contiguous portions being printed with the first ink and the second contiguous portions being printed with the second ink. The first and second inks are printed in register one with respect to the other so that the boundaries of the distinctive two-dimensional graphic element are not visible when the printed security feature is illuminated with visible white light and the distinctive two-dimensional graphic element only becomes visible when the printed security feature is illuminated with non-visible light.
A key advantage of the present invention resides in the fact that it requires a precise printing process in order to print the at least first and second inks with the adequate register, which printing process is not readily available to counterfeiters. A misregistration between the colours will result in the boundaries of the distinctive two-dimensional graphic element becoming visible under visible light, thereby revealing the presence of the two-dimensional graphic element which is normally concealed under visible light.
In accordance with a particularly advantageous embodiment, the printed area includes, in addition to the first printed section, at least a second printed section likewise consisting of a multiplicity of geometric elements printed with a given distribution over the printed area. The geometric elements of the second printed section are printed with at least third and fourth inks which exhibit the same or substantially the same optical appearance when illuminated with visible white light, which optical appearance of the third and fourth inks is different from the optical appearance of the first and second inks. At least the third ink is an ink which responds to non-visible light excitation by producing a characteristic optical response differentiating the third ink from the fourth ink, which characteristic optical response of the third ink is the same or substantially the same as the characteristic optical response of the first ink. In this case, the first graphical representation and the second graphical representation are formed jointly by the first and second printed sections. The second printed section is likewise subdivided into at least three printed portions including first and second printed portions, adjacent to the distinctive two-dimensional graphic element, and a third printed portion, inside the boundaries of the distinctive two-dimensional graphic element. In the first printed portion of the second printed section, the geometric elements are printed with the third ink. In the second printed portion of the second printed section, the geometric elements are printed with the fourth ink. In the third printed portion of the second printed section, the geometric elements are subdivided into first and second contiguous portions, the first contiguous portions being printed with the third ink and the second contiguous portions being printed with the fourth ink. In this case also, the third and fourth inks are printed in register one with respect to the other so that the boundaries of the distinctive two-dimensional graphic element are not visible when the printed security feature is illuminated with visible white light and the distinctive two-dimensional graphic element only becomes visible when the printed security feature is illuminated with non-visible light.
In accordance with one embodiment of the invention, the geometric elements may be linear elements, such as rectilinear and curvilinear elements. In this context, a line width and/or spacing of the linear elements is preferably modulated to produce a halftone image.
In accordance with another embodiment of the invention, the geometric elements may be repetitive elements forming a screen. In this context, the repetitive elements are preferably dimensionally-modulated to produce a halftone image. Such geometric elements could include a juxtaposition of at least first and second distinctive geometric elements, which first and second geometric elements may be separated by an unprinted separation line.
The geometric elements are preferably printed with a spatial frequency of 2 to 50 elements per millimetre. Furthermore, an ink coverage ratio of the printed security feature is advantageously in the range of 30% to 70%, preferably in the range of 40% to 60%, and even more preferably close to 50%.
In accordance with a particularly preferred embodiment (as discussed hereinafter), the first ink is a first fluorescent ink which produces a visible response having a first fluorescent colour when subjected to the non-visible light excitation (preferably ultraviolet excitation), the first fluorescent colour contributing to making the distinctive two-dimensional graphic element visible when the printed security feature is subjected to the non-visible light excitation. According to a particularly advantageous variant of this preferred embodiment, the second ink is a second fluorescent ink which produces a visible response having a second fluorescent colour when subjected to the non-visible light excitation, which second fluorescent colour is distinct from the first fluorescent colour. Inside the boundaries of the distinctive two-dimensional graphic element, the first and second contiguous portions may produce, when subjected to the non-visible light excitation, a third fluorescent colour resulting from additive mixture of the first and second fluorescent colours. This additive mixture of the first and second fluorescent colours is in particular enhanced when the contiguous portions are printed with sufficiently small dimensions so that they cannot be individually resolved by the naked eye.
A ratio of a surface of the first contiguous portions over a surface of the second contiguous portions, inside the boundaries of the distinctive two-dimensional graphic element, can conveniently lie within a range of ½ to 2, which provides flexibility to modulate the intensity of the colour appearance of the distinctive two-dimensional graphic element when it is revealed as a result of illumination of the printed security feature with non-visible light. This is especially useful in order to modulate the respective contributions of first and second fluorescent inks discussed above.
