[0001] This invention relates to a method of assembling an electrolytic cell and in particular
to a method of installing an ion-exchange member in an electrolytic cell.
[0002] Electrolytic cells are known comprising a plurality of anodes and cathodes with each
anode being separated from the adjacent cathode by an ion-exchange membrane which
divides the electrolytic cell into a plurality of anode and cathode compartments.
The anode compartments of such a cell are provided with means for feeding electrolyte
to the cell, suitably from a common header, and with means for removing products of
electrolysis from the cell. Similarly, the cathode compartments of the cell are provided
with means for removing products of electrolysis from the cell, and optionally with
means for feeding water or other fluid to the cell. The electrolytic cells may be
of the monopolar or bipolar type.
[0003] For example electrolytic cells of the filter press type may comprise a large number
of alternating anodes and cathodes, for example, fifty anodes alternating with fifty
cathodes, although the cell may comprise even more anodes and cathodes, for example
up to one hundred and fifty alternating anodes and cathodes.
[0004] In such an electrolytic cell the membranes are essentially hydraulically impermeable
and in use ionic species, e.g. hydrated ionic species, are transported across the
membrane between the anode and cathode compartments of the cell. Thus, when an aqueous
alkali metal chloride solution is electrolysed in a cell equipped with cation-exchange
membranes the solution is fed to the anode compartments of the cell and chlorine produced
in the electrolysis and depleted alkali metal chloride solution are removed from the
anode compartments, alkali metal ions are transported across the membranes to the
cathode compartments of the cell to which water or dilute alkali metal hydroxide solution
may be fed, and hydrogen and alkali metal hydroxide solution produced by the reaction
of alkali metal ions with hydroxyl ions are removed from the cathode compartments
of the cell.
[0005] Electrolytic cells of the type described may be used particularly in the production
of chlorine and sodium hydroxide by the electrolysis of aqueous sodium chloride solution.
[0006] In such an electrolytic cell the membrane is secured to the cell, for example, by
clamping between gaskets. It is desirable that the membrane be installed in the cell
in a taut state and that the membrane remain in a substantially taut state when electrolyte
is charged to the cell and the cell is operated. However, if a membrane is installed
in an electrolytic cell in a dry state and is fixed tautly therein it is found that
in use when electrolyte is contacted with the membrane in the cell the membrane swells
and expands and becomes slack and may even become wrinkled. As a result there may
be uneven release of gas and an increase in the voltage of the cell. This is a particular
disadvantage where the cell is designed to operate at low, or zero, anode-cathode
gap.
[0007] In order to alleviate this problem of swelling of the membrane in use it has been
proposed to pre- swell the membrane before installing the membrane in an electrolytic
cell, for example by soaking the membrane in water, in an aqueous sodium chloride
solution, or in an aqueous sodium hydroxide solution. Ideally, the membrane should
be pre-swelled to an extent approximately the same as that by which a dry membrane
would be swelled by contact with the electrolyte in the electrolytic cell.
[0008] In US Patent No. 4000057 there is described the pre-swelling of a membrane before
installation of the membrane in an electrolytic cell the method comprising contacting
the membrane with a liquid medium in which the membrane exhibits a substantially flat
expansion versus time curve for at least four hours after contacting the membrane
with the liquid medium. Suitable liquid media include, for example, aqueous solutions
of ethylene glycol, glycerine and Higher fatty alcohols.
[0009] Although the aforementioned methods do assist in overcoming the problem of swelling
of a membrane when the membrane is contacted with electrolyte in an electrolytic cell
they do themselves suffer from substantial disadvantages. Thus, the pre-swelled membranes
are wet and remain wet during installation in the electrolytic cell and are thus difficult
to handle. Special handling precautions may need to be taken, for example where the
membrane has been pre-swelled by contact with a corrosive liquid, e.g. a caustic soda
solution. Also difficulty may also be experienced in securing the wet membrane in
the electrolytic cell in a leak-tight manner, for example between a pair of gaskets.
[0010] In US Patent No. 4124477 there is described immersing a membrane in boiling water
for 1 to 4 hours, placing the membrane on a frame having the approximate dimensions
of an anode on which the membrane is to be mounted, stretching the membrane diagonally
and clamping it at the corners of the frame, and stretching the sides of the membrane
and clamping them to the sides of the frame.
[0011] The present invention relates to a method of assembling an electrolytic cell and
installing an ion-exchange membrane in an electrolytic cell which does not suffer
from the aforementioned disadvantages.
