Document pmB9MwJ0QyRyB7apypaDRLyEE
RECORDED DUST CONDITIONS AND POSSIBLE NEW SAMPLING STRATEGIES ON SOUTH AFRICAN GOLD MINES
W. L. LE Roux Consulting Ventilation Engineer, Federate Mynbou, Johannesburg, South Africa
This paper refers only to dust sampling in controlled South African mines of Group A,
which are all large and relatively deep gold mines in the Witwatersrand Geological System.
At present about 340,000 persons are exposed to dusty conditions on these mines.
1. Objects of Dust Sampling
These can best be stated in the words used by Beadle1 during the 1959 conference:
`The particular object in any given case may be one or more of the following:
i. To detect working places with unsatisfactory dust conditions.
ii. To determine the causes of such conditions. iii. To indicate the necessary control measures. iv. To determine the effectiveness of dust sup pression methods or equipment. v. To confirm that satisfactory conditions have been obtained after remedial action, and that they remain satisfactory. vi. To provide records of dust conditions so that trends can be assessed. vii. To correlate dust exposures with incidence of disease. viii. To comply with Regulations.'
chloric acid to dissolve soluble salts. The konimeter is still being used for all
routine work, except in a few mines which have recently started using a modified thermal precipitator on an experimental basis. Various types of thermal precipitator are being used for research work.
3. Recorded Dust Conditions
At present mine officials take about half a million konimeter samples per annum, mainly to comply with Regulations and to detect working places with unsatisfactory conditions.
2. Dust Sampling Instruments
The earliest dust measurements were made by means of the sugar tube. Initially no attempt was made to eliminate large particles, but as from. 1912 large particles (above about 75 microns) were eliminated by rinsing the dust through a 200 mesh gauge. Later a still finer mesh gauge was used.
The number of samples taken by means of the sugar tube increased to about 35,000 during 1919 and then gradually diminished to 17,000 during 1936. It was then abandoned because, apart from the cumbersomeness of the equipment and the laboriousness of the method, the improved dust conditions made the method even less accurate than before.
The Kotze konimeter came into use in 1916 and was later followed by the circular koni meter and in 1948 by the Witwatersrand koni meter. All the konimeter results refer to number counts after ignition to burn off carbon particles and treatment with hydro
Fig. 1. The change in the annual dust index for mines of Group A.
In addition, Government Inspectors of Mines take about 30,000 samples per annum during routine inspections. These results are classified into 36 different classes of place and they are published annually. Of these, Du Toit2 used 6 strategic classes of place in his doctoral thesis to determine a `dust index' for each year. The results are given in Table 1 and Fig. 1. The 6 classes of place
467
468 W. L. le Roux
selected are the tops of downcast shafts, the bottoms of downcast shafts, main intake air ways away from downcast shafts, stopes, development ends and sinking shafts.
1901 and 1924 and the very marked improve ment from then till i960. Since i960 condi tions have certainly not improved and there are even indications of a slight deterioration.
Table I: Annual Dust Indices
Year
1901 1905 1907 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936
1937 1939 1941
1943 1945 1947 1949 1951
1953 r955 1956 1957 1958 1959 i960 1961 1962 1963 1964 1965 1966 1967
Sugar Tube Konimeter ppcc Milligrams per (corrected for
Cubic Metre Old Microscopes)
150 150
20
49 46 4-6
2-8 2'2 i`7
1-6
i'4
1*2 1*0 1*0
I*I
I*I
o*8 0-9 0-7
o*8 o*8 o-8 o*8 o-8
o-6
323
269
224
190 146 139 135 133 131 130 125 129 117 108 102 102 100
93 120 107 113 119 119 III 128
The konimeter results for the period 1931 to 1956 were corrected for differences due to gradual replacement of old methods and microscopes by more refined methods and microscopes.
These results demonstrate the spectacular improvements which were- achieved between
4. Possible New Dust Sampling Strategies
The following statement made by Kitto3 at
the 1959 conference is, in most respects, still
valid today:
'
`In the gold mines, where routine dust samp ling is carried out by the mines themselves, the konimeter is still the routine instrument used, in
spite of its limitations. It is a more robust, com pact, and reliable instrument than the thermal pre cipitator, and these advantages, together with the
short period required for sampling, have been suffi cient in the past to outweigh any considerations about the greater accuracy of the thermal precipi
tator. The complete lack of proof, so far, that the thermal precipitator gives a closer correlation with
the incidence of silicosis does not help to persuade the mining personnel that its adoption is desirable.
Various other instruments for determining num ber concentration have been tried from time to
time, but they have all proved unsatisfactory in some way or other.'
However, there have been some develop
ments during the past 10 years which tend
to alter the situation.
i. The new modified thermal precipitator
which is at present being tested as a routine
instrument on four mines for a period of six
months, is comparatively robust and compact
and requires only five minutes for the taking
of a sample.
ii. The samples from this instrument can
be quickly and reliably evaluated by means
of the diffraction size frequency analyser
(Disa).
iii. The samples are amenable to celloidin-
acid treatment which improves the reliability
of the results when surface area is measured
instead of number concentration.
These developments may result in the
konimeter being replaced as the basic sampling
instrument by the new modified thermal
precipitator. However, the author, as a practi
cal mining man, will be very sorry to see the
konimeter deposed. Notwithstanding its
known shortcomings, it has given sterling
service in the past and any new instrument
will have its own quota of shortcomings.
The fact is that the risk of pneumoconiosis
cannot be reduced by more or better sampling,
but only by overcoming the human element
which is for various reasons unwilling to
apply known methods of dust suppression.
In terms of paragraph 64 (2) (a) of the
Pneumoconiosis Compensation Act No. 64 of
Recorded Dust Conditions and Possible New Sampling Strategies
469
1962, the government has established a Pneumoconiosis Risk Committee whose func tion it is to estimate the pneumoconiosis risk to which persons employed in a dusty atmosphere in each mine are exposed.
Differential levy rates are to be applied to mines based on their individual risk indices, one of the objects being to provide an incen tive for the taking of measures to prevent the release of dust. The author doubts whether a reliable risk index can ever be determined by means of dust sampling and also whether the object will be achieved by means of differential levies, because dust levels are affected more by the attitude of the miners than of management. However, if the Com
mittee does decide to base its risk index on a dust index, it is very likely that the modified thermal precipitator with assessment by means of DISA will prove the most suitable method. Sampling would naturally have to be carried out by a team independent of the individual mines.
References
1. Beadle, D. G. (1959): In Proceedings of the Pneumoconiosis conference, Johannesburg, p. 4.
2. Du Toit, R. S. J. (June 1968): The functional relationship between dust hazard and the rate of collecting funds to pay compensation for pneumoconiosis, Ph.D. Thesis.
3. Kitto, P. H. (1959): In Proceedings of the Pneumoconiosis Conference, Johannesburg, p.
14-