In accordance with a further variant of the invention, the first and second contiguous portions, inside the boundaries of the distinctive two-dimensional graphic element, may produce, when subjected to the non-visible light excitation, a structure comprising geometric patterns having a distinctive shape that is different from a shape of the geometric elements.
The multiplicity of geometric elements is preferably printed by Simultan-offset, namely by inking first and second offset printing plates with the first and second inks, respectively, and by transferring resulting first and second ink patterns from the first and second offset printing plates onto a common blanket cylinder prior to printing. Other printing processes could be contemplated (such as intaglio printing) provided the printing process is adapted to print the multiplicity of geometric elements with an adequate register between the first and second inks.
Also claimed is an object comprising a substrate and a printed security feature in accordance with the invention, which printed security feature is provided onto the substrate. In this context, the printed security feature is advantageously provided on a portion of the substrate which absorbs a substantial part of the non-visible light excitation. This portion can either be a portion of the substrate itself or a suitable layer applied onto the substrate prior to printing of the security feature. This portion ensures a better contrast between the security feature and the background (when illuminated with non-visible light) as the background will appear mostly dark under illumination with non-visible light.
The object can be a value document (in particular a high security document such as a banknote), or a security element that is applicable onto an article to be protected against forgery (in particular a foil element, such as transferable foil element that can be transferred by e.g. hot-stamping or a foil element that can be laminated onto a suitable surface of the article).
Also claimed is a process of producing an object comprising a substrate and a printed security feature, wherein the process includes providing a printable substrate and printing the security feature in accordance with the invention onto the substrate.
Further advantageous embodiments of the invention are discussed below.
Other features and advantages of the present invention will appear more clearly from reading the following detailed description of embodiments of the invention which are presented solely by way of non-restrictive examples and illustrated by the attached drawings in which:
The present invention will be described in the particular context of a printed security feature which is printed by means of at least first and second fluorescent inks which produce corresponding visible responses when subjected to non-visible light excitation, the first and second inks producing distinct visible responses having respectively first and second fluorescent colours which are different from one another. In the examples that will be described hereinafter, the first fluorescent ink is an ink that fluoresces a green colour, while the second fluorescent ink is an ink that fluoresces a red colour. These examples are purely illustrative and other fluorescent colours could be contemplated without departing from the scope of the invention as defined by the claims.
As this will be appreciated hereinafter, the first and second fluorescent inks may advantageously combine, in certain locations of the printed security feature, to form a third fluorescent colour resulting from additive mixture of the first and second fluorescent colour. It will however be appreciated that the third colour will actually be dependent on the relevant dimensions of the areas printed with the first and second inks and the relevant contributions of the first and second fluorescent colours in the additive mixture. Small dimensions that cannot be resolved by the naked eye will enhance the additive mixture of the first and second fluorescent colours as the individual portions printed with the two inks will not be visible to the naked eye in the regions where they are contiguous. The more the red contribution, the more the third colour will turn from yellow to orange and to red. The more the green contribution, the more the third colour will turn to a light green and to green.
This being said, it is also possible, within the scope of the invention, to conceive the relevant locations of the printed security feature where the two inks are contiguous in such a way as to create a fluorescent structure that is recognizable with the naked eye.
In any event, the resulting structure produced by the combination of the first and second inks provides additional security in that it can be identified either by the naked eye or by means of suitable magnifying means.
It the present example, it will be assumed that the non-visible light excitation is ultraviolet excitation. It is however to be appreciated that the non-visible light excitation could alternatively be a near-infrared excitation or any other excitation outside the visible spectrum that can suitably trigger a visible response. Within the scope of the present invention, only one or more than two inks responsive to the non-visible light excitation could be contemplated.
In each case, the printed security feature is provided on a suitable printable substrate and includes a printed area consisting of a multiplicity of geometric elements (generically designated by reference GE) that are printed with a given distribution over the printed area. In this context, the printed security feature is advantageously provided on a portion of the substrate which absorbs a substantial part of the non-visible light excitation. This portion can either be a portion of the substrate itself or a suitable layer applied onto the substrate prior to printing of the security feature. This portion ensures a better contrast between the security feature and the background (when illuminated with non-visible light) as the background will appear mostly dark under illumination with non-visible light (as shown in the photographic illustrations of
In the examples that will be discussed hereinafter, the geometric elements are advantageously printed with at least first and second fluorescent inks (namely a green fluorescent ink and a red fluorescent ink as mentioned above) which exhibit the same or substantially the same optical appearance when illuminated with visible white light, such that the printed security feature produces a first graphical representation (designated by references A1 to A11 in
In the context of an alternate (twelfth) embodiment, it will be appreciated that third and fourth fluorescent inks are used in addition to the first and second fluorescent inks, the third and fourth fluorescent inks exhibiting the same or substantially the same optical appearance when illuminated with visible white light, which optical appearance is however different from the optical appearance of the first and second fluorescent inks. When illuminated with non-visible light, the printed security feature in accordance with this alternate embodiment produces the same (or substantially the same) second graphical representation with the distinctive two-dimensional graphic element B which is revealed only when the printed security feature is illuminated with non-visible light (i.e. the pattern “100”).
