The present invention relates to a blowing agent combination based upon azodicarbonamide, zinc oxide and a benzene thiol sulphonic acid derivative, to the production thereof by mixing the aforementioned components, as well as to the use thereof for the production of cellular and porous articles, more particularly the production of foamed plastics from thermoplastic synthetic materials.
It is known to produce foamed plastics from thermoplastic synthetic materials by working an organic chemical blowing agent into the synthetic material, by tumbling such a blowing agent on a synthetic material granulate or by mixing such a blowing agent homogeneously with a synthetic material powder, which blowing agent decomposes with gas evolution at temperatures where the synthetic material becomes plastic.
Substances belonging to the varied classes of compounds which maybe used for this purpose of application are described in the literature, e.g. azo compounds, hydrazine, semicarbazide, triazole, tetrazole, N-nitroso compounds, benzoxazine, and others(see Kunststoffe 66 (1976) 10, pages, 698-701).
One of the most frequently used organic chemical blowing agents is azodicarbonamide. However, temperatures of 205.degree.-215.degree. C. are necessary for the evolution of the blowing gas, which is a disadvantage in many applications. Accordingly in the past many efforts were made to lower the decomposition temperature of azodicarbonamide. It was possible to reduce the decomposition temperature by adding compounds containing metals, in particular lead, zinc, and/or cadmium compounds. However, it is still a disadvantage that even with the best commercial activator, the rate of decomposition of azodicarbonamide is low at temperatures of below 160.degree. C.
Another deficiency which is observed when using azodicarbonamide as a blowing agent, is that ammonia appears in the decomposition gases and this leads to corrosion of the metal moulds used in the production of the foamed plastics. Furthermore, for example in the injection moulding of thermoplastics containing azodicarbonamide, an interfering mould covering is detected which is attributed to cyanuric acid which results from decomposition.
The formation of cyanuric acid is greatly reduced according to the disclosure of German Offenlegungsschrift No. 23 59 007 by the addition of hydrated silicic acid or dehydrated metal salts, but it is not however, completely suppressed. An aggravating disadvantage however, is that the formation of ammonia is greatly accelerated by the presence of water.
The object of the present invention was to develop a blowing agent combination which allows azodicarbonamide to decompose sufficiently quickly at temperatures of below 160.degree. C. with the production of decomposition gases which are free of ammonia and to prevent any mould covering.
It has now been found the above object can be solved by the blowing agent combinations according to the present invention, these being based on azodicarbonamide, zinc oxide and a benzene thiol sulphonic acid derivative according to general formula (1).
Accordingly, the present invention provides a blowing agent combination comprising azodicarbonamide, zinc oxide and a benzene thiol sulphonic acid derivative according to the general formula (1). ##STR3## wherein R is a hydrogen atom, a C.sub.1 -C.sub.4 alkyl radical and/or a chlorine atom, X is a number from 1 to 5, and R' is a C.sub.1 -C.sub.4 alkyl radical, a C.sub.5 -C.sub.6 cyclo alkyl radical or a C.sub.7 -C.sub.8 -arylalkyl radical, each of these radicals being optionally substituted by from 1 to 3 C.sub.1 -C.sub.4 alkyl radicals, from 1 to 5 chlorine atoms and/or a carboxylic acid C.sub.1 -C.sub.4 -alkyl ester radical. R' can also be a radical according to one of the general formulae 11a, 11b, 11c or 11d: ##STR4## in which Y is a number from 0 to 3,
R" is a C.sub.1 -C.sub.6 -alkylene radical or a xylylene radical which is optionally substituted by from 1 to 4 methyl radicals and/or from 1 to 4 chlorine atoms and
R and X have the meanings which have already been given for Formula (1) above
The above blowing agent combination comprises azodicarbonamide as the blowing agent and an activator combination of zinc oxide and a benzene thiol sulphonic acid derivative of general formula (1) in the respective proportions by weight of from 95:5 to 5:95, preferably 75:25 to 25:75.
The activator mixture itself is composed of from 90 to 10, preferably 70 to 30% by weight of zinc oxide and from 10 to 90, preferably 30 to 70 weight % of the benzene thiol sulphonic acid derivative according to general formula (1).
The following are mentioned as examples of benzenethiolsulphonic acid derivatives:
The production of the benzenethiolsulphonic acid derivatives is known from the literature and can for example result according to the following process of:
(1) The reaction of benzenethiolsulphonic acid salts with alkyl, cycloalkyl, aralkyl, alkylene or xylylene halides (or sulphates, or sulphonesters), e.g. ##STR5## (2) The reaction of benzenethiolsulphonic acid salts with sulphur halides, ##STR6## (3) The reaction of benzenesulphinic acid salts with sulphenic acid halides or sulphur halides. e.g. ##STR7##
The blowing agent combination according to the present invention is produced by mixing the components thereof in any sequence. Mixing is carried out in a conventional mixing apparatus which is familiar to the skilled man, suitably at temperatures of between 15.degree. and 30.degree. C. In some cases it is advisable to add the zinc oxide and the benzenethiolsulphonic acid derivative to finely ground azodicarbonamide.
With the aid of the blowing agent combinations according to the present invention, cellular and porous articles can be produced, particularly foamed plastics from thermoplastic synthetic materials. The following are mentioned as examples of thermoplastic synthetic materials:
Polyvinylchloride, Polyethylene, Polypropylene, Copolymers of VC/VAC, VC/EVAC, E/VC, Propylene/VC, E/VAC, Polystyrene, Polyethylstyrene, Polyamide, Polycarbonate, Polysulphone, Polyethyleneterephthalate, Polybutyleneterephthalate, Polyphenyleneoxide, Polyacrylonitrile, Polymethacrylonitrile, Polymethacrylate, synthetic materials based on cellulose esters, Acrylonitrile-Butadiene-Styrene-Polymers (ABS), mixtures of Polysulphone and Styrene-Acrylonitrile- or ABS-polymers, mixtures of Polycarbonate and ABS-Polymers and mixtures of PVC and ABS-polymers or Acylonitrile-Polymers.
