BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to a method for treating the surface of an aluminum
support for a printing plate, and particularly to a method for treating the surface
of an aluminum support which is low in running costs and excellent in printing performance.
2. Description of the Related Art
[0002] An aluminum plate has been widely used as a support for a lithographic printing plate,
and a treatment of roughening the surface of the support, that is, a so-called graining
treatment has been given thereto in order to improve the adherence between the support
and a photosensitive layer and to give water retentivity to a non-picture portion.
As specific means for this graining treatment, there are proposed mechanical graining
methods due to sand-blast, ball graining, wire graining, brush graining with nylon
brush and abrasive/water slurry, slurry jet by spraying the surface with abrasive/water
slurry at a high pressure, and so on, and chemical graining methods of roughening
the surface with an etching agent containing a base, an acid or a mixture thereof.
[0003] In addition, there are proposed electrochemical graining methods as disclosed in
Japanese Patent Unexamined Publications No. Sho 54-146234 and No. Sho 48-28123.
[0004] For example, there are proposed methods in which a mechanical graining method and
an electrochemical graining method are combined, as disclosed in Japanese Patent Unexamined
Publication No. Sho 53-123205, Japanese Patent Examined No. Sho 57-16918, and Japanese
Patent Unexamined Publication No. Sho 62-25117.
[0005] There is also known a method in which a mechanical graining method is combined with
a chemical graining method by a saturated water solution of an aluminum salt of a
mineral acid, as disclosed in Japanese Patent Unexamined Publication No. Sho 56-55261.
[0006] However, in the case of the ball graining, not only the selection of the kind (material)
and size of balls used therein, the adjustment of the water content at the time of
graining, and so on, are difficult but also the productivity is poor because of batch
processing. Therefore, the ball graining is seldom used currently.
[0007] The wire graining is also apt to make graining uneven, and therefore it is seldom
used currently.
[0008] Further, if the control of electrolytic conditions is selected properly in the electrochemical
roughening method, considerably good supports can be obtained. However, the power
consumption in the electrolytic treatment is large, and the waste disposal of an electrolytic
liquid also costs much. There is another defect that the property of graining varies
largely in accordance with the metal structure of the support.
[0009] In addition, also in the case of the chemical roughening, similarly to the electrochemical
roughening method, there is a defect that the waste disposal of a treatment liquid
costs much, and it takes a long time to perform the disposal.
[0010] In a slurry jet method (U.S. Patent No. 4,613,413 and U.S. Patent No. 4,746,591),
slurry containing abrasive fine powder dispersed therein is accelerated and sprayed
to an aluminum surface by compressed air, or the like. Accordingly, since it is necessary
to spray a high-pressure fluid at a high rate, the equipment therefor becomes large
in scale. In addition, there are many troubles such as abrasion, choking, and so on,
of pipe arrangements due to the slurry, so that it costs much for power for high-pressure
pumps, etc., equipment maintenance, and so on.
[0011] In the brush graining method, supports excellent in performance can be obtained continuously
by brushing aluminum supports by means of a rotating brush with abrasive slurry (so-called
pumice generally obtained from valcanic ashes, or alumina or the like. The abrasive
slurry has a certain hardness, that is, the hardness of which is not less than 6 in
new Mohs scale. The minimum-side-to-maximum-side ratio of grain of the abrasive slurry
is less than 0.4 and the grain sharpest angle of which is less than 45°. However,
there has been a case that the abrasive inserts the support and brought thereby causes
a trouble in the next step because the abrasive is so hard, or often so sharp. Additionally,
in the rough surface of the support, the valley portion is considerably deep in comparison
with any other method, so that the mountain portions form very sharply projecting
burrs. Therefore, sometimes, the printing performance is lowered particularly in "stains",
and it costs much to exchange the brush exhausted by abrasion, and to dispose the
exhausted abrasive, and so on.
SUMMARY OF THE INVENTION
[0012] The present invention has been made to solve the foregoing problems in the brush
graining, and therefore an object of the present invention was to provide a method
for treating the surface of an aluminum plate for a printing plate, in which a support
having a good printing performance without any "stains" and with improved "narrowing
of shadowed portions" can be manufactured at a low cost and stably.
[0013] In order to solve the above problems, the present invention has been acheived by
the provision of a method for treating the surface of an aluminum support for a printing
plate through the brush-graining surface treatment technique in which slurry of abrasive
is rubbed against the support by means of an abrasive brush to perform graining on
a surface of the support, characterized in that abrasive having a new Mohs scale which
is equal to or greater than 2 but less than 6 is used.
[0014] Also, according to the present invention, there is provided a method for treating
the surface of an aluminum support for a printing plate through the brush-grain surface
treatment technique in which slurry of abrasive is rubbed against the support by means
of an abrasive brush to perform graining on a surface of the support, characterized
in that said abrasive includes grains having a minimum-side-to-maximum-side ratio
is not less than 0.4, and having the sharpest angle equal to or greater than 45°.
