Background of the Invention
[0001] This invention relates to a method for processing silver halide color photosensitive
(photographic) materials. In particular, this invention relates to a method for processing
silver halide color photosensitive materials wherein the color developer is regenerated
and reused to reduce the amount of the waste solution. By this method, the silver
halide color photosensitive materials have their stable finish and excellent images.
[0002] As environmental pollution by industrial waste waters poses problems recently, various
efforts are made to reduce the amount of waste solutions for reducing the pollution
load on the environment in the processing of photosensitive materials. Among these
efforts the most important is that toward the reduction of the amount of waste color
developer having a high BOD (biochemical oxygen demand) and COD (chemical oxygen demand).
Methods proposed heretofore for solving this problem fall is into categories: (1)
a method wherein the amount of the color developer to be replenished is reduced while
lowering of the color developing activity is prevented by enhancing the color development
temperature and (2) a regeneration processing method wherein halogen accumulated in
the used color developer is removed to restore the developability thereof.
[0003] In the former method, restoration of the activity of the developer reduced due to
the accumulation of halogen ions such as iodine, bromine and chlorine ions released
from the photosensitive material in the development step is achieved by elevating
the temperature or by increasing the pH or the amount of the color developing agent.
Although the operation is easy in this method, degree of compensation obtainable is
limited and it is difficult to markably reduce the amount of the replenisher to minimize
the amount of the waste solution.
[0004] In the latter regeneration processing method, the accumulated halogen ions are removed
by an anion exchange resin method described in the Journal of the SMPTE,
65, 478-484 (September, 1956) or an electrodialysis method as described in Japanese
Patent Unexamined Published Application (hereinafter referred to as 'J. P. KOKAI')
No. 52-119934. Although these methods have a demerit in that they require a special
apparatus, they ahve a merit in that they can be conducted without discharging the
waste color developer. In view of these circumstances, further studies are being made
into these methods.
[0005] In particular, the anion exchange resin method is employed relatively widely, since
the cost of the apparatus in this method is lower than that in the electrodialysis
method. Studies are being made for further improving this method. The improved methods
developed so for include, for example, a method for preventing deterioration of the
effect of the anion exchange resin by pretreating the color developer with an adsorbent
before processing it with the anion exchange resin as described in the Journal of
Applied Photographic Engineering, Vol. 5, No. 4, 216-219 (Autumn, 1979) and a method
for improving a miniaturized system wherein a disposable anion exchange resin is used
as described in the Journal of Image Technology Vol. 13, No. 3, 85 to 89 (June, 1987).
[0006] However, when a color developer is used repeatedly by regeneration with an anion
exchange resin, oxidation products of the color developing agent, oxidation and decomposition
products of a preservative and substances dissolved out of a silver halide color photosensitive
material accumulate in the color developer to change the finishing effect of the silver
halide color photographic material and particularly the sensitivity is changed and
the fog is increased. Another problem is that the image-maintaining effect of the
color photosensitive material after the processing is impaired and particularly yellow
stain increases during the storage at a high temperature and a high humidity. It is
thus difficult to reuse the color developer over a long period of time. Therefore,
the color developer must be controlled by a complicated method such as a method wherein
a part thereof is replaced with fresh color developer at a given time interval, a
method wherein the used color developer is partially discarded while a given amount
of fresh color developer is continuously replenished or a method wherein the pH and
the composition of the color developer are adjusted in order to compensate for change
in the performacne thereof.
[0007] EP-A-0 128 720 discloses a process for regenerating a colour developer which includes
the step of contacting it with an anion exchanger. The anion exchanger can include
quaternary ammonium salt-type exchange groups which remove bromide ions from the used
colour developer.
[0008] EP-A-0 252 288 teaches that pyrazoloazole dyes are superior to pyrazolone dyes due
to their possessing superior storage stability with respect to fading or yellow stains.
Summary of the Invention
[0009] Therefore, a primary object of the present invention is to provide a method for processing
silver halide color photosensitive materials by repeatedly regenerating and reusing
(hereinafter referred to as 'regenerating') a color developer with an anion exchanger
in such that changes in the sensitivity and fog, and deterioration of the shelf stability
of the image are inhibited, no complicated control is required and discharge of the
color developer is substantially unnecessary.
[0010] Other objects of the present invention will be clear from the following description
and Examples.
[0011] The present invention has been accomplished on the basis of a finding that the above-described
object of the present invention is attained by incorporating at least one pyrazoloazole
magenta coupler of the following general formula (I) into a silver halide color photosensitive
material to be processed with a color developer which is to be regenerated with an
anion exchanger:

wherein R₁ represents a hydrogen atom or a substituent, X represents a hydrogen atom
or a group capable of being eliminated by a coupling reaction with an oxidized product
of an aromatic primary amine developing agent, and Za, Zb and Zc each represent methine,
substituted methine, =N- or -NH- with the provisos that one of the Za

Zb bond and Zb-Zc bond is a double bond and the other is a single bond, that when
the Zb

Zc bond is a carbon-to-carbon double bond, it may constitute a part of an aromatic
ring, that R₁ or X may form a polymer (at least a dimer) by acting as a bridging group
to one or more other groups of general formula (I) and that when Za, Zb or Zc is a
substituted methine, the substituted methine may form a polymer (at least a dimer)
by acting as a bridging group to one or more other groups of general formula (I).
[0012] In the general formula (I), the term 'polymers' indicates those having two or more
groups of the general formual (I) in the molecule including bis-compounds and polymer
couplers. The polymer couplers herein may be homopolymers comprising only a monomer
having a moiety represented by the general formula (I) (preferably having a vinyl
group; hereinafter referred to as 'vinyl monomer') or they may form copolymers with
a non-color-developing ethylenic monomer which does not couple with an oxidized product
of an aromatic primary amine developing agent.
[0013] The compounds of the general formula (I) are nitrogen-containing heterocyclic couplers
of five-membered ring / five-membered ring condensation type. The color-developing
mother nucleus thereof has isoelectronic aromatic properties like those of naphthalene
and a chemical structure generally called 'azapentalenes'. Among the couplers represented
by the general formula (I), preferred are 1H-imidazo[1,2-b]pyrazoles, 1H-pyrazolo[1,5-b]pyrazoles,
1H-pyrazolo[5,1-c][1,2,4]triazoles, 1H-pyrazolo[1,5-b][1,2,4]triazoles, 1H-pyrazolo[1,5-d]tetrazoles
and 1H-pyrazolo[1,5-a]benzimidazoles represented by the following general formulae
(II), (III), (IV), (V), (VI) and (VII). Among them, those of the formulae (II), (IV)
and (V) are particularly preferred. The most preferred are the compounds of the general
formula (V).