The blowing agent combination according to the present invention is preferably added in quantities of from 0.1 to 25% by weight, particularly preferably in quantities of from 0.3 to 15% by weight, based on the weight of synthetic material. However, it can also be measured out and added in any other quantity which is familiar to the skilled man, and the addition may be adjusted particularly to the requirements which are set by the skilled man for the article which is to be foamed.
For the production of cellular and porous articles, the blowing agent--synthetic material mixtures are heated to temperatures of preferably from 140.degree. to 350.degree. C., more preferably from 145.degree. to 300.degree. C., at which temperatures decomposition of the blowing agent causes the synthetic material to foam up. The temperature which is used in a particular case depends upon the processing scope of the thermoplastic used.
Examples of cellular and porous articles are: foamed synthetic leather for the padding, leather goods and shoe industries, foamed flooring materials, life-jackets, buoys and floats, foamed housings for the radio and phono industries, furniture and parts of furniture, imitation wood, foamed extrusion articles such as pipes, profiles of all kinds, cable casings, and foamed films for decoration and packing purposes.
The present invention is further illustrated in the following examples.
The gas evolution which is obtained with one of the blowing agent combinations according to the present invention is shown in Table 1. The gas evolution is shown as a function of the ratio ZnO to dibenzenesulphonyl-disulphide at various temperatures.
Example 1 represents the prior art. From Examples 2 to 10, the synergistic effect between ZnO and the activator according to the present invention can be seen.
The gas evolution depending on the activator concentration at various temperatures is shown in Table 2. Examples 18 and 19 represent the prior art.
Table 3 shows the specific weight of PVC-flexible foams with blowing agent combinations of the present invention, (Examples 22 to 37).
Example 40 contains azodicarbonamide without an activator and Examples 39, 41, 42, 43 and 44 represent the prior art.
The PVC-flexible foams were produced on a coating installation which was heated with hot air, the coating weight being 850 g/m.sup.2, the gel and foam temperature being 190.degree. C., and the duration in the gel passage was varied from two minutes (corresponds to a production rate of 6 m/min) to 1 minute (corresponds to 12 m/min)
Particularly where high production rates are concerned, the advance of the present invention (Examples 22 to 37) can be seen as against the present state of the art (Examples 39, 41, 42, 43 and 44). Comparing Example 39 with example 22:
With a production rate of 6 m/min (2 minutes duration), with ZnO only as activator, a PVC-flexible foam is obtained with a specific gravity of 0.49 g/cm.sup.3. The blowing agent combination according to the present invention products the same specific gravity of 0.49 g/cm.sup.3 with a production rate of 12 m/min (1 minute duration).
This is correspondingly valid for the other Examples.
Example 46
A PVC-plastisol consisting of:
50 parts by weight of PVC-pastes K-value 70 (pH of the aqueous extract=7.0)
50 parts by weight of DOP
0.5 parts by weight of diphenylthiourea
10 parts by weight of azodicarbonamide (average particle size 5.0 nm)
6 parts by weight of dibenzenesulphonyl-disulphide
9 parts by weight of ZnO
is introduced into a gas tight steel mould of size 100.times.100.times.10 mm and is pressed under a high pressure press at 25 bar and 170.degree. C. for 20 minutes. After cooling, the moulded article is re-heated at 100.degree. C. for 30 minutes with hot air. A fine porous foam having a bulk density of 52 kg/m.sup.3 is obtained.
Example 47
1000 g of ABS polymer is mixed with 1.5 g of paraffin oil for 10 minutes in a tumbler mixer. After this mixing time, 2.5 g of azodicarbonamide, 1.25 g of ZnO and 1.25 g of dibenzenesulphonyl-monosulphide are added and distributed in homogeneous fashion by further mixing on the ABS-surface. The mixture thus produced is then foamed in a spiral injection moulding machine having a needle shut-off nozzle, into 9 mm thick moulded shapes, at a mass temperature of 220.degree. C. A fine porous foam having a regular foam structure and a density of 0.65 g/cm.sup.3 is obtained.
The injection mould form was free from mould covering, and the formation of ammonia was not observed.
Example 48
A plastisol consisting of:
55 parts by weight of PVC/PVAc, (PVAc-content 5%)
45 parts by weight of an alkane sulphonic acid ester of phenol (trade name: Mesamoll/Bayer AG),
1.5 parts by weight of Di-n-octyltin-bis-thioglycol acid octylester,
1.0 parts by weight of azodicarbonamide,
0.60 parts by weight of ZnO and
0.90 parts by weight of dibenzenesulphonyl-monosulphide is foamed at 160.degree. C. (hot air temperature) for 6 minutes with a coating weight of 850 g/m.sup.2. A fine porous foam having a specific gravity of 0.40 g/cm.sup.3, is obtained.
In comparison, the plastisol of Example 48 but having 1.0 parts /5-morpholyl-1,2,3,4-thiatriazole and 0.75 parts ZnO under the same conditions as above yields a foam having a specific gravity of 0.47 g/cm.sup.3.
5-morpholyl-1,2,3,4-thiatriazole was chosen and compared as a commercial blowing agent having a low decomposition temperature.