[0015] Further, according to the present invention, there is provided a method for treating
the surface of an aluminum support for a printing plate through the brush-graining
surface treatment technique in which slurry of abrasive is rubbed against the support
by means of an abrasive brush to perform graining on a surface of the support, characterized
in that aluminum hydroxide is used for said abrasive.
[0016] In the method for treating the surface of an aluminum support for a printing plate
as described above, the average grain size of said abrasive is set to be equal to
or greater than 5 µm but less than 200 µm, and the density of said abrasive slurry
is set to be equal to or greater than 5 weight per cent but less than 90 weight per
cent.
[0017] The above and other objects and features of the present invention will be more apparent
from the following description taken in conjunction with the accompanying drawing.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure is a schematic side view showing a process for treating the surface of an
aluminum support for a printing plate according to the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0019] A description will be given in detail of embodiments of the present invention with
reference to the accompanying drawing.
[0020] Figure is a schematic side view showing a process for the surface of an aluminum
support for a printing plate according to the present invention.
[0021] In the figure, an aluminum support 1 is supported by pass rollers 2 so as to be subjected
to surface treatment mechanically with abrasive brushes 3 and abrasive slurry 4. The
abrasive slurry 4 is applied to the surface of the aluminum support 1 by a circulating
pump 6 through a pipe 20, rubbed by the abrasive brushes 3 against the aluminum support
1, and then returned from a receiver 22 to a circulating tank 5 through an abrasive
slurry return pipe 7. In the surface treatment by brush graining, the grain size of
the abrasive slurry becomes smaller so that the surface treatment becomes difficult
if the slurry once used for surface treatment is used again as it is. Therefore, new
grain abrasive and water are supplied to the circulating tank 5 through pipes 12 and
13, respectively. Consequently, a part of the abrasive slurry flows to an overflow
tank 5a. The overflowed abrasive is classified by a cyclone 8 so that large-grain
abrasive is returned to the circulating tank 5 while the remainder small-grain abrasive
is discharged to the outside of the system through an abrasive slurry discharge pipe
10. The discharged abrasive is solid/liquid separated by a centrifuge separator 11,
and used small-grain-size abrasive 14 is extracted as grains so as to be treated.
[0022] In the above-mentioned process, the hardness of abrasive used as brush graining is
lower than any conventional one. Conventionally, 10 kinds of minerals are selected
in accordance with the hardness used as Mohs scale in the field of minerals, and a
surface is scraped with the thus selected minerals one by one sequentially so that
if there is a damage, it is determined that the surface is softer than the mineral.
Though the hardness of the abrasive has been selected to be not less than 5 in Mohs
scale conventionally, it is selected to be equal to or greater than 2 but less than
6 in new Mohs scale according to the present invention. Because of an increase of
use, the new Mohs scale is defined by adding 5 kinds so that the old scale between
1 and 10 are widened to between 1 and 15. In the sections 1-15 of the new Mohs scale,
1-6 are the same as those in the old Mohs scale.
[0023] The hardness equal to or greater than 2 but less than 6 means the hardness corresponding
to No. 2 gypsum, No. 3 calcite, No. 4 fluorite and No. 5 apatite, respectively.
[0024] Also, in the above-mentioned process, the minimum-side-to-maximum-side ratio (as
three-dimensional size ratio) of the grain should be 0.4 or more, which has been regarded
as good conventionally, and the sharpest angle of grains to be used should be 45°
or more. When the minimum-side-to-maximum-side ratio of the grain is less than 0.4,
and the sharpest angle of the grains is made to be less than 45°, the grain inserts
the surface of the aluminum support so that the grain is brought into the next step
causing a trouble as a result. It is necessary that the minimum-side-to-maximum-side
ratio of the grain is equal to or greater than 0.4, preferably not less than 0.5 but
not more than 1, and the sharpest angle of the grain should be equal to or greater
than 45°, preferably not less than 60° but not more than 120°.
[0025] Aluminum hydroxide may be adopted as the abrasive having the above-mentioned characteristics.
[0026] Further, it is effective that the average size of grains of the abrasive is equal
to or greater than 5 µm but less than 200 µm. It is desirable that the density of
the abrasive slurry is equal to or greater than 5 weight per cent but less than 90
weight per cent. If the average size of grains of the abrasive is equal to or greater
than 5 µm but less than 200 µm, graining with desired surface roughness can be attained.