[0012] According to the present invention there is provided a method of assembling an electrolytic
cell which comprises expanding an ion-exchange membrane comprising an organic polymer
containing ion-exchange groups or derivatives thereof convertible to ion-exchange
groups and securing the expanded membrane to the electrolytic cell or to a part thereof
characterised in that a pre-formed membrane is expanded by stretching the membrane
to increase the surface area per unit weight of the membrane by at least 20% and that
thereafter the expanded, stretched membrane is secured to the electrolytic cell or
to a part thereof.
[0013] In the method of the invention the pre-formed ion-exchange membrane, e.g. in the
form of a sheet or film is expanded by stretching so as to increase the surface area
of the membrane per unit weight of membrane.
[0014] This expansion of the membrane does not depend on the use of a liquid medium to swell
and thus expand the membrane. Indeed, the expansion by stretching will generally be
effected, and is preferably effected, on a dry membrane, thus avoiding the substantial
disadvantages associated with use of a liquid medium. Furthermore, the expansion is
not effected merely by pressing the membrane at elevated pressure and temperature.
[0015] The stretching of the membrane should be effected with care in order not to tear
the membrane. The use of elevated temperature during the stretching of the membrane
greatly assists in avoiding tearing of the membrane. The elevated temperature may
be greater than 40°C, or greater than 55°C.
[0016] In operating the method of the invention the pre-formed membrane may be heated to
an elevated temperature and the membrane expanded by stretching the membrane at the
elevated temperature, and the thus expanded, stretched membrane may be secured to
the electrolytic cell or a part thereof.
[0017] It is further preferred to stretch the membrane at elevated temperature and to cool
the membrane to a lower temperature, e.g. to a temperature at or near ambient, whilst
restraining the membrane in the expanded, stretched state, and thereafter to secure
the expanded, stretched membrane to the electrolytic cell or to a part thereof.
[0018] The stretching may be effected, for example, by passing the membrane around and between
rollers operating at different peripheral speeds, and the expanded, stretched membrane
may be cooled to a lower temperature. Alternatively, the membrane may be expanded
by applying a stretching force to opposed edges of the membrane. The stretching of
the membrane may be effected in a stretching frame or machine.
[0019] The membrane may be stretched uniaxially or biaxially. Biaxial stretching may be
effected in two directions simultaneously or sequentially.
[0020] When the membrane is stretched uniaxially strips of a relatively stiff material may
be attached to opposed edges of the membrane to prevent contraction of the membrane
in a direction transverse to that in which the membrane is stretched.
[0021] Where the membrane is stretched, e.g. at elevated temperature, and particularly where
the membrane is subsequently cooled to a lower temperature, for example, at or near
ambient temperature, e.g. whilst the membrane is restrained in the expanded, stretched
state, at least some of the expansion of the membrane effected by stretching is "locked"
into the membrane. When the expanded, stretched membrane is installed in an electrolytic
cell and secured therein and the membrane is contacted with an electrolyte, particularly
at an elevated temperature, for example with aqueous alkali metal chloride solution
at a temperature, which may be as high as 95°C in a chlor-alkali cell, the expansion
which is "locked" into the membrane is released, or partially released, and the membrane
tends to contact towards its original state, although the membrane is of course restrained
in the electrolytic cell. This tendency to contact is counteracted by the expansion
of the membrane caused by swelling brought about by contacting the membrane with the
electrolyte, with the result that the membrane installed in the electrolytic cell
remains taut and does not become wrinkled during use.
[0022] It is preferred that the amount of expansion effected by stretching should be approximately
the same as or greater than the expansion caused by swelling of the membrane on contact
with the electrolyte in the electrolytic cell so that the membrane, when contracted
with the electrolyte, remains taut in the cell. Some benefit will however be obtained
even if the amount of expansion to be effected by stretching is somewhat less than
expansion caused by swelling of the membrane on contact with the electrolyte. A suitable
amount of expansion to be effected by stretching may be determined by simple test.
[0023] Expansion of the membrane effected by stretching should produce an increase of at
least 20% in the surface area of the membrane per unit weight of membrane. A larger
expansion of the membrane may be effected by stretching, for example an increase of
at least 50% or at least 100% in the surface area per unit weight of the membrane,
or even a 10-fold increase or greater in the surface area per unit weight of the membrane.
Where a substantial amount of stretching is effected additional benefits will be obtained.
Thus, where a large expansion of the membrane has been effected by stretching use
of the membrane in an electrolytic cell will result in a lower voltage of operation,
with consequent savings in power costs. Additionally, the products of electrolysis
may be produced at a higher current efficiency.