[0014] In the general formulae (II) to (VII), R₂, R₃ and R₄ each represent a hydrogen atom,
a halogen atom, an alkyl group, an aryl group, a heterocyclic group, a cyano group,
an alkoxy group, an aryloxy group, a heterocyclic oxy group, an acyloxy group, a carbamoyloxy
group, a silyloxy group, a sulfonyloxy group, an acylamino group, an anilino group,
a ureido group, an imido group, a sulfamoylamino group, a carbamoylamino group, an
alkylthio group, an arylthio group, a heterocyclic thio group, an alkoxycarbonylamino
group, an aryloxycarbonylamino group, a sulfonamido group, a carbamoyl group, an acyl
group, a sulfamoyl group, a sulfonyl group, a sulfinyl group, an alkoxycarbonyl group
or an aryloxycarbonyl group, and X represents a hydrogen atom, a halogen atom, a carboxy
group or a group bonded with the carbon atom at the coupling site through an oxygen
atom, a nitrogen atom or a sulfur atom and capable of being coupled off.
[0015] R₂, R₃, R₄ or X may be a divalent group to form a bis-compound. When the part represented
by any of the general formulae (II) to (VII) is a part of a vinyl monomer, R₂, R₃
or R₄ represents a single bond or a connecting group through which this part is bonded
to the vinyl group.
[0016] Examples of R₂, R₃ and R₄ include a hydrogen atom, a halogen atom (such as chlorine
or bromine atom), an alkyl group [such as methyl, propyl, i-propyl, t-butyl, trifluoromethyl,
tridecyl, 3-(2,4-di-t-amylphenoxy)propyl, 2-dodecyloxyethyl, 3-phenoxypropyl, 2-hexylsulfonylethyl,
cyclopentyl or benzyl group], an aryl group (such as phenyl, 4-t-butylphenyl, 2-4-di-t-amylphenyl
or 4-tetradecanamidophenyl group), a heterocyclic group (such as 2-furyl, 2-thienyl,
2-pyrimidinyl or 2-benzothiazolyl group), a cyano group, an alkoxy group (such as
methoxy, ethoxy, 2-methoxyethoxy, 2-dodecyloxyethoxy, 2-phenoxyethoxy or 2-methanesulfonylethoxy
group), an aryloxy group (such as phenoxy, 2-methylphenoxy or 4-t-butylphenoxy group),
a heterocyclic oxy group (such as 2-benzimidazolyloxy group), an acyloxy group (such
as acetoxy or hexadecanoyloxy group), a carbamoyloxy group (such as N-phenylcarbamoyloxy
or N-ethylcarbamoyloxy group), silyloxy group (such as trimethylsilyloxy group), a
sulfonyloxy group (such as dodecylsulfonyloxy group), an acylamino group [such as
acetamido, benzamido, tetradecanamido, α - (2,4-di-t-amylphenoxy)butylamido, γ -(3-t-butyl-4-hydroxyphenoxy)butylamido,
or α - {4-(4-hydroxyphenylsulfonyl)phenoxy} decanamido group], an anilino group [such
as phenylamino, 2-chloroanilino, 2-chloro-5-tetradecanamidoanilino, 2-chloro-5-dodecyloxycarbonylanilino,
N-acetylanilino or 2-chloro-5- { α -(3-t-butyl-4-hydroxyphenoxy)dodecanamido } anilino
group ], a ureido group (such as phenylureido, N-butyl-N′-methylureido, methylureido
or N,N-dibutylureido group), an imido group [such as N-succinimido, 3-benzylhydantoinyl
or 4-(2-ethylhexanoylamino)phthalimido group], a sulfamoylamino group (such as N,N-dipropylsulfamoylamino
or N-methyl-N-decylsulfamoylamino group), an alkylthio group [such as methylthio,
octylthio, tetradecylthio, 2-phenoxyethylthio, 3-phenoxypropylthio or 3-(4-t-butylphenoxy)propylthio
group], an arylthio group (such as phenylthio, 2-butoxy-5-t-octylphenylthio, 3-pentadecylphenylthio,
2-carboxyphenylthio or 4-tetradecaneamidophenylthio group), a heterocyclic thio group
(such as 2-benzothiazolylthio group), an alkoxycarbonylamino group (such as methoxycarbonylamino
or tetradecyloxycarbonylamino group), an aryloxycarbonylamino group (such as phenoxycarbonylamino
or 2,4-di-tert-butylphenoxycarbonylamino group), a sulfonamido group (such as methanesulfonamido,
hexadecanesulfonamido, benzenesulfonamido, p-toluenesulfonamido, octadecanesulfonamido
or 2-methyloxy-5-t-butylbenzenesulfonamido group), a carbamoyl group [such as N-ethylcarbamoyl,
N-N-dibutylcarbamoyl, N-(2-dodecyloxyethyl)carbamoyl, N-methyl-N-dodecylcarbamoyl
or N- {3-(2,4-di-tert-amylphenoxy)propyl} carbamoyl group], an acyl group [such as
acetyl, (2,4-di-tert-amylphenoxy)acetyl or benzoyl group], a sulfamoyl group [such
as N-ethylsulfamoyl, N,N-dipropylsulfamoyl, N-(2-dodecyloxyethyl)sulfamoyl, N-ethyl-N-dodecylsulfamoyl
or N,N-diethylsulfamoyl group], a sulfonyl group (such as methanesulfonyl, octanesulfonyl,
benzenesulfonyl or toluenesulfonyl group), a sulfinyl group (such as octanesulfinyl,
dodecylsulfinyl or phenylsulfinyl group), an alkoxycarbonyl group (such as methoxycarbonyl,
butyloxycarbonyl, dodecylcarbonyl or octadecylcarbonyl group) or an aryloxycarbonyl
group (such as phenyloxycarbonyl or 3-pentadecyloxycarbonyl group). X represents a
hydrogen atom, a halogen atom (such as chlorine, bromine or iodine atom), a carboxyl
group or a group connecting through an oxygen atom (such as acetoxy, propanoyloxy,
benzoyloxy, 2,4-dichlorobenzoyloxy, ethoxyoxaloyloxy, pyruvoyloxy, cinnamoyloxy, phenoxy,
4-cyanophenoxy, 4-methanesulfonamidophenoxy, 4-methanesulfonylphenoxy, α -naphthoxy,
3-pentadecylphenoxy, benzyloxycarbonyloxy, ethoxy, 2-cyanoethoxy, benzyloxy, 2-phenethyloxy,
2-phenoxyethoxy, 5-phenyltetrazolyloxy or 2-benzothiazolyloxy group), a group connecting
through a nitrogen atom [such as benzenesulfonamido, N-ethyltoluenesulfonamido, heptafluorobutanamido,
2,3,4,5,6-pentafluorobenzamido, octanesulfonamido, p-cyanophenylureido, N,N-diethylsulfamoylamino,
1-piperidyl, 5,5-dimethyl-2,4-dioxo-3-oxazolidinyl, 1-benzylethoxy-3-hydantoinyl,
2N-1,1-dioxo-3(2H)-oxo-1,2-benzoisothiazolyl, 2-oxo-1,2-dihydro-1-pyridinyl, imidazolyl,
pyrazolyl, 3,5-diethyl-1,2,4-triazol-1-yl, 5- or 6-bromobenzotriazol-1-yl, 5-methyl-1,2,3,4-triazol-1-yl,
benzimidazolyl, 3-benzyl-1-hydantoinyl, 1-benzyl-5-hexadecyloxy-3-hydantoinyl, 5-methyl-1-tetrazolyl,
4-methoxyphenylazo, 4-pivaloylaminophenylazo or 2-hydroxy-4-propanoylphenylazo group),
or a group connecting through a sulfur atom (such as phenylthio, 2-carboxyphenylthio,
2-butoxy-5-t-octylphenylthio, 4-methanesulfonamidophenylthio, 2,5-dibutoxyphenylthio,
4-methanesulfonylphenylthio, 4-octanesulfonamidophenylthio, 2-butoxyphenylthio, 4-dodecyloxyphenylthio,
2-(2-hexanesulfonylethyl)-5-tert-octylphenylthio, benzylthio, 2-cyanoethylthio, 1-ethoxycarbonyltridecylthio,
5-phenyl-2,3,4,5-tetrazolylthio, 2-benzothiazolylthio, 2-dodecylthio, 2-dodecylthio-5-thiophenylthio
or 2-phenyl-3-dodecyl-1,2,4-triazolyl-5-thio group).
[0017] When R₂, R₃, R₄ or X is a divalent group to form a bis compound, the divalent group
is a substituted or unsubstituted alkylene group (such as methylene, ethylene, 1,10-decylene
or -CH₂CH₂-O-CH₂CH₂- group), a substituted or unsubstituted phenylene group (such
as 1,4-phenylene, 1,3-phenylene,

or a -NHCO-R₂-CONH- group in which R₂ represents a substituted or unsubstituted alkylene
or phenylene group.
[0018] When the part represented by one of the general formulae (II) to (VII) is a part
of the vinyl monomer, the connecting group represented by R₂, R₃ or R₄ includes a
group comprising a combination of groups selected from the group consisting of substituted
or unsubstituted alkylene groups (such as methylene, ethylene, 1,10-decylene and -CH₂CH₂OCH₂CH₂-),
substituted or unsubstituted phenylene groups (such as 1,4-phenylene, 1,3-phenylene,