If the average size of grains of the abrasive is less than 5 µm, the roughness is
insufficient, and if it is not less than 200 µm, the surface becomes too rough. The
more preferable range of the average size of grains of the abrasive is from 8 µm to
100 µm. On the other hand, if the density of the abrasive slurry is less than 5 weight
per cent, the surface roughness becomes insufficient so that the surface is apt to
be damaged by the brush, while if it is not less than 90 weight per cent, it becomes
difficult to handle the slurry. Although desired surface roughness can be obtained
under the above-described condition, the more preferable range of the density is from
10 weight per cent to 60 weight per cent.
(Examples)
[0027] Examples of the surface treatment method in accordance with the present invention
will be described below.
[0028] Aluminum hydroxide (new Mohs scale 3), pumice (new Mohs scale 5) and alumina (new
Mohs scale 12) having properly selected three-dimensional size and the selected sharpest
angle of grains were used as abrasive in the surface treatment process shown in Figure,
and the surfaces of aluminum supports for printing plates were treated with the respective
abrasive. Table 1 shows the relationship between the grain shapes and the printing
performances at that time.
[0029] This surface treatment was performed under the conditions as follows:
Table 1
| |
Examples |
Comparatives |
| |
1 |
2 |
3 |
4 |
1 |
2 |
| Abrasive |
aluminum hydroxide |
alumina |
alumina |
permis |
| Hardness (new Mohs scale) |
3 |
12 |
12 |
5 |
| 3-dimensional size ratio |
0.9 |
0.3 |
0.9 |
0.4 |
0.3 |
0.1 |
| Sharpest grain angle |
90° |
30° |
90° |
45° |
30° |
30° |
| Stains |
very good |
very good |
very good |
good |
bad |
good |
| Narrowing of shadowed portion |
very good |
very good |
very good |
very good |
very good |
good |
[0030] Aluminum hydroxide was used in Examples 1 and 2, and satisfied the conditions that
the abrasive has a new Mohs scale which is equal to or greater than 2 but less than
6, and that aluminum hydroxide is used for the abrasive. Alumina was used in Examples
3 and 4. Although the new Mohs scale thereof was high in this case, the three-dimensional
size ratio and the sharpest angle of grains satisfied the conditions that the abrasive
includes grains having a minimum-side-to-maximum-side ratio not less than 0.4, and
having a sharpest angle equal to or greater than 45°.
[0031] Any of Comparatives 1 and 2 did not satisfy any of Claims 1 to 4, and their printing
performance was bad.
[0032] The defects in the brush graining method were improved by the surface treatment method
of the present invention, and the printing quality against "narrowing of shadowed
portions" and "stains" was improved. Accordingly, the performance of printing could
be improved conspicuously.
[0033] The foregoing description of a preferred embodiment of the invention has been presented
for purposes of illustration and description. It is not intended to be exhaustive
or to limit the invention to the precise form disclosed, and modifications and variations
are possible in light of the above teachings or may be acquired from practice of the
invention. The embodiment was chosen and described in order to explain the principles
of the invention and its practical application to enable one skilled in the art to
utilize the invention in various embodiments and with various modifications as are
suited to the particular use contemplated. It is intended that the scope of the invention
be defined by the claims appended hereto, and their equivalents.
1. A method for treating a surface of an aluminum support for a printing plate, comprising
the steps of:
preparing abrasive having a new Mohs scale equal to or greater than 2 but less
than 6; and
rubbing slurry of said adrasive against said aluminum support by means of an abrasive
brush to perform graining on the surface of said aluminum support.
2. A method for treating a surface of an aluminum support for a printing plate, comprising
the steps of:
preparing abrasive with grains having a minimum-side-to-maximum-side ratio not
less than 0.4, and having the sharpest angle equal to greater than 45°; and
rubbing slurry of said adrasive against said aluminum support by means of an abrasive
brush to perform graining on the surface of said aluminum support.
3. A method for treating a surface of an aluminum support for a printing plate, comprising
the steps of:
preparing abrasive made of aluminum hydroxide; and
rubbing slurry of said adrasive against said aluminum support by means of an abrasive
brush to perform graining on the surface of said aluminum support.
4. A method for treating a surface of an aluminum support as claimed in claim 1, wherein
an average grain size of said abrasive is set to be equal to or greater than 5 µm
but less than 200 µm, and a density of said abrasive slurry is equal to or greater
than 5 weight per cent but less than 90 weight per cent.
5. A method for treating a surface of an aluminum support as claimed in claim 2, wherein
an average grain size of said abrasive is equal to or greater than 5 µm but less than
200 µm, and a density of said abrasive slurry is equal to or greater than 5 weight
per cent but less than 90 weight per cent.
6. A method for treating a surface of an aluminum support as claimed in claim 3, wherein
an average grain size of said abrasive is equal to or greater than 5 µm but less than
200 µm, and a density of said abrasive slurry is equal to or greater than 5 weight
per cent but less than 90 weight per cent.