[0024] In order that the bulk of the expansion of the membrane effected by stretching may
be "locked" into the membrane the membrane may be cooled from an elevated temperature
to a lower temperature whilst the membrane is restrained in the expanded, stretched
state. However, when such a membrane is used in an electrolytic cell the contraction
of the membrane which occurs when the membrane is contacted with electrolyte at elevated
temperature may be much greater than the expansion caused by swelling of the membrane
by contact with electrolyte, and the membrane may tend to tear. Whether or not there
is any tendency to tear will of course depend on the extent of the expansion of the
membrane effected by stretching.
[0025] It is preferred, where the extent of expansion of the membrane which is effected
by stretching is substantial, and in order for example to produce a membrane which
has a much increased surface area per unit per weight and which thus is capable of
operating at a substantially reduced voltage in an electrolytic cell, for the membrane
to be expanded by stretching at an elevated temperature and for the expanded, stretched
membrane to be annealed by heating at the elevated temperature, and subsequently to
cool the membrane to a lower temperature. In this way sufficient expansion may be
"locked" into the membrane for the membrane to remain taut and unwrinkled during use
in an electrolytic cell and also for any tendency for the membrane to tear during
use to be overcome.
[0026] The membrane which is subjected to expansion by stretching will generally be in the
form of a film and may, for example, have a thickness in the range 0.2 to 2 mm.
[0027] Although extremely thin membranes may be produced by stretching the expanded, stretched
membrane should not be so thin that it is highly susceptible to damage when used in
an electrolytic cell. In general the expanded, stretched membrane will have a thickness
of at least 0.02 mm, preferably at least 0.1 mm.
[0028] The elevated temperature at which stretching of the membrane may be effected will
depend on the nature of the membrane. It will in general, however, be in excess of
40°C, preferably in excess of 55°C. A suitable temperature for use with a particular
membrane may be selected by simple experiment. The temperature should not be so high
that the organic polymer of the membrane melts or is degraded to a significant extent.
In general the elevated temperature at which stretching is effected will not be above
150°C.
[0029] Where the expanded, stretched membrane is annealed the annealing temperature may
be the same as or similar to the elevated temperature at which the membrane is stretched.
The annealing temperture may be higher than the temperature at which stretching is
effected. The time for which the expanded, stretched membrane is annealed will determine
the extent of the expansion of the membrane which is "locked" into the membrane when
the membrane is subsequently cooled to a lower temperature, the longer is this annealing
time the less will be the extent of the expansion which remains "locked" into the
membranes. In general, the annealing time will be at least 1 minute, but in general
it will not be more than 5 hours.
[0030] The lower temperature to which the membrane may be cooled will be a temperature at
which the membrane does not relax rapidly when the restraining force, if any is removed
from the membrane. It is most convenient to cool the membrane to a temperature which
is at or near ambient temperature.
[0031] In a further preferred embodiment, particularly useful where the membrane is to be
expanded to a substantial extent by stretching, the membrane is stretched at elevated
temperature, the membrane is cooled to a lower temperature, e.g. to a temperature
at or near ambient, whilst restraining the membrane in the expanded stretched state,
and the steps of expansion by stretching at elevated temperature and cooling are repeated
at least once. In this way the desired amount of expansion of the membrane may be
effected by stretching in a plurality of stages and there is a decreased possibility
of the membrane being damaged, e.g. by tearing, during the stretching.
[0032] The ion-exchange membrane is preferably a cation-exchange membrane containing acidic
groups or derivatives thereof convertible to acidic groups. In order to provide resistance
to the corrosive environment encountered in many electrolytic cells, particulalry
in chlor-alkali cells, the membrane is preferably a fluoropolymer, and more preferably
a perfluoropolymer, containing such acidic groups or derivatives thereof.
[0033] Suitable acidic groups include sulphonic acid, carboxylic acid or phosphonic acid.
The membrane may contain two or more different acidic groups. Suitable derivatives
of the acidic groups include salts of such groups, for example metal salts, such groups,
particularly alkali metal salts. Suitable derivatives include in particular derivatives
convertible to acidic groups by hydrolysis, for example acidic halide groups, e.g.
-S0
2F and -COF, nitrile groups -CN, acid amide groups -CONR
2, where R is H or alkyl, and acid ester groups, e.g. -COOR, where R is an alkyl group.
[0034] Suitable cation-exchange membranes are those described, for example, in the GB Patents
Nos. 1184321, 1402920, 1406673, 1455070, 1497748, 1497749, 1518387 and 1531068.