and

-NHCO-, -CONH-, -O-, -OCO- and aralkylene groups such as

[0019] The vinyl group of the vinyl monomer includes those having a substituent in addition
to these represented by the general formulae (II) to (VII). The preferred substituents
are hydrogen atom, chlorine atom and lower alkyl groups having 1 to 4 carbon atoms.
[0020] Examples of the uncoupling ethylenic monomer which does not couple with the oxidized
products of the aromatic primary amine developing agent include acrylic acid, α -chloroacrylic
acid, α -alkylacrylic acids (such as methacrylic acid), esters and amides derived
from these acrylic acids (such as acrylamide, n-butylacrylamide, t-butylacrylamide,
diacetoneacrylamide, methacrylamide, methyl acrylate, ethyl acrylate, n-propyl acrylate,
n-butyl acrylate, t-butyl acrylate, isobutyl acrylate, 2-ethylhexyl acrylate, n-octyl
acrylate, lauryl acrylate, methyl methacrylate, ethyl methacrylate, n-butyl methacrylate
and β -hydroxymethacrylate), methylenedibisacrylamide, vinyl esters (such as vinyl
acetate, vinyl propionate and vinyl laurate), acrylonitrile, methacrylonitrile, aromatic
vinyl compounds (such as styrene and its derivatives, vinyltoluene, divinylbenzene,
vinylacetophenone and sulfostyrene), itaconic acid, citraconic acid, crotonic acid,
vinylidene chloride, vinyl alkyl ethers (such as vinyl ethyl ether), maleic acid,
maleic anhydride, maleic esters, N-vinyl-2-pyrrolidone, N-vinylpyridine and 2- and
4-vinylpyridines. Two or more kinds of the uncoupling ethylenically unsaturated monomers
may be used in combination.
[0021] Examples of the coupler compounds of the general formulae (II) to (VII) and methods
for synthesizing them are disclosed, for example in the literature shown below.
[0022] The compounds of the general formula (II) are described in J. P. KOKAI No. 59-162348.
The compounds of the general formula (III) are described in J. P. KOKAI No. 60-43659.
Those of the general formula (IV) are described in Japanese Patent Publication for
Opposition Purpose (hereinafter referred to as 'J. P. KOKOKU) No. 47-27411. Those
of the general formula (V) are described in J. P. KOKAI Nos. 59-171956 and 60-172982.
Those of the general formula (VI) are described in J. P. KOKAI No. 60-33552. Those
of the general formula (VII) are described in U. S. Patent No. 3,061,432.
[0023] High color developing ballast groups described in J. P. KOKAI Nos. 58-42045, 59-214854,
59-177553, 59-177544 and 59-177557 can be applied to all of the compounds of the above
general formulae (II) to (VII).
[0025] These couplers are used in an amount of 2x10⁻³ mol to 5x10⁻¹ mol, preferably 1x10
⁻² mol to 5x10⁻¹ mol, per mol of silver in the emulsion layer.
[0026] Two or more couplers can be contained in the same layer or the same coupler can be
contained in two or more layers in order to obtain satisfactory characteristic properties
required of the photosensitive material.
[0027] The coupler can be introduced into the silver halide emulsion layer by a known method
such as that described in U. S. Patent No. 2,322,027. The coupler may be dissolved,
for example, in one of the following solvents: alkyl phthalates (such as dibutyl phthalate
and dioctyl phthalate), phosphoric esters (such as diphenyl phosphate, triphenyl phosphate,
tricresyl phosphate and dioctylbutyl phosphate), citric esters (such as tributyl acetylcitrate),
benzoic esters (such as octyl benzoate), alkylamides (such as diethyllaurylamide),
fatty acid esters (such as dibutoxyethyl succinate and diethyl azelate), and trimesic
esters (such as tributyl trimesate). Also the coupler may be dissolved in an organic
solvent having a boiling point of about 30 °C to 150 °C such as a lower alkyl acetate,
e.g. ethyl acetate or butyl acetate, ethyl propionate, sec-butyl alcohol, methyl isobutyl
ketone, β-ethoxyethyl acetate or methyl cellosolve acetate and then the solution is
dispersed in a hydrophilic colloid. The above-described organic solvents of high and
low boiling points may be mixed together.
[0028] Now description will be made on the regeneration method for the color developer with
the anion exchanger according to the present invention.
[0029] In the method of the present invention, a silver halide color photosensitive material
is continuously processed with a color developer while a replenisher is added thereto.
[0030] The regeneration method comprises the following steps:

[0031] Namely, the used color developer is processed as described above and reused as the
replenisher. The used color developer which overflows from the color development tank
upon the feeding of the replenisher is taken and subjected to the processing.
[0032] Various anion exchange resins can be used as the an ion exchangers. Among them, strongly
basic anion exchange resins having a quaternary ammonium salt-type exchange group
are preferred, since their halogen ion-exchange capacity is high. The anion exchange
resins mainly comprise a styrene/divinylbenzene copolymer and particularly preferably
have a divinylbenzene content of 3 to 12%. The quaternary ammonium salt-type exchange
groups will be further described below.
[0033] The basic structure of the anion exchange resin is as follows:

wherein X is a counter ion.
[0034] R₁, R₂ and R₃ are each preferably an alkyl group having 1 to 8 carbon atoms. The
groups of the formula:

include trimethylammonium, tributylammonium, trihexylammonium and trioctylammonium
type groups. Among them, trimethylammonium type resins are preferred, since they are
readily available on the market. They are available under trade names of, for example,
Amberlite IRA-400 and IRA-410 (products of Rohm & Haas Co.), LEWATIT M 600 (a product
of Bayer Co.) and Diaion SA-10A and PA-418 (products of Mitsubishi Chemical Industries,
Ltd.).
[0035] The counter ion of the ion exchange group can be exchanged with various ions by bringing
a solution of a salt of the ion into contact with another ion. The ion must be exchangeable
with the halogen ion in the color developer and must not exert any influence on the
processing capacity in the solution. From this viewpoint, the counter ion is, for
example, a carbonate ion, bicarbonate ion, hydroxyl ion, sulfate ion, nitrate ion,
phosphate ion, hydrogenphosphate ion or oxalate ion. Among these, the carbonate ion,
bicarbonate ion, hydroxyl ion or phosphate ion is preferred, since it is easily exchangeable
with the halogen ion and it has an effect of replenishing the necessary components
when the ion exchanger is used in the color developer.
[0036] The counter ion is carried by the resin by bringing the resin into contact with a
0.1 to 4 N solution of sodium carbonate, potassium carbonate, sodium hydrogencarbonate,
potassium hydrogencarbonate, sodium hydroxide, potassium hydroxide, sodium phosphate
or potassium phosphate.
[0037] The anion exchange resin having the counter ion can be brought into contact with
the used color developer by any method. In view of ease of the operation and the efficiency
of the ion exchange, a method wherein the color developer is passed through a column
containing the resin to continuously bringing them to contact with each other is preferred.
For increasing the efficiency of the ion exchange reaction, the rate of passing the
color developer is preferably in the range of 0.3 to 10 parts by volume, more preferably
0.5 to 5 parts by volume and particularly 0.5 to 3 parts by volume, per part by volume
of the resin layer per hour. After completion of the processing with the anion exchange
resin, necessary components are supplemented to the color developer in order to compensate
for their consumption by the processing or for their reduction by adsorption on the
anion exchange resin. The amounts of the components to be supplemented can be determined
by chemical analysis.
[0038] The components which are to be indispensably supplemented include the color developing
agent and a preservative such as hydroxylamine sulfite. If necessary, a chelating
agent; a buffering agent such as a carbonate, phosphate, potassium hydroxide or sodium
hydroxide; and an alkali are also replenished.
[0039] After the supplement of the components, the color developing replenisher thus prepared
has concentrations of the components higher than those to be kept in the color developing
tank. The ratio of concentrations of the components of the replenisher to those of
the color developer in the color development tank is usually 1.0/1 to 2.0/1. This
ratio varies depending on the amount of the replenisher to be added. The smaller the
amount of the replenisher, the higher the ratio. When the amount of the replenisher
is 100
mℓ or larger per m² of the photosensitive material, the ratio is preferably in the
range of 1.0 to 1.5. The same applies to pH. The pH of the replenisher is usually
higher than that of the color developer in the color developing tank by 0.1 to 1.0.
The relationship between pH and the amount of the replenisher is the same as that
between the concentration and the amount as described above.
[0040] When the photosensitive material is a printing material such as a color paper in
the regeneration processing method according to the present invention, the amount
of the color developer to be replenished is 50 to 300
mℓ, preferably 100 to 250
mℓ and most preferably 130 to 220
mℓ per m² of the photosensitive material. When the photosensitive material is a photographic
material such as a color negative film or color reversal film, the amount is 300 to
3000
mℓ, preferably 400 to 1500
mℓ and most preferably 500 to 1200
mℓ per m² of the material. As the amount of the replenisher is increased, the stabilization
of the performance becomes easier but, on the other hand, the regeneration process
must be conducted more frequently. Therefore, the preferred amounts of them the limited
in the above-described ranges to well balance them.
[0041] It is preferred for further increasing the effect of minimizing the change of the
sensitivity according to the present invention that the color developer be brought
into contact with an adsorbent described in the Journal of Applied Photographic Engineering,
Vol. 5, 216 to 219 (Autumn, 1979) prior to the step of bringing the color developer
into contact with the anion exchange resin.
[0042] The adsorbents usable in the present invention include, for example, phenol/formaldehyde-type
adsorbent resins, active carbon and surface-modified active carbon described in J.
P. KOKAI No. 53-132343 and polystyrene-type adsorbent resins described in Diaion Manual
(II) (the eighth edition, 1985) published by Mitsubishi Chemical Industries. Ltd.
[0043] The anion exchange resin having a reduced exchange capacity is subjected to the regeneration
in the present invention. The regeneration can be conducted by a known method such
as a method described on pages 19 to 21 of Diaion Manual (I) (the 14th Edition, 1986)
published by Mitsubishi Chemical Industries, Ltd.
[0044] The solution used for the regeneration of the anion exchange resin can be the same
as that used for keeping the preferred counter ion.
[0045] To increase the regeneration efficiency, for example, a sodium chloride solution
can be used for dissolving out the iodine ion and bromine ion accumulated on the resin
and then a solution of sodium carbonate, sodium hydrogencarbonate, sodium hydroxide
or the like can be used for exchanging with the preferred counter ion.
[0046] The halogen ions accumulated in the color developer are removed by the above-described
process and the developing activity is recovered by the suplement of the consumed
components. However, only anions are thoroughly removed by this process, leaving or
partially leaving various components, e.g. oxides and polymers of the color developing
agent; oxides and decomposition products of the preservative such as hydroxylamine
or the chelating agent such as aminopolyphosphonic acid or aminopolycarboxylic acid;
anti-irradiation dye, sensitizing dye, surfactant, antifoggant, and the like dissolved
out of the silver halide color photosensitive material. These components are accumulated
in the color developer after repetition of the regeneration. The amount of the accumulated
components varies depending on the degree of fatigue of the anion exchange resin,
velocity of passing the color developer, method of the regeneration of the anion exchange
resin and whether or not the adsorbent is used in the pretreatment step. It further
exerts influences on the sensitivity of the magenta-forming layer in the finished
photosensitive material in the color developing step, the fog density of the magenta
dye and degree of a yellow stain formed during the storage at a high temperature at
a high humidity. The inventors have found unexpected effects of the particular magenta
couplers of the general formula (I). Specifically, these couplers greatly reduce the
effects of the complicated influences of the accumulated components on the color photosensitive
material and, therefore, enable the color developer to be regenerated and reused semipermanently.
The present invention has been completed on the basis of this finding.
[0047] Although the regenerated color developer of the present invention contains a large
amount of the accumulated components, it is characterized in that the accumulation
of halogen ions is only slight, unlike a color developer used in a low replenishing
process in which merely the amount of the replenisher is reduced.
[0048] The effect of the present invention is obtained when the halogen ion concentration
in the color developer is below a certain level. Namely, this effect is obtained when
bromine ion concentration is 2x10⁻² mol/ ℓ or less, particularly 1.5x10⁻² mol/ℓ or
less and more particularly 1.2x10⁻² mol/ ℓ or less and chlorine ion concentration
is 4x10⁻² mol/ ℓ or less, particularly 3x10⁻³ mol/ ℓ or less and more particularly
2.7x10⁻³ mol/ℓ or less.
[0049] Now description will be made on the color developer used in the present invention.
[0050] The color developer used in the present invention contains a known aromatic primary
amine color developing agent. Preferred examples include p-phenylenediamine derivatives
such as those listed below, which by no means limit the color developing agent usable
in the present invention:
- D-1
- N,N-Diethyl-p-phenylenediamine
- D-2
- 2-Amino-5-diethylaminotoluene
- D-3
- 2-Amino-5-(N-ethyl-N-laurylamino)toluene
- D-4
- 4-[N-Ethyl-N-(β-hydroxyethyl)amino]aniline
- D-5
- 2-Methyl-4-[N-ethyl-N-(β-hydroxyethyl)amino]aniline
- D-6
- 4-Amino-3-methyl-N-ethyl-N- [β-(methanesulfonamido)ethyl] aniline
- D-7
- N-(2-Amino-5-diethylaminophenylethyl)methanesulfonamide
- D-8
- N,N-Dimethyl-p-phenylenediamine
- D-9
- 4-Amino-3-methyl-N-ethyl-N-methoxyethylaniline
- D-10
- 4-Amino-3-methyl-N-ethyl-N- β -ethoxyethylaniline
- D-11
- 4-Amino-3-methyl-N-ethyl-N- β -butoxyethylaniline.
[0051] Among the p-phenylenediamine derivatives described above, Compounds D-5 and D-6 are
preferred and Compound D-6 is particularly preferred from the viewpoint of the coloring,
stability of the formed dye, stability of the compound per se and safety in handling.
[0052] These p-phenylenediamine derivatives may be in the form of sulfate, hydrochloride,
sulfite or p-toluenesulfonate thereof. The amount of the aromatic primary amine developing
agent used is preferably 1 to 20 g, and more preferably 3 to 10 g, per liter of the
developer.
[0053] If necessary, the color developer may contain a preservative such as a sulfite, e.g.
sodium sulfite, potassium sulfite, sodium hydrogensulfite, potassium hydrogensulfite
or a carbonyl sulfite adduct.
[0054] The amount of the preservative used is 0.5 to 10 g, more preferably 1 to 5 g, per
liter of the color developer.
[0055] Preferred compounds usable for directly preserving the color developing agent include,
for example, hydroxylamine, dialkylhydroxylamines (particularly diethylhydroxylamine)
described on pages 7 and 8 of WO 87/04534, hydrazines described in J. P. KOKAI No.
63-170642 (particularly a compound of Example I-11), phenols described in J. P. KOKAI
Nos. 63-44656 and 63-58443, α -hydroxyketones and α -aminoketones described in J.
P. KOKAI No. 63-44656, and/or saccharides described in J. P. KOKAI No. 63-36244. It
is particularly preferred to use an alkanolamine (particularly triethanolamine) described
on pages 13 and 14 of WO 87/04534 in combination with the above-described compounds
in order to further improve the preservability of the color developing agent.
[0056] If necessary, other preservatives may also be used, such as metals described in J.
P. KOKAI Nos. 57-44148 and 57-53749, salicylic acids described in J. P. KOKAI No.
59-180588, alkanolamines described in J. P. KOKAI No. 54-3532, polyethyleneimines
described in J. P. KOKAI No. 56-94349 and aromatic polyhydroxy compounds described
in U. S. Patent No. 3,746,544. Among these, the aromatic polyhydroxy compounds have
a marked effect of inhibiting the deterioration of the developing agent or hydroxylamine
due to an oxidative catalytic effect of the metal ion and, therefore, they are preferably
used in the present invention.
[0057] The color developer used in the present invention has a pH of preferably 9 to 12,
