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By the end of this section, you will be able to:
  • Explain the qualities of industrial working-class life in the late nineteenth century
  • Analyze both workers’ desire for labor unions and the reasons for unions’ inability to achieve their goals

The growth of the American economy in the last half of the nineteenth century presented a paradox. The standard of living for many American workers increased. As Carnegie said in The Gospel of Wealth , “the poor enjoy what the rich could not before afford. What were the luxuries have become the necessaries of life. The laborer has now more comforts than the landlord had a few generations ago.” In many ways, Carnegie was correct. The decline in prices and the cost of living meant that the industrial era offered many Americans relatively better lives in 1900 than they had only decades before. For some Americans, there were also increased opportunities for upward mobility. For the multitudes in the working class, however, conditions in the factories and at home remained deplorable. The difficulties they faced led many workers to question an industrial order in which a handful of wealthy Americans built their fortunes on the backs of workers.

Working-class life

Between the end of the Civil War and the turn of the century, the American workforce underwent a transformative shift. In 1865, nearly 60 percent of Americans still lived and worked on farms; by the early 1900s, that number had reversed itself, and only 40 percent still lived in rural areas, with the remainder living and working in urban and early suburban areas. A significant number of these urban and suburban dwellers earned their wages in factories. Advances in farm machinery allowed for greater production with less manual labor, thus leading many Americans to seek job opportunities in the burgeoning factories in the cities. Not surprisingly, there was a concurrent trend of a decrease in American workers being self-employed and an increase of those working for others and being dependent on a factory wage system for their living.

Yet factory wages were, for the most part, very low. In 1900, the average factory wage was approximately twenty cents per hour, for an annual salary of barely six hundred dollars. According to some historical estimates, that wage left approximately 20 percent of the population in industrialized cities at, or below, the poverty level. An average factory work week was sixty hours, ten hours per day, six days per week, although in steel mills, the workers put in twelve hours per day, seven days a week. Factory owners had little concern for workers’ safety. According to one of the few available accurate measures, as late as 1913, nearly 25,000 Americans lost their lives on the job, while another 700,000 workers suffered from injuries that resulted in at least one missed month of work. Another element of hardship for workers was the increasingly dehumanizing nature of their work. Factory workers executed repetitive tasks throughout the long hours of their shifts, seldom interacting with coworkers or supervisors. This solitary and repetitive work style was a difficult adjustment for those used to more collaborative and skill-based work, whether on farms or in crafts shops. Managers embraced Fredrick Taylor’s principles of scientific management    , also called “stop-watch management,” where he used stop-watch studies to divide manufacturing tasks into short, repetitive segments. A mechanical engineer by training, Taylor encouraged factory owners to seek efficiency and profitability over any benefits of personal interaction. Owners adopted this model, effectively making workers cogs in a well-oiled machine.

Questions & Answers

Three charges q_{1}=+3\mu C, q_{2}=+6\mu C and q_{3}=+8\mu C are located at (2,0)m (0,0)m and (0,3) coordinates respectively. Find the magnitude and direction acted upon q_{2} by the two other charges.Draw the correct graphical illustration of the problem above showing the direction of all forces.
Kate Reply
To solve this problem, we need to first find the net force acting on charge q_{2}. The magnitude of the force exerted by q_{1} on q_{2} is given by F=\frac{kq_{1}q_{2}}{r^{2}} where k is the Coulomb constant, q_{1} and q_{2} are the charges of the particles, and r is the distance between them.
Muhammed
What is the direction and net electric force on q_{1}= 5µC located at (0,4)r due to charges q_{2}=7mu located at (0,0)m and q_{3}=3\mu C located at (4,0)m?
Kate Reply
what is the change in momentum of a body?
Eunice Reply
what is a capacitor?
Raymond Reply
Capacitor is a separation of opposite charges using an insulator of very small dimension between them. Capacitor is used for allowing an AC (alternating current) to pass while a DC (direct current) is blocked.
Gautam
A motor travelling at 72km/m on sighting a stop sign applying the breaks such that under constant deaccelerate in the meters of 50 metres what is the magnitude of the accelerate
Maria Reply
please solve
Sharon
8m/s²
Aishat
What is Thermodynamics
Muordit
velocity can be 72 km/h in question. 72 km/h=20 m/s, v^2=2.a.x , 20^2=2.a.50, a=4 m/s^2.
Mehmet
A boat travels due east at a speed of 40meter per seconds across a river flowing due south at 30meter per seconds. what is the resultant speed of the boat
Saheed Reply
50 m/s due south east
Someone
which has a higher temperature, 1cup of boiling water or 1teapot of boiling water which can transfer more heat 1cup of boiling water or 1 teapot of boiling water explain your . answer
Ramon Reply
I believe temperature being an intensive property does not change for any amount of boiling water whereas heat being an extensive property changes with amount/size of the system.
Someone
Scratch that
Someone
temperature for any amount of water to boil at ntp is 100⁰C (it is a state function and and intensive property) and it depends both will give same amount of heat because the surface available for heat transfer is greater in case of the kettle as well as the heat stored in it but if you talk.....
Someone
about the amount of heat stored in the system then in that case since the mass of water in the kettle is greater so more energy is required to raise the temperature b/c more molecules of water are present in the kettle
Someone
definitely of physics
Haryormhidey Reply
how many start and codon
Esrael Reply
what is field
Felix Reply
physics, biology and chemistry this is my Field
ALIYU
field is a region of space under the influence of some physical properties
Collete
what is ogarnic chemistry
WISDOM Reply
determine the slope giving that 3y+ 2x-14=0
WISDOM
Another formula for Acceleration
Belty Reply
a=v/t. a=f/m a
IHUMA
innocent
Adah
pratica A on solution of hydro chloric acid,B is a solution containing 0.5000 mole ofsodium chlorid per dm³,put A in the burret and titrate 20.00 or 25.00cm³ portion of B using melting orange as the indicator. record the deside of your burret tabulate the burret reading and calculate the average volume of acid used?
Nassze Reply
how do lnternal energy measures
Esrael
Two bodies attract each other electrically. Do they both have to be charged? Answer the same question if the bodies repel one another.
JALLAH Reply
No. According to Isac Newtons law. this two bodies maybe you and the wall beside you. Attracting depends on the mass och each body and distance between them.
Dlovan
Are you really asking if two bodies have to be charged to be influenced by Coulombs Law?
Robert
like charges repel while unlike charges atttact
Raymond
What is specific heat capacity