[0035] It is preferred to use membranes containing derivatives of acidic groups which are
convertible to ion-exchange groups by hydrolysis as membranes containing such groups
are generally more susceptible to stretching. For example, where the membrane is a
fluoropolymer containing carboxylic acid groups as ion-exchange groups it is preferred
to stretch the membrane in a form in which the carboxylic groups are in the ester
form, e.g. in the form of a methyl ester.
[0036] Where the membrane contains groups convertible to ion-exchange groups by hydrolysis
the hydrolysis may be effected, for example, by contacting the membrane with aqueous
alkali metal hydroxide solution, e.g. with aqueous sodium hydroxide solution. As the
membrane may tend to swell on hydrolysis it is preferred to effect such hydrolysis
after the expanded, stretched membrane has been secured to the electrolytic cell or
to a part thereof.
[0037] The membrane may be reinforced, for example with a net of fluoropolymer, although
such reinforced membranes are not preferred as difficulty may be experienced in stretching
the reinforcing net. The membrane may be in the form of a laminate, or it may be coated
with electrode or non-electrode materials.
[0038] The expanded, stretched ion-exchange membrane is secured in the electrolytic cell,
or to a part of the electrolytic cell. Where the membrane has been expanded by stretching
at elevated temperature it may be secured in the electrolytic cell or to a part thereof
whilst at the elevated temperature. However, as the expanded stretched membrane will
tend to cool toward ambient temperature and thus contract during this securing procedure
it is preferred to lock the expansion into the membrane prior to securing the membrane
into the electrolytic cell or to a part thereof. Thus, it is preferred to expand the
ion-exchange membrane by stretching at elevated temperature and to restrain the membrane
in the expanded, stretched state whilst cooling the membrane to a lower temperature,
and preferably to ambient temperature, at which temperature the membrane remains a
substantial proportion of its expanded stretched state when the restraining force
is removed.
[0039] The expanded stretched membrane may be secured to the electrolytic cell or to a part
thereof by any convenient means. For example, the membrane may be securely clamped
between a pair of gaskets in the electrolytic cell, or the membrane may be secured
to a frame which is subsequently installed in the electrolytic cell, or the membrane
may be secured to an electrode.
[0040] The method of the present invention is particularly suitable for use in assembling
an electrolytic cell of the filter press type. Electrolytic cells of the filter press
type may comprise a large number of alternating anodes and cathodes with an ion-exchange
membrane positioned between each anode and adjacent cathode. Such cells may comprise,
for example, fifty anodes alternating with fifty cathodes, although the cell may comprise
even more anodes and cathodes, for example up to one hundred and fifty alternating
anodes and cathodes.
[0041] In the electrolytic cell the electrodes will generally be made of a metal or alloy.
The nature of the metal or alloy will depend on whether the electrode is to be used
as an anode or cathode and on the nature of the electrolytic cell.
[0042] Where aqueous alkali metal chloride solution is to be electrolysed and the electrode
is to be used as an anode the electrode is suitably made of a film-forming metal or
an alloy thereof, for example of zirconium, niobium, tungsten or tantalum, but preferably
of titanium, and the surface of the anode suitably carries a coating of an electro-conducting
electrocatalytically active material. The coating may comprise one or more platinum
group metals, that is platinum, rhodium, iridium, ruthenium, osmium or palladium,
and/or an oxide of one or more of these metals. The coating of platinum group metal
and/or oxide may be present in admixture with one or more non-noble metal oxides,
particularly one or more film-forming metal oxides, e.g. titanium dioxide.
[0043] Electro-conducting electrocatalytically active materials for use as anode coatings
in an electrolytic cell for the electrolysis of aqueous alkali metal chloride solution,
and methods of application of such coatings, are well known in the art.
[0044] Where aqueous alkali metal chloride solution is to be electrolysed and the electrode
is to be used as a cathode the electrode is suitably made of iron or steel, or of
other suitable metal, for example nickel. The cathode may be coated with a material
designed to reduce the hydrogen overpotential of the electrolysis.
[0045] Any suitable construction of electrode may be used in the electrolytic cell. For
example the electrode may comprise a plurality of elongated members, e.g. rods or
strips, or it may comprise a foraminate surface, e.g. a perforated plate, a mesh,
or an expanded metal.
[0046] The invention is illustrated by the following examples.
Example 1
[0047] A rectangular section 35 cm x 30 cm was cut from a 280 micron thick sheet of a cation-exchange
membrane of a copolymer of tetra- fluoroethylene and a perfluorovinyl ether containing
carboxylic acid groups, the ion-exchange capcity of the membrane being 1.3 milli équiva-
lents per gram.