more preferably 9.5 to 11. It can further contain other compounds known as constituents
of the developer.
[0058] The pH is kept in this range preferably by using a buffering agent.
[0059] Examples of the buffering agents include sodium carbonate, potassium carbonate, sodium
hydrogencarbonate, potassium hydrogencarbonate, sodium tertiary phosphate, disodium
hydrogenphosphate, dipotassium hydrogenphosphate, sodium borate, potassium borate,
sodium tetraborate (borax), potassium tetraborate, sodium o-hydroxybenzoate (sodium
salicylate), potassium o-hydroxybenzoate, sodium 5-sulfo-2-hydroxybenzoate (sodium
5-sulfosalicylate) and potassium 5-sulfo-2-hydroxybenzoate (potassium 5-sulfosalicylate).
However, these compounds by no means limit the buffering agents of the present invention.
[0060] The amount of the buffering agent to be added to the color developer is preferably
at least 0.1 mol/ℓ, particularly 0.1 to 0.4 mol/ℓ.
[0061] The color developer may contain a chelating agent for inhibiting the precipitation
of calcium or magnesium or for improving the stability thereof.
[0062] The chelating agent is preferably an organic acid compound such as an aminopolycarboxylic
acid, an organic phosphonic acid or a phosphonocarboxylic acid.
[0063] Examples of the chelating agents include nitrilotriacetic acid, diethylenetriamine
pentaacetate, ethylenediamine tetraacetate, nitrilo-N,N,N-trimethylenephosphonic acid,
ethylenediamine-N,N,N′-N′-tetramethylenephosphonic acid, trans-cyclohexanediaminetetraacetic
acid, 1,2-diaminopropanetetraacetic acid, hydroxyethyliminodiacetic acid, glycol ether
diaminetetraacetic acid, ethylenediamine-o-hydroxyphenylacetic acid, 2-phosphonobutane-1,2,4-tricarboxylic
acid, 1-hydroxyethylidene-1,1-diphosphonic acid and N,N′-bis(2-hydroxybenzyl)ethylenediamine-N,N′-diacetic
acid. Two or more of these chelating agents can be used in combination, if necessary.
[0064] Among these chelating agents, particularly preferred are 1-hydroxyethylidene-1,1-diphosphonic
acid, ethylenediamine-N,N,N′-N′-tetramethylenephosphonic acid, ethylenediaminetetraacetic
acid, diethylenetriaminepentaacetic acid and nitrilo-N,N,N-trimethylenephosphonic
acid, since they are not adsorbed on the anion exchange resin in the course of the
regeneration of the developer, their function is stable during the regeneration and
reuse over a long period of time and they have a remarkable effect of preserving the
developing agent, hydroxylamine or dialkylhydroxylamine. The chelating agent is used
in an amount sufficient for sequestering calcium, magnesium and other metal ions in
the color developer.
[0065] The amount of the chelating agent is usually 1x10 ⁻³ to 1x10⁻¹ mol, preferably 3x10
⁻³ to 3x10⁻² mol, per liter of the color developer.
[0066] The color developer of the present invention may contain, if necessary, an antifoggant
such as an alkali metal halide, e. g. sodium chloride, potassium bromide or potassium
iodide or an organic antifoggant. Examples of the organic antifoggants include nitrogen-containing
heterocyclic compounds such as benzotriazole, 6-nitrobenzimidazole, 5-nitroisoindazole,
5-methylbenzotriazole, 5-nitrobenzotriazole, 5-chlorobenzotriazole, 2-thiazolybenzimidazole,
2-thiazolylmethylbenzimidazole, indazole, hydroxyazaindolizine and adenine.
[0067] The color developer used in the present invention may contain a fluorescent brightening
agent, preferably a 4,4′-diamino-2,2′-disulfostilbene compound, in an amount of 0
to 5g/ℓ, preferably 0.1 to 4 g/ℓ.
[0068] The color developer may if necessary, contain, also a surfactant such as an alkylsulfonic
acid, arylphosphonic acid, aliphatic carboxylic acid or aromatic carboxylic acid.
[0069] The processing temperature for the color developer of the present invention is 20
to 50 °C , preferably 30 to 40 °C . The processing time is in the range of 20 sec
to 5 min. The processing time for the silver chloride color photosensitive material
having a silver chloride content of as high as 95 molar % or higher is preferably
30 sec to 1 min and that for the silver chlorobromide or silver iodobromide color
photosensitive material having a silver chloride content of less than 95 molar % is
preferably 1 min to 3.5 min.
[0070] The developing bath may comprise, if necessary, two or more baths. In such a case,
the color developing replenisher is added to the first bath or the last bath in order
to reduce the developing time or to reduce the amount of the replenisher.
[0071] The processing method of the present invention is usable also for the color reversal
process. In this case, a known black-and-white first developer usually used in the
reversal process for the color photographic photosensitive material or a developer
usually used for processing the black-and-white photosensitive material can be used
as the black-and-white developer in the present invention. Further known additives
usually added to the black-and-white developer can also be used.
[0072] Typical examples of the additives include developing agents such as 1-phenyl-3-pyrazolidone,
Metol and hydroquinone; preservatives such as sulfites; alkaline accelerators such
as sodium hydroxide, sodium carbonate and potassium carbonate; inorganic or organic
inhibitors such as potassium bromide, 2-methylbenzimidazole and methylbenzothiazole;
softeners for hard water such as polyphosphates; and development inhibitors comprising
a very small amount of an iodide or mercapto compound.
[0073] In the method of the present invention, it is preferred not to use benzylalcohol
which is widely used as a coloring accelerator. Benzyl alcohol is physically adsorbed
on the anion exchange resin to reduce the ion exchange reaction velocity. Thus benzyl
alcohol is preferably not used in order to positively capture the halogen ions in
the color developer and to maintain the stable processing capacity. The method of
the present invention is particularly preferred for processing a color photographic
photosensitive material having a high chloride content which can be sufficiently color-developed
without using benzyl alcohol.
[0074] Now description will be made on the steps following the color development step.
[0075] After the color development, the silver halide color photographic photosensitive
material can be processed by the following steps:
1. color development - bleach-fixing - washing with water (stabilization)
2. color development - washing with water (termination) bleach-fixing- washing with
water (stabilization)
3. color development - bleaching - fixing - washing with water (stabilization)
4. color development - washing with water (termination) - bleaching - fixing - washing
with water (stabilization)
5. color development - washing with water (termination) - bleaching - washing with
water (stabilization) - fixing - washing with water (stabilization)
[0076] The steps in parentheses are interchangeable ones. Now, description will be made
on the bleach-fixing solution.
[0077] The bleaching agents used for preparing the bleach-fixing solution include ferric
complex salts of organic acids such as aminopolycarboxylic acids and aminopolyphosphonic
acids. They are, for example, ferric complex salts of ethylenediaminetetraacetic acid,
diethylenetriaminepentaacetic acid and cyclohexanediaminetetraacetic acid.
[0078] The amount of the bleaching agent used is 0.05 to 0.5 mol per liter of the bleach-fixing
solution. In view of ease of desilverization, color restoration of the cyan dye and
antistaining properties, it is particularly preferably 0.1 to 0.3 mol. In using the
ferric complex salt of the organic acid, a free organic acid is usually added thereto
in a molar ratio of about 1/10.
[0079] Known fixing agents such as ammonium thiosulfate and sodium thiosulfate can be used.
The preservatives usable herein include sulfites such as sodium sulfite and ammonium
sulfite. They can be used in combination with or replaced with an aromatic sulfinic
acid such as benzenesulfinic acid or p-toluenesulfinic acid in order to improve the
preserving effect.
[0080] Further bleaching accelerators described in J. P. KOKAI No. 62-222252 and bromides
such as ammonium bromide are usable.
[0081] The pH of the bleach-fixer ranges from 3 to 8.5. From the viewpoint of the acceleration
of the desilverization, improvement of the color restoration and antistaining properties,
preferred pH ranges from 4.5 to 8.0, particularly from 5.0 to 7.5. The bleach-fixing
temperature ranges from 25 to 45 °C . From the viewpoint of the processing speed and
maintenance of the preserving effect, the temperature is preferably 30 to 40 °C, particularly
33 to 38 °C.
[0082] The bleach-fixing can be conducted in two steps, i.e. bleaching step and fixing step.
The separation of the bleaching step from the fixing step is described on page 4 of
Technical Data Agfa Color Process 94 for Agfa Color Paper Type 9 published by Agfa
Gevart Co. in 1988. This technique can be combined with the present invention.
[0083] The bleaching solution comprises the same bleaching agent, ferric(III) 1,3-diaminopropane
tetraacetate and bleaching accelerator as those of the above-described bleach-fixer,
ammonium bromide and a known corrosion inhibitor for metals such as ammonium nitrate.
The pH of the bleaching solution is 3.0 to 8.0, preferably 4.0 to 7.0 and particularly
preferably 4.5 to 6.5. When the pH is within 4.5 to 6.5, the balance between the desilverization
and the color restoration is the best.
[0084] The fixer may also contain the fixing components of the above-described bleach-fixer.
The pH of the fixer is 5.0 to 8.0, preferably 6.0 to 7.5.
[0085] The description on bleaching solutions, bleach-fixers and fixing solutions given
from the left lower column, page 28 to the right lower column, page 30 of J. P. KOKAI
No. 63-144353 can be applied to the bleaching solution, bleach-fixer and fixing solution
of the present invention.
[0086] The bleach-fixing time ranges from 30 sec to 2 min, the bleaching time ranges from
30 sec to 2 min and the fixing time ranges from 30 sec to 1 min 30 sec. The bleach-fixing
time or bleaching time can be reduced by lowering the pH of the solution.
[0087] The amounts of the bleaching solution, bleach-fixing solution and fixing solution
to be replenished range from 30 to 300
mℓ per m² of the color photosensitive material. From the viewpoint of the balance between
the securing of the qualities such as the desilverization properties and the need
of the reduction of the amount of the waste, the preferred amount of the replenisher
is 50 to 250
mℓ. These solutions can be regenerated by a known process such as a process described
in J. P. KOKOKU No. 56-33697 wherein deficient components in an overflow are supplied
or a process wherein an electrolytic silver recovery apparatus described in J. P.
KOKOKU No. 57-16345 is used.
[0088] Now description will be made on the steps of washing with water and termination step
after the color development step. These steps are provided in order to prevent the
drag-in of the color developer into the next step so as to facilitate the regeneration
of the solution in the next step when it is to be regenerated. The washing with water
is conducted by a known method and a known terminating solution such as an acetic
acid solution is used. A typical example of the terminating acetic acid solution is
1.5% aqueous glacial acetic acid solution.
[0089] The processing method of the present invention comprises the above-described color
development, bleaching, bleach-fixing and fixing steps. Usually the bleach-fixing
step or fixing step is followed by a step of washing with water or a stabilization
step. However, the stabilization step can be conducted after the processing with a
bath having a fixing ability substantially without washing with water.
[0090] Water used in the washing step may contain, if necessary, known additives such as