In all of the examples of
In a particular illustrative example of the twelfth embodiment mentioned above, the printed area of the printed security feature includes two printed sections that are each printed along the same principle. More precisely, the lower section of the printed security feature is printed with the same first and second fluorescent inks as in the other embodiments. The upper section of the printed security feature is printed with the aforementioned third and fourth fluorescent inks, which exhibit a different optical appearance under visible light than the first and second fluorescent inks, but the same fluorescent properties as the first and second fluorescent inks. The upper portion is likewise subdivided in at least three printed portions, including first and second printed portions, adjacent to the distinctive two-dimensional graphic element B, and a third printed portion, inside boundaries 200 of the distinctive two-dimensional graphic element B, as again schematically illustrated by
It will be appreciated that the illustrated examples all share a common subdivision into the printed portions P1, P2, P3 as illustrated in
It shall be understood that, in accordance with the invention, the first and second inks are printed in register one with respect to the other so that the boundaries 200 of the distinctive two-dimensional graphic element B are not visible when the printed security feature is illuminated with visible white light and the distinctive two-dimensional graphic element B only becomes visible when the printed security feature is illuminated with non-visible light.
The first and second inks are printed in register one with respect to the other so that the boundaries 200 of the two-dimensional graphic element B are not visible when the printed security feature is illuminated with visible white light and the two-dimensional graphic element B only becomes visible when the printed security feature is illuminated with non-visible light.
In the fourth embodiment, the repetitive elements are interconnected contiguous geometric elements 45 (here designed as cubic shapes), whereas in the fifth to eighth embodiments, the repetitive elements 55, 65-66, 71, 85-86 are not contiguous in certain locations of the relevant printed area 51, 61, 71, 81. In the sixth embodiment, the geometric elements GE include a juxtaposition of first and second distinctive geometric elements 65-66, namely first geometric elements 65 having the shape of a cross and second geometric elements 66 having the shape of a square. In the seventh embodiment, the geometric elements GE include the alphanumerical string “100” which is repeated over the surface of the printed area 71. In the eighth embodiment, the geometric elements GE include a juxtaposition of first and second geometric elements 85, 86 which are separated by an unprinted separation line 88.
The subdivision of the geometric elements GE (45) of the fourth embodiment into the contiguous portions GE_a, GE_b is similar in principle to the subdivision adopted in the context of the first to third embodiments, namely follows substantially the relevant shape of the geometric elements GE (45). In contrast, in the context of the fifth to eight embodiments, the first and second contiguous portions GE_a, GE_b produce, when subjected to the non-visible light excitation, a structure comprising geometric patterns having a distinctive shape that is different from a shape of the geometric element GE (55, 65-66, 75, 85-86). More precisely, the structure shown in the fifth and eighth embodiments (
Reference will now be made to an illustrative example of a printed security feature in accordance with a twelfth embodiment of the invention, which twelfth embodiment is a variant of the eighth embodiment shown in
According to this twelfth embodiment (not illustrated), the printed security feature includes a printed area consisting of a multiplicity of geometric elements GE. By way of illustration, the multiplicity of geometric elements takes the shape of repetitive elements forming a screen, which repetitive elements are dimensionally-modulated to produce a corresponding halftone image similar to the halftone image A8 of
In contrast to the eighth embodiment, the printed area includes, in this illustrative example, a first (lower) section (representing in this case the landscape with the Matterhorn mountain) and a second (upper) section (representing in this case the sky surrounding the Matterhorn mountain). The subdivision into first and second sections is obviously purely illustrative.
In this illustrative example, the first (lower) section (which consists of geometric elements) is printed with the same first and second fluorescent inks as in the other embodiments. The explanations provided hereinabove therefore also apply to the first section which is printed in exactly the same manner as before.
In this illustrative example, the second (upper) section (which consists of geometric elements) is printed with third and fourth fluorescent inks, which exhibit the same or substantially the same optical appearance when illuminated with visible white light, which optical appearance is however different from the optical appearance of the first and second fluorescent inks. In this way, a clear distinction can be made between the first and second printed sections of the printed security feature in accordance with this twelfth embodiment.