[0048] Strips of PVC elastic tape were attached to the sheet at each of the 35 cm long edges
of the sheet and strips of aluminium were attached to the sheet at each of the 30
cm long edges of the sheet. The sheet was then mounted in a Bruckner Karo 11 orienter
and the temperature of the sheet was raised to 67°C in an oven associated with the
orienter.
[0049] The aluminium strips were pulled apart at a rate of 1 metre per minute until the
spacing of the aluminium strips attached to the sheet had increased by a factor of
1.5, the PVC elastic strips assisting in the prevention of "waisting" of the sheet.
The sheet, whilst mounted on the orienter, was then removed from the oven and cooled
to ambient temperature in a stream of air.
[0050] The above procedure of stretching the sheet at a temperature of 67°C and cooling
of the sheet to ambient temperature was repeated twice, in the first repeat of the
procedure the spacing of the aluminium strips being increased by a factor of 2.5 over
the original spacing and in the second repeat of the procedure the spacing of the
aluminium strips being increased by a factor of 4.2 over the original spacing.
[0051] The resultant cation-exchange membrane film was then removed from the orienter. The
film relaxed slightly towards the original dimensions of the sheet. The thickness
of the film after this slight relaxation was 80 microns.
[0052] The film of cation-exchange membrane produced as described above was securely and
tautly clamped between a pair of gaskets of EPDM rubber and mounted in an electrolytic
cell equipped with a 7.5 cm diameter nickel mesh cathode and a 7.5 cm diameter titanium
mesh anode coated with a coating of a mixture of Ru02 and Ti0
2 in a proportion of 35 Ru0
2: 65 Ti0
2 by weight.
[0053] 310 g/I aqueous NaCl solution at a pH of 8.0 was charged to the anode compartment
of the cell and water was charged to the anode compartment of the cell and water was
charged to the cathode compartment of the cell and the NaCl was electrolysed therein
at a temperature of 90°C, the concentration of NaCI in the anode compartment during
electrolysis being 200 g/I.
[0054] Chlorine and depleted NaCI solution were removed from the anode compartment and hydrogen
and aqueous NaOH (35% by weight) were removed from the cathode compartment.
[0055] The electrolysis was effected at a current density of 1 kA/m
2 and the cell voltage was 3.01 volts.
[0056] After a total of 20 days electrolysis the cell was opened and the cation-exchange
membrane examined. The membrane was found to be taut and not wrinkled.
[0057] By way of comparison the above electrolysis procedure was repeated except that a
280 micron thick sheet of cation-exchange membrane was installed in the electrolytic
cell, that is a membrane which had not been subjected to the stretching process.
[0058] At a current density of 1kA/m
2 the voltage was 3.1 volts and the membrane removed from the cell was found to be
wrinkled and no longer taut.
Example 2
[0059] The electrolysis procedure of Example 1 was repeated at a current density of 2kA/m
2. In this case the voltage was 3.24 volts and, as in the case of Example 1 the membrane,
when removed from the cell, was found to be taut and unwrinkled.
[0060] By way of comparison the above electrolysis procedure was repeated except that a
280 micron thick sheet of cation-exchange membrane was installed in the electrolytic
cell, that is a membrane which had not been subjected to the stretching process.
[0061] At a current density of 2 kA/m
2 the voltage was 3.4 volts and the membrane removed from the cell was found to be
wrinkled and no longer taut.
Example 3
[0062] The electrolysis procedure of Example 1 was repeated at a current density of 3 kA/
M2. In this case the voltage was 3.52 volts and, as in the case of Example 1, the membrane,
when removed from the cell, was found to be taut and unwrinkled.
[0063] By way of comparison the above electrolysis procedure was repeated except that a
280 micron thick sheet of cation-exchange membrane was installed in the electrolytic
cell, that is a membrane which had not been subjected to the stretching process.
[0064] At a current density of 3 kAlm
2 the voltage was 3.7 volts and the membrane removed from the cell was found to be
wrinkled and no longer taut.
Example 4
[0065] A sample of a cation-exchange membrane of a copolymer of tetra-fluoroethylene and
a perfluorovinyl ether containing sulphonic acid groups in the form of the potassium
salt of dimensions 11.5 cm x 11.5 cm was taped at its edges with PVC tape and the
thus taped membrane was clamped in a stentor frame. The membrane was heated to a temperature
of 180°C and was drawn uniaxially at a draw speed of 0.85 m/ min until the membrane
had been drawn by a factor of 2.0. The membrane was then cooled to ambient temperature
and removed from the stentor frame.