softeners for hard water, e.g. inorganic phosphoric acids, aminopolycarboxylic acids
and organic phosphoric acids; germicides and antifungal agents for inhibiting the
proliferation of bacteria and algae, e.g. isothiazolone, organic chlorine-containing
germicides and benzotriazole; and surfactants for inhibiting the formation of drying
marks or drying load. Further compounds described on pages 344 to 359 of L. E. West,
'Water Quality Criteria', Phot. Sci. and Eng., Vol. 9, No. 6 (1965) are also usable.
[0091] In the stabilization step, a stabilizer capable of stabilizing the color image is
used. The stabilizer is, for example, a solution having a buffering effect in the
pH range of 3 to 6 or a solution containing an aldehyde (such as formalin). The stabilizer
may contain, if necessary, an ammonium compound, a metal compound such as Bi or Al
compound, a fluorescent brightener, a chelating agent (such as 1-hydroxyethylidene-1,1-diphosphonic
acid), a germicide, an antifungal agent, a hardener and a surfactant.
[0092] In the step of washing with water and the stabilization step, a multistage countercurrent
system is preferably employed. The number of the stages is preferably 2 to 4. The
amount of the replenisher is 1 to 50 parts, preferably 2 to 30 parts, more preferably
2 to 15 parts, per part of the carryover from the preceding bath per a unit area of
the processed photographic material.
[0093] Water used in the washing step or stabilization step is city water or preferably
water deionized with an ion exchange resin to reduce the concentrations of Ca and
Mg to 5 mg/ℓ or less or water sterilized with a halogen or U. V. sterilization lamp.
[0094] When the above-described processing steps of the photosensitive material are conducted
continuously with an automatic developing machine, the processing solutions might
be concentrated due to the evaporation. The concentration is serious particularly
when the quantity of the photosensitive material to be processed is small or the opening
area of a vessel for the solution is large. A suitable amount of water or replenisher
is preferably supplied to normalize the concentration thereof.
[0095] The overflow in the step of washing with water or stabilization step can be introduced
into the preceding bath having a fixing ability to reduce the amount of the waste.
[0096] All the techniques relating to the water for washing or stabilizer described from
the right lower column to the left lower column, page 30 of J. P. KOKAI No. 63-144353
can be employed in the present invention.
[0097] Now description will be made on the silver halide color photographic photosensitive
material used in the present invention.
[0098] The method of the present invention can be employed for processing various photosensitive
materials such as color papers, color reversal papers, color negative films, color
reversal films and color autopositive papers. Among them, the color papers are most
suitable.
[0099] The silver halide emulsion of the photosensitive material to be processed by the
method of the present invention contains at least one of silver chloride, silver bromide
and silver iodide. However, in the color papers, silver chlorobromide substantially
free from silver iodide is preferred. The term 'substantially free from silver iodide'
indicates that the amount of silver iodide is 1 molar % or less, preferably 0.3 molar
% or less and more preferably 0.1 molar % or less, based on the total silver halides.
Most preferably the silver chlorobromide is utterly free from silver iodide in such
a case.
[0100] The emulsion preferably used for the color paper in the present invention is a silver
chlorobromide emulsion having a silver bromide content of at least 10 molar %. Particularly
to obtain an emulsion having a sufficient sensitivity without increasing the fog density,
the silver bromide content is preferably at least 20 molar %. On the contrary, in
a rapid processing method wherein the development time is reduced, a silver chlorobromide
emulsion having a silver bromide content of 10 molar % or less is preferred, that
having a silver bromide content of 3 molar % or less is more preferred and that substantially
free from silver bromide (silver bromide content: 1 molar % or less) is most preferred.
[0101] When the silver bromide content is reduced, not only is the developing velocity increased
but also the amount of bromine ion dissolved out in the developer is reduced in the
development of the photosensitive material containing it and, therefore, the developing
effect can be maintained with a smaller amount of the replenisher.
[0102] The silver halide grains in the photographic emulsion may be so-called regular grains
having a regular crystal shape such as cubic, octahedral, tetradecahedral or polydodecahedral
crystalline grains, or irregular crystalline grains such as spherical grains. Further
those having a crystalline deficiency such as a twinning place and complexes of them
are also usable.
[0103] The grain diameter of the silver halide may be as small as about 0.1» or less or
the diameter of its projected surface area may be as large as about 10» . The silver
halide emulsion may be either a monodisperse emulsion having a narrow distribution
or a polydisperse emulsion having a wide distribution.
[0104] The siver halide photographic emulsion usable in the present invention can be prepared
by a known method such as that described on pages 22 to 23 of Research Disclosure
(RD), No. 17643 (December, 1978) (I. Emulsion preparation and types) or that described
on page 648 of RD, No. 18716 (November, 1979).
[0105] The photographic emulsion usable in the present invention can be prepared by a method
described in Glafkides, 'Chimie et Physique Photographique Paul Montel' (1967), a
method described in G. F. Duffin, 'Photographic Emulsion Chemistry' (Focal Press)
(1966) or a method described in V. L. Zelikman et al., 'Making and Coating Photographic
Emulsion' (Focal Press) (1964).
[0106] The monodisperse emulsion is preferably used in the present invention.
[0107] A typical example of the monodisperse emulsion is an emulsion comprising silver halide
grains having an average grain diameter of not less than about 0.1 » in which at least
about 95 wt.% of the grains have a grain diameter within the average grain diameter±
40%. Emulsions havig an average grain diameter of about 0.25 to 2 » in which at least
about 95 wt.%, or at least about 95% of the number of the grains have a grain diameter
within the average grain diameter ± 20% can be used in the present invention.
[0108] Tabular grains having an aspect ratio of at least about 5 are also usable in the
present invention. The tabular grains can be easily prepared by a method described
on pages 248 to 257 of Gutoff, 'Photographic Science and Engineering', Vol. 14 (1970)
or a method described in U. S. Patent No. 4,434,226, 4,414,310, 4,433,048 or 4,439,
520 or British Patent No. 2,112,157. When the tabular grains are used, advantages
such as an improvement in the spectral sensitization efficiency with a sensitizing
dye, improvement in the graininess and increase of the sharpness are obtained as described
in detail in the above-mentioned U. S. Patent No. 4,434,226, etc.
[0109] The crystal structure may be uniform or each of the crystalline grains may comprise
a core and shell having different compositions. A typical example of such grains is
those of a core/shell type or a double structure type in which the halogen composition
of the core is different from that of the shell. In these grains, the shape of the
core may be the same as or different from that of the whole grain including the shell.
[0110] For example, the core may be cubic and the whole grain including the shell be cubic
or octahedral or vice versa. Not only the double structure but also triple or multilayer
structure is possible. The surface of the grain having the core/shell double structure
may have a thin coating of a different silver halide.
[0111] The halogen composition of the grain constituting the photosensitive material to
be processed by the method of the present invention is preferably not homogeneous.
Namely, the grains constituting the emulsion preferably have a heterogeneous structure.
In a silver chlorobromide emulsion used for the color papers, the shell of each core/shell
type grain preferably contains silver bromide in an amount smaller than that of the
core. A typical example thereof is an emulsion of core/shell-type grains in which
the silver bromide content of the core is higher than that of the shell. The difference
in the silver bromide content between the core and the shell is preferably 3 to 95
molar % and the molar ratio of silver in the core to that in the shell is 5:95 to
95:5, preferably 7:93 to 90:10.
[0112] In a silver bromoiodide emulsion for, for example, color negative films, the silver
iodide content of the core is higher than that of the shell. The core has a silver
iodide content of preferably 10 to 45 molar %, more preferably 15 to 40 molar %. The
shell has a silver iodide content of preferably not more than 5 molar %, more preferably
2 molar % or less. The ratio of silver in the core to that in the shell is 15:85 to
85:15, preferably 15:85 to 75:25.
[0113] These grains are in the emulsions described in, for example, British Patent No. 1,027,146,
U. S. Patent Nos. 3,505,068 and 4,444,877 and Japanese Patent Application No. 58-24846.
[0114] The silver halide photographic emulsion used in the present invention can be spectrally
sensitized with, for example, a methine dye. The dyes usable for this purpose include
cyanine dye, merocyanine dye, complex cyanine dye, complex merocyanine dye, holopolar
cyanine dye, hemicyanine dye, styryl dye and hemioxonol dye. Among them, the cyanine
dye, merocyanine dye and complex merocyanine dye are particularly preferred.
[0115] The sensitizing dyes usable in the present invention are those described on page
23 of Research Disclosure, Vol. 176, Item 17643 IV (December, 1978).
[0116] The sensitizing dye can be used in any step of producing the photographic emulsion
and can be present in any stage after the production of the emulsion and immediately
before the coating. The steps of producing the photographic emulsion are, for example,
silver halide grain-forming step, physical aging step and chemical aging step.
[0117] Particularly, it is described in U. S. Patent Nos. 4,183,756 and 4,225,666 that when
the spectrally sensitizing dye is added to the emulsion after formation of a stable
core for forming the silver halide grain, the photographic sensitivity is increased
and the adsorption of the spectral sensitizing dye on the silver halide grains is
improved advantageously.
[0118] The silver halide photographic emulsion used in the present invention can contain
various compounds in order to prevent the fogging during the steps of producing the
photosensitive material, during the storage thereof or during processing the photographs
or to stabilize the photographic properties. The compounds are those known as antifoggants
or stabilizers, for example, azoles such as benzothiazolium salts, nitroimidazoles,
nitrobenzimidazoles, chlorobenzimidazoles, bromobenzimidazoles, mercaptothiazoles,
mercaptobenzothiazoles, mercaptobenzimidazoles, mercaptothiadiazoles, aminotriazoles,
benzotriazoles, nitrobenzotriazoles and mercaptotetrazoles (particularly 1-phenyl-5-mercaptotetrazole);
mercaptopyrimidines; mercaptotriazines; thioketo compounds such as oxazolinethion;
azaindenes such as triazaindenes, tetraazaindenes [particularly 4-hydroxy-substituted
(1,3,3n,7)tetraazaindenes] and pentaazaindenes; benzenethiosulfonic acid; benzenesulfinic
acid; and benzenesulfonic acid amide. They are disclosed in Research Disclosure (RD),
Nos. 17643 and 18716 at the locations shown in the following table.

