Scientific American Supplement, No. 664, September 22,1888Various
History
Scientific American Supplement, No. 664, September 22,1888
Various
Science -- Periodicals
The next application of importance on the list is sewing machines. In
the tests I have been able to make on this class of work I have
obtained some singular results. One item of importance is the fact
that the single thread machines, which are lightest running, consume
the most power in operating. Paradoxical as this may seem, it is
easily explained. As a rule this class of machine is used on light
work, such as shirts, ladies' underwear, etc., and operated at a
higher speed than any other class of machine. At equal speed the volts
consumed on a single thread machine as compared with a shuttle machine
is about as 2 to 3. In average commercial use, however, the positions
are reversed, and the ratio of volts consumed in the single thread as
compared with the shuttle machine is about as 5 to 3. To double the
speed on a sewing machine requires about 2½ times the power. The
difference in volts consumed on the different makes of sewing machines
is so small that we may disregard it entirely, as well as the
character of work done by the machine, for the heavier the work the
slower the speed, and more frequent and longer stops on the machine,
thus keeping the average volts per operator about constant in all
cases. This leaves the speed in stitches per minute at the sewing
machine the factor from which we must calculate the power required in
a sewing machine plant. To illustrate this I will give you the record
of two cases which are about the average. Case No. 1 is a shop in
which are 30 sewing machines connected to a 2 H. P. motor. At the time
tests were made there were but twenty operators at work, leaving ten
idle machines, the entire shafting, however, being in operation. The
class of goods manufactured in this shop is a cheap grade of cotton
and wool pants, rather heavy goods to sew. A volt meter across the
terminals of the motor gave the following readings with the current at
9 amperes: Minimum 90 volts, maximum 148 volts, average 119, which
gives us a minimum average per operator of 4.5 volts and a maximum
average of 7.4 volts, or a general average of 5.9 volts per operator.
This motor was driving the shafting for 30 machines, and as the
average operators employed the year round will not exceed 75 per cent.
of the shop capacity, it will, I think, be entirely fair to estimate
the average volts per machine rather than per operator, as the user of
the motor has contracted for power sufficient to drive his entire
plant. In this case, then, we have a minimum average of 3 volts per
machine and a maximum of 4.9 volts, or a general average of say 4
volts per machine. A 2 horse motor of 82 per cent. efficiency with 9
amperes of current will require about 200 volts to develop 2 actual H.
P. Two hundred volts therefore is what the electric light company
contract to deliver, while, in reality, they deliver only 129 volts or
60 percent., or a minimum average of 90 volts or 45 per cent. of the
power contracted for.
Public-domain text, read in full here on John Shaqi.
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