[0066] The membrane was installed in an electrolytic cell as described in Example 1 and
the electrolysis procedure of Example 2 was followed, that is aqueous NaCl solution
was electrolysed at a current density of 2 kA/m
2. NaOH solution at a concentration of 25% by weight was produced at a current efficiency
of 50%. The cell voltage was 2.95 volts.
[0067] When the electrolytic cell was opened the membrane was found to be taut and unwrinkled.
[0068] By way of comparison the electrolysis procedure was repeated except that there was
used a membrane as described above which had not been subjected to the stretching
procedure. The cell operated at a voltage of 3.1 volts and NaOH was produced at a
current efficiency of 57%.
[0069] When the cell was opened the membrane was found to be wrinkled and no longer taut.
Example 5
[0070] The stretching procedure of Example 4 was repeated except that the membrane which
was used was a copolymer of tetrafluoroethylene and a perfolurovinyl ether containing
carboxylic acid methyl ester groups, and the temperature to which the membrane was
heated during the stretching was 80°C.
[0071] The membrane was installed in an electrolytic cell as described in Example 1, hydrolysed
by contact with NaOH solution, and the electrolysis procedure of Example 3 was followed,
that is aqueous NaCI solution was electrolysed at a current density of 3 kA/m
2. NaOH solution at a concentration of 35% by weight was produced at a current efficiency
of 94%. The cell voltage was 3.32 volts.
[0072] When the electrolytic cell was opened the membrane was found to be taut and unwrinkled.
[0073] By way of comparison the electrolysis procedure was repeated except that there was
used a membrane as described above which had not been subjected to the stretching
procedure. The cell operated at a voltage of 3.4 volts and NaOH was produced at a
current efficiency of 94%.
[0074] When the cell was opened the membrane was found to be wrinkled and no longer taut.
Example 6
[0075] A sample of an ion-exchange membrane of a copolymer of tetrafluoroethylene and perfluorovinyl
ether containing carboxylic acid methyl ester groups as used in Example 5 was heated
at a temperature of 67°C and was stretched uniaxially on a stentor frame following
the procedure described in Example 4, except that the draw rate was 1 m/min and the
membrane was stretched by a factor of 4.3, that is it was stretched to 430% of its
original length in the direction of stretch. After completion of the stretching the
membrane was cooled rapidly to ambient temperature in a stream of air and removed
from the frame.
[0076] After standing for 15 minutes the membrane was found to have shrunk by 15% in the
direction of stretching, so that in this direction it was 365% of its original length
in this direction.
[0077] The electrolysis procedure of Example 1 was repeated using the above desacribed membrane.
After effecting electrolysis for 20 days the membrane was found to be taught and unwrinkled.
Example 7 to 9
[0078] The procedure of Example 6 was repeated on three separate samples of membrane except
that, prior to cooling and removal from the stentor frame, the samples were annealed
after completion of the stretching by heating at 67°C for respectively 1 minute (Example
7), 2 minutes (Example 8) and 3 minutes (Example 9).
[0079] After standing for 15 minutes after removal from the frame the membranes were found
to have shrunk, in the direction of stretching, respectively by 11 % (Example 7),
10% (Example 8), and 9% (Example 9), that is in this direction the membranes were
383% (Example 7), 387% (Example 8), 391% (Example 9) of their original length.
[0080] The electrolysis procedure of Example 1 was repeated using each of the above described
membranes. After effecting electrolysis for 20 days each of the membranes was found
to be taut and unwrinkled.
1. A method of assembling an electrolytic cell which comprises expanding an ion-exchange
membrane comprising an organic polymer containing ion-exchange groups or derivatives
thereof convertible to ion-exchange groups and securing the expanded membrane to the
electrolytic cell or to a part thereof, characterised in that a pre-formed membrane
is expanded by stretching the membrane to increase the surface area per unit weight
of the membrane by at least 20% and that thereafter the expanded, stretched membrane
is secured to the electrolytic cell or to a part thereof.
2. A method as claimed in Claim 1 characterised in that the membrane is expanded by
stretching at an elevated temperature of greater than 40°C.
3. A method as claimed in Claim 2 characterised in that the membrane is expanded by
stretching at an elevated temperature of greater than 40°C, the expanded, stretched
membrane is cooled to a lower temperature whilst restraining the membrane in an expanded,
stretched state, and thereafter the membrane is secured to the electrolytic cell or
to a part thereof.