[0119] The silver halide color photosensitive material to be processed by the method of
the present invention may contain various color couplers. Typical examples of them
are cyan, magenta and yellow dye-forming couplers described in patents referred to
in Research Disclosure 17643 VII-D (December, 1978) and 18717 (November 1979). These
couplers are preferably made diffusion-resistant by the introduction of a ballast
group or by polymerization (including dimerization). They may be 4- or 2-equivalent
couplers. Couplers capable of diffusing the formed dye to improve the graininess and
DIR couplers capable of releasing the development inhibitor, etc. upon the coupling
reaction to exhibit an edge effect or interlayer effect are also usable.
[0120] Further compounds which release a group capable of accelerating the development or
a group capable of fogging the silver halide as the coupling reaction proceeds can
also be used. These compounds are described in, for example, J. P. KOKAI Nos. 57-150845,
59-50439, 59-157638 and 59-170840 and Japanese Patent Application No. 58-146097.
[0121] As for the color couplers, the effect of the compound of the present invention can
be obtained more easily as the relative amount of the 4-equivalent coupler is reduced.
The amount of the 4-equivalent coupler is preferably 50 molar % or less, more preferably
40 molar % or less and particularly 30 molar % or less, based on the total couplers
contained in the photosensitive material.
[0122] Preferred yellow couplers are oxygen-linked coupling-off type or nitrogen-linked
coupling-off type α -pivaloyl- or α -benzoyl acetoanilide couplers. Particularly preferred
examples of the 2-equivalent couplers include oxygen-linked coupling-off type yellow
couplers described in U. S. Patent Nos. 3,408,194, 3,447,928, 3,933,501 and 4,022,620
and nitrogen-linked coupling-off type yellow couplers described in U. S. Patent Nos.
3,973,968 and 4,314,023, J. P. KOKOKU No. 58-10739, J. P. KOKAI No. 50-132926 and
West German Patent Unexamined Publication Nos. 2,219,917, 2,261,361, 2,329,587 and
2,433,812.
[0123] Other components of the processing solutions and photosensitive material preferably
usable in the present invention substantially without exerting influence on the photographic
properties include, for example, fluorescent brighteners of general formula (I) given
in J. P. KOKAI No. 63-204257, yellow couplers of general formula (I), magenta couplers
of general formula (II) and cyan couplers of general formulae (IV) and (V) given in
J. P. KOKAI No. 63-229456, sensitizing dyes of general formulae (I) and (II) given
in J. P. KOKAI No. 63-184954 and anti-irradiation dyes of general formulae (AI-1)
to (AI-IV) given in J. P. KOKAI No. 63-48550. Among these couplers, those used in
Examples are preferred.
[0124] The cyan couplers preferably used herein are those having fastness to humidity and
temeprature. Typical examples include phenol couplers described in U. S. Patent No.
3,772,002; 2,5-diacylaminophenol couplers described in J. P. KOKAI No. 59-31953, Japanese
Patent Application No. 58-42671 and J. P. KOKAI No. 58-133293; phenol couplers having
a phenylureido group at the 2-position and an acylamino group at the 5-position described
in U. S. Patent No. 4,333,999; and naphthol couplers described in Japanese Patent
Application No. 59-93605.
[0125] A yellow or magenta-colored coupler can be used in order to correct an unnecessary
sub-absorption on the short wave-side of the main absorption of the coloring dye.
These couplers are usually dissolved in a high-boiling organic solvent such as a phthalic
ester or phosphoric ester having 16 to 32 carbon atoms combined with, if necessary,
another organic solvent such as ethyl acetate and the solution is dispersed in an
aqueous medium to form an emulsion. The standard amount of the color coupler is preferably
0.01 to 0.5 mol (yellow coupler) or 0.002 to 0.3 mol (cyan coupler) per mol of the
photosensitive silver halide.
[0126] According to the method of the present invention, the photographic properties of
the color photosensitive material are quite stable even when the color developer is
regenerated with the anion exchanger and used over a long period of time and an excellent
image can be maintained over a long period of time.
[0127] Therefore, it is unnecessary to discard a part of the used color developer or to
replace it with a fresh color developer. The waste load can be greatly reduced and
the control operation can be dramatically facilitated.
Examples
[0128] The present invention will be further illustrated in connection with the following
non-limitative Examples.
Example 1
[0129] Multilayer photographic Printing Paper 101 which was composed of layers of the following
compositions on a paper support laminated with polyethylene on both surfaces, was
prepared. The coating solutions were prepared as described below.
(Preparation of the coating solution for forming the first layer)
[0130] 27.2
mℓ of ethyl acetate and 7.7
mℓ (8.0 g) of a high-boiling solvent (Solv-1) were added to a mixture of 10.2 g of
a yellow coupler (ExY-1), 9.1 g of yellow coupler (ExY-2) and 4.4 g of a color image
stabilizer (Cpd-1) to dissolve the mixture. The solution was dispersed in 185
mℓ of 10% aqueous solution of gelatin containing 8
mℓ of 10 % sodium dodecylbenzenesulfonate to form an emulsion. The product was mixed
with Emulsions EM 1 and EM 2 to control the gelatin concentration as will be described
below, thereby to form the first layer-forming coating solution. The coating solutions
for forming the second to the seventh layers were prepared in the same manner as above.
Sodium 1-oxy-3,5-dichloro-s-triazine was used as the gelatin hardener in each layer.
[0131] The thickening agent used was Cpd-2.
(Layer construction)
[0132] The compositions of the respective layers will be shown below. The numerals indicate
the amount (g/m²) of the applied coating solution. The amount of the silver halide
emulsion was given in terms of the amount of applied silver.
Support:
[0134] Cpd-13 and Cpd-14 were used as the anti-irradiation dye.
[0135] Alkanol B (a product of Du Pont Co.), sodium alkylbenzenesulfonate, succinic esters
and Magefacx F-120 (a product of Dainippon Ink & Chemicals, Inc.) were incorporated
into the layers as the emulsifying or dispersing agent and coating assistant. Cpd-15
and 16 were used as the stabilizer for the silver halide.
[0136] The details of the emulsion used are as follows:

[0138] Samples 102 to 106 were prepared in the same manner as above except that Magenta
Coupler EXM was replaced with the following coupler.
Sample 102

Sample 103

Sample 104: M-37
Sample 105: M-42
Sample 106: M-68
[0139] Samples 101 to 106 prepared as described above were cut into pieces having a width
of 82.5 mm and exposed with a printer. Then each sample was processed by a method
which will be described below with a miniature automatic developing machine while
the color developer was regenerated until the amount of the replenisher became 3 times
as much as the capacity of the color developing tank.
[0140] The wedge exposure samples having a color temperature of 2854 K and a quantity of
exposure of 250 CMS were processed at the start of the process and when the amount
of the replenisehr reached 1, 2 and 3 times as much as the capacity of the color developing
tank, and magenta sensitivity and change of the minimum density were examined. A change
of the minimum yellow density was examined after storage at 60 °C at a relative humidity
of 70% for two weeks. The results are shown in Table 1.

[0141] [3-tank cascade of washing step (3) → washing step (1) ]
Regeneration method of color developer
[0143] 4.8 ℓ of the overflow recovered after replenishing 6 ℓ of the color developer was
passed through a plastic column having an inner diameter of 12.5 cm and the resin
layer height of about 40 cm which column was filled with 5 ℓ of an anion exchange
resin (Amberlite IRA-400, a product of Rohm & Haas Co.). The passing rate was 80 to
100
mℓ/min.
[0144] The amounts of benzyl alcohol, diethylene glycol, sodium sulfite, N-ethyl-N-( β -methanesulfonamidoethyl)-3-methyl-4-aminoaniline
sulfate, hydroxylamine sulfate, fluorescent brightener and potassium carbonate in
the recovered color developer were determined. Water was added thereto to make the
total quantity 6 ℓ. The components were added thereto to obtain the above-described
composition of the replenisher. The amounts of diethylenetriaminepentaacetic acid
and nitrilo-N,N,N-trimethylenephosphonic acid added were 2.2 g and 4.3 g, respectively,
for 6 ℓ of the total quantity. The pH was adjusted to be the same as that of the replenisher
with potassium hydroxide and sulfuric acid.
[0145] The replenisehr thus prepared was thereafter used. After each 6 ℓ of the replenisher
was supplied, the solution was regenerated in the same manner as that described above
and used.
Method for processing anion exchange resin:
[0146]
The first step:
6 ℓ of 0.5 M/ℓ sodium hydrogencarbonate solution was passed through the column at
a rate of 80 mℓ/min and then 6 ℓ of distilled water was passed at a rate of 160 mℓ/min to clean the resin to be used for the regeneration of the developer.
The second step and thereafter:
After the resin was used for the regeneration of 4.8 ℓ of the developer, it was washed
with 6 ℓ of distilled water passed at a rate of 160 mℓ/min and then 6 ℓ of 0.5 m/ℓ sodium chloride solution was passed through the column
at a rate of 80 mℓ/min. 6 ℓ of distilled water was passed through it again at a rate of 160mℓ/min. Then the same process as that of the first step was repeated and the resin
was used for the regeneration of the developer.

[0147] Thus according to the present invention, the variation of the sensitivity or minimum
density (fog) was slight and the yellow stain was not increased at a high temperature
at a high humidity, while in the tests of the Samples 101 to 103 with the coupler
not within the present invention, the variation of magenta sensitivity or the minimum
density (which gradually increased after the start; with an increase of fog) was serious
and as the regeneration was continued, the yellow stain increased during the storage
at a high temperature at a high humidity.
Example 2
[0148] A printing color paper which was composed of layers of the following compositions
on a paper support laminated with polyethylene on both surfaces, was prepared. The
coating solution was prepared as described below. The product will be referred to
as Sample 201.
(Preparation of the coatiang solution for forming the first layer)
[0149] 27.2
mℓ of ethyl acetate and 7.7
mℓ (8.0 g) of a high-boiling solvent (Solv-1) were added to a mixture of 19.1 g of
a yellow coupler (ExY-1) and 4.4 g of a color image stabilizer (Cpd-1) to dissolve
the mixture. The solution was dispersed in 185
mℓ of 10% aqueous solution of gelatin containing 8
mℓ of 10% sodium dodecylbenzenesulfonate to form an emulsion. The product was mixed
with Emulsions EM 7 and EM 8 to control the gelatin concentration as will be described
below and thereby to form the first layer-forming coating solution. The coating solutions
for forming the second to the seventh layers were prepared in the same manner as described
above. Sodium 1-oxy-3,5-dichloro-s-triazine was used as the gelatin hardener in each
layer.
[0150] The thickening agent used was Cpd-2.
(Layer construction)
[0151] The compositions of the respective layers will be shown below. The numerals indicate
the amount (g/m²) of the applied coating solution. The amount of the silver halide
emulsion was given int erms of the amount of applied silver.
Support:
[0152] Polyethylene-laminated paper [containing a white pigment (TiO₂) and a blue dye in
the polyethylene layer on the first layer side]
The first layer (blue-sensitive layer)

The second layer (color mixing-inhibiting layer)
- Gelatin
- 0.99
- Color-mixing inhibitor (Cpd-3)
- 0.08
The third layer (green-sensitive layer)

The fourth layer (U. V. absorbing layer)

The fifth layer (red-sensitive layer)


The sixth layer (U. V.-absorbing layer)

The seventh layer (protective layer)

[0153] Cpd-12 and Cpd-13 were used as the anti-irradiation dye.
[0154] Alkanol XC® (a product of Du Pont Co.), sodium alkylbenzenesulfonate, succinic esters
and Magefacx F-120® (a product of Dainippon Ink & Chemicals, Inc.) were incorporated
into the layers as the emulsifying or dispersing agent and coating assistant. Cpd-14
and 15 were used as the stabilizer for the silver halide.
[0155] The details of the emulsion used are as follows:

[0156] The structural formulae of the compounds used were as follows:
Solv-1 Dibutyl phthalate
Solv-2 Trioctyl phosphate
Solv-3 Trinonyl phosphate
Solv-4 Tricresyl phosphate
[0157] Samples 202 to 208 were prepared in the same manner as that described above except
that magenta coupler EXM-1 of Sample 201 was replaced with the following coupler:
Sample 202

Sample 203

Sample 204: M-37
Sample 205: M-42
Sample 206: M-68
Sample 207: M-30
Sample 208: M-61
[0158] Samples 201 to 208 prepared as described above were processed in the same manner
as that of Example 1 except that the conditions were changed as shown below. The results
are shown in Table 2.

[0159] [4-tank counter current process in the stabilization steps (4) → (1)]
[0161] The carryover of the bleach-fixing solution into the stabilization step in the processing
in this example was 40
mℓ per m² of the photosensitive material.
Method of regeneration of color developer:
[0162] The color developer was regenerated in the same manner as that of Example 1 except
that only diethylhydroxylamine, N-ethyl-N-( β -methanesulfonamidoethyl)-3-methyl-4-aminoaniline
sulfate, potassium carbonate, fluorescent brightener and triethanolamine in the color
developer were analyzed and, as for other components, 4.3 g of ethylenediaminetetraacetic
acid and 0.6 g of 5,6-dihydroxybenzene-1,2,4-trisulfonic acid were added to 6 ℓ of
the prepared replenisher. The pH was adjusted to be the same as that of the replenisher
with potassium hydroxide and sulfuric acid.
Method for processing anion exchange resin:
[0163]
The first step:
The same as that of Example 1
The second step and thereafter:
The same as that of Example 1 except that the processing with sodium chloride solution
and subsequent washing step in Example 1 were omitted.

Example 3
[0164] The same procedure as that of Example 2 was repeated except that diethylhydroxylamine
in the color developer was replaced with the same amount of the following compound
to obtain the results which were substantially the same as those shown in Table 2.
(1)

(2)

(3)

(4) H₃CCOCH₂OH
Example 4
[0165] The same procedure as that of Example 2 was repeated except that the stabilizer was
replaced with deionized water having calcium content and magnesium content of not
more than 3 mg/ℓ (conductivity: 2 »s/cm). The results were the same as those shown
in Table 2.
[0166] Further the same procedure as that of Example 2 was repeated except that the processing
with the stabilizer was replaced with washing with 3 ℓ/min of water at 30 °C to obtain
the same results as those of Table 2.