The third fluorescent ink however exhibits the same or substantially the same first fluorescent colour as the first fluorescent ink (i.e. a green fluorescent colour in this example). Likewise, the fourth fluorescent ink exhibits the same or substantially the same second fluorescent colour as the second fluorescent ink (i.e. a red fluorescent colour in this example).
The second (upper) section is printed with the third and fourth fluorescent inks while respecting the same basic rules as in the case of the first (lower) section. In this way, when illuminated with non-visible light, the printed security feature in accordance with this twelfth embodiment produces the same (or substantially the same) second graphical representation with the distinctive two-dimensional graphic element B which is revealed only when the printed security feature is illuminated with non-visible light (i.e. the pattern “100” in this example). In that respect, in this illustrative example, the second graphical representation is basically identical to the second graphical representation B8 shown in
It will therefore be understood that, in this illustrative example, the upper section is likewise subdivided in at least three printed portions, including first and second printed portions, adjacent to the distinctive two-dimensional graphic element B, and a third printed portion, inside boundaries 200 of the distinctive two-dimensional graphic element B, as again schematically illustrated by
It will be appreciated that the principle described in relation to the twelfth embodiment is not limited to the particular illustrative example being described and can be applied as soon as one desires to provide the security feature with at least two printed sections with different optical appearances under visible light. This principle can therefore be extended to printed security features having more than two such printed sections and can in particular be applied in the context of any of the other embodiments described herein.
In the aforementioned embodiments, a ratio of a surface of the first contiguous portions GE_a, over a surface of the second contiguous portions GE_b, inside the boundaries 200 of the two-dimensional graphic element B is substantially equal to 1. In other words, in the illustrations of
In the context of the present invention, it is advantageous to ensure that the effective printed area covered by the geometric elements GE (i.e. the area effectively covered by the inks) is in the range of 30% to 70%, preferably in the range of 40% to 60%, even more preferably close to 50%. In other words, an ink coverage ratio of the printed security feature of the present invention is advantageously in the range of 30% to 70%, preferably in the range of 40% to 60%, and even more preferably close to 50%.
As far as the dimensions of the geometric elements GE and the spatial frequency thereof are concerned, it is preferable to ensure that the geometric elements GE are printed over the printed area with a spatial frequency of the order of 2 to 50 elements per millimetre.
Printing of the geometric elements GE is preferably carried out by Simultan-offset, namely by inking first and second offset printing plates with the first and second inks, respectively, and by transferring resulting first and second ink patterns from the first and second offset printing plates onto a common blanket cylinder prior to printing. Other printing processes could be contemplated (such as intaglio printing) provided the printing process is adapted to print the multiplicity of geometric elements with an adequate register between the first and second inks. A suitable Simultan-offset printing press is for instance disclosed in European Patent Publication No. EP 0 949 069 A1, which is incorporated herein by reference. The aforementioned security features 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110 can conveniently be printed on one or the other side of a sheet (or any other suitable substrate) using at least two of the four plate cylinders that cooperate with one or the other blanket cylinder of the main printing group of the printing press of EP 0 949 069 A1 (see FIG. 1 thereof where reference numerals 4 to 7, respectively 8 to 11, designate relevant plate cylinders cooperating with a common blanket cylinder 2, respectively 3). It will be understood that the twelfth embodiment described above could be printed using all four plate cylinders 4-7 or 8-11 cooperating with one or the other blanket cylinder 2 or 3. Alternatively, the aforementioned security features 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110 could also be printed on one side of the sheet using the two plate cylinders that cooperate with the blanket cylinder of the additional printing group of the printing press of EP 0 949 069 A1 (see FIG. 1 thereof where reference numerals 23 and 24 designate relevant plate cylinders cooperating with a common blanket cylinder 22).
Various modifications and/or improvements may be made to the above-described embodiments without departing from the scope of the invention as defined by the annexed claims.
As already mentioned, within the scope of the present invention, the printed area can consist of a multiplicity of geometric elements printed with a given distribution over the printed area of the security feature. The invention is not therefore limited to the illustrated examples and other geometric elements could be contemplated without departing from the scope of the invention as defined by the annexed claims.
Number | Date | Country | Kind |
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13167568 | May 2013 | EP | regional |
13179654 | Aug 2013 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2014/061406 | 5/13/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/184739 | 11/20/2014 | WO | A |
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Number | Date | Country | |
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20160121639 A1 | May 2016 | US |