4. A method as claimed in any one of Claims 1 to 3 characterised in that the membrane
is expanded by stretching the membrane uniaxially.
5. A method as claimed in any of the Claims 1 to 3 characterised in that the membrane
is expanded by stretching the membrane biaxially.
6. A method as claimed in any one of Claims 1 to 5 characterised in that the membrane
is expanded by stretching to increase the surface area per unit weight of the membrane
by at least 50%
7. A method as claimed in Claim 6 characterised in that the membrane is expanded by
stretching to increase the surface area per unit weight of the membrane by at least
100%.
8. A method as claimed in any one of Claims 1 to 7 characterised in that the membrane
is expanded by stretching at a temperature of at least 55°C.
9. A method as claimed in Claim 8 characterised in that the membrane is annealed by
heating the expanded, stretched membrane at a temperature of at least 55°C.
10. A method as claimed in any one of Claims 1 to 9 characterised in that the membrane
is expanded by stretching at elevated temperature and the membrane is cooled to a
lower temperature whilst restraining the membrane in the expanded, stretched state,
and the steps of expanding by stretching and cooling are repeated at least once each.
11. A method as claimed in any one of Claims 1 to 10 characterised in that the membrane
comprises a fluoropolymer.
12. A method as claimed in any one of Claims 1 to 11 characterised in that the ion-exchange
groups are sulphonic acid and/or carboxylic acid groups, or groups convertible thereto.
13. A method as claimed in Claim 12 characterised in that the ion-exchange groups
are carboxylic acid ester groups.
14. A method as claimed in any one of Claims 1 to 13 characterised in that the pre-formed
membrane has a thickness in the range of 0.2 to 2 mm.
15. A method as claimed in any one of Claims 1 to 14 characterised in that the expanded,
stretched membrane has a thickness of at least 0.02 mm.
1. Verfahren zum Zusammenbau einer elektrolytischen Zelle, bei welchem eine lonenaustauschmembrane
aus einem organischen Polymer, das lonenaustauschgruppen oder in lonenaustauschgruppen
umwandelbare Derivate davon enthält, expandiert wird und die expandierte Membrane
in der elektrolytischen Zelle oder auf einem Teil derselben befestigt wird, dadurch
gekennzeichnet, daß eine vorher hergestellte Membrane durch Strecken derart expandiert
wird, daß die Oberfläche je Gewichtseinheit der Membrane um mindestens 20% zunimmt,
und daß hierauf die expandierte, gestreckte Membrane in der elektrolytischen Zelle
oder auf einem Teil derselben befestigt wird.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, daß die Membrane durch Strecken
bei einer erhöhten Temperatur von mehr als 40°C expandiert wird.
3. Verfahren nach Anspruch 2, dadurch gekennzeichnet, daß die Membrane durch Strecken
bei einer erhöhten Temperatur von mehr als 40°C expandiert wird, die expandierte,
gestreckte Membrane auf eine niedrigere Temperatur abgekühlt wird, während sie in
einem expandierten, gestreckten Zustand gehalten wird, und hierauf die Membrane in
der elektrolytischen Zelle oder auf einem Teil derselben befestigt wird.
4. Verfahren nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, daß die Membrane
durch uniaxiales Strecken der Membrane expandiert wird.
5. Verfahren nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, daß die Membrane
durch biaxiales Strecken der Membrane expandiert wird.
6. Verfahren nach einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, daß die Membrane
durch Strecken derart expandiert wird, daß die Oberfläche je Gewichtseinheit der Membrane
um mindstens 50% zunimmt.
7. Verfahren nach Anspruch 6, dadurch gekennzeichnet, daß die Membrane durch Strecken
derart expandiert wird, daß die Oberfläche je Gewichtseinheit der Membrane un mindestens
100% zunimmt.
8. Verfahren nach einem der Ansprüche 1 bis 7, dadurch gekennzeichnet, daß die Membrane
durch Strecken bei einer Temperatur von mindestens 55°C expandiert wird.
9. Verfahren nach Anspruch 8, dadurch gekennzeichnet, daß die Membrane durch Erhitzen
der expandierten, gestreckten Membrane auf eine Temperatur von mindestens 55°C getempert
wird.
10. Verfahren nach einem der Ansprüche 1 bis 9, dadurch gekennzeichnet, daß die Membrane
durch Strecken bei einer erhöhten Temperatur expandiert wird und die Membrane auf
eine niedrigere Temperatur abgekühlt wird, während sie in einem expandierten, gestreckten
Zustand gehalten wird, wobei die Stufen des Expandierens durch Strecken und des Abkühlens
mindestens jeweils einmal wiederholt werden.
11. Verfahren nach einem der Ansprüche 1 bis 10, dadurch gekennzeichnet, daß die membrane
ein Fluoropolymer enthält.
12. Verfahren nach einem der Ansprüche 1 bis 11, dadurch gekennzeichnet, daß die lonenaustauschgruppen
Sulfonsäure- und/oder Carbonsäure-Gruppen oder in solche Gruppen umwandelbar Gruppen
sind.
13. Verfahren nach Anspruch 12, dadurch gekennzeichnet, daß die lonenaustauschgruppen
Carbonsäureester-Gruppen sind.
14. Verfahren nach einem der Ansprüche 1 bis 13, dadurch gekennzeichnet, daß die vorher
hergestellte Membrane eine Dicke im Bereich von 0,2 bis 2 mm aufweist.
15. Verfahren nach einem der Ansprüche 1 bis 14, dadurch gekennzeichnet, daß die expandierte,
gestreckte Membrane eine Dicke von mindestens 0,02 mm aufweist.
1. Procédé pour assembler une cellule électrolytique, qui comprend la dilatation d'une
membrane échangeuse d'ions comprenant un polymère organique contenant des radicaux
échangeurs d'ions ou des dérivés de ceux-ci convertibles en radicaux échangeurs d'ions,
et la fixation de la membrane dilatée à la cellule électrolytique ou à un organe de
celle-ci, caractérisé en ce qu'une membrane formée au préalable est dilatée par étirage
de la membrane aux fins d'augmenter la surface par unité de poids de la membrane d'au
moins 20% et que la membrane dilatée et étirée est ensuit fixée à la cellule électrolytique
ou à un organe de celle-ci.
2. Procédé suivant la revendication 1, caractérisé en ce que la membrane est dilatée
par étirage à une température élevée supérieure à 40°C.
3. Procédé suivant la revendication 2, caractérisé en ce que la membrane est dilatée
par étirage à une température élevée supérieure à 40°C, la membrane dilatée et étirée
est refroidie jusqu'à une température plus basse tandis que la membrane est maintenue
dans l'état dilaté et étiré, après quoi la membrane est fixée à la cellule électrolytique
ou à un organe de celle-ci.
4. Procédé suivant l'une quelconque des revendications 1 à 3, caractérisé en ce que
la membrane est dilatée par étirage uniaxial de la membrane.
5. Procédé suivant l'une quelconque des revendications 1 à 3, caractérisé en ce que
la membrane est dilatée par étirage biaxial de la membrane.
6. Procédé suivant l'une quelconque des revendications 1 à 5, caractérisé en ce que
la membrane est dilatée par étirage pour augmenter la surface par unité de poids de
la membrane d'au moins 50%.
7. Procédé suivant la revendication 6, caractérisé en ce que la membrane est dilatée
par étirage pour augmenter la surface par unité de poids de la membrane d'au moins
100%.
8. Procédé suivant l'une quelconque des revendications 1 à 7, caractérisé en ce que
la membrane est dilatée par étirage à une température d'au moins 55°C.
9. Procédé suivant la revendication 8, caractérisé en ce que la membrane est recuite
par chauffage de la membrane dilatée et étirée à une température d'au moins 55°C.
10. Procédé suivant l'une quelconque des revendications 1 à 9, caractérisé en ce que
la membrane est dilatée par étirage à une température élevée et la membrane est refroidie
jusqu'à une température plus basse tandis que la membrane est maintenue dans l'état
dilaté et étiré, et les stades de dilatation par étirage et de refroidissement sont
répétés chacun au moins une fois.
11. Procédé suivant l'une quelconque des revendications 1 à 10, caractérisé en ce
que la membrane comprend un fluropolymère.
12. Procédé suivant l'une quelconque des revendications 1 à 11, caractérisé en ce
que les radicaux échangeurs d'ions sont des radicaux acide sulfonique et/ou acide
carboxylique, ou des radicaux convertibles en ceux-ci.
13. Procédé suivant la revendication 12, caractérisé en ce que les radicaux échangeurs
d'ions sont des radicaux ester d'acide carboxylique.
14. Procédé suivant l'une quelconque des revendications 1 à 13, caractérisé en ce
que la membrane formée au préalable a une épaisseur de l'intervalle de 0,2 à 2 mm.
15. Procédé suivant l'une quelconque des revendications 1 à 14, caractérisé en ce
que la membrane dilatée et étirée à une épaisseur d'au moins 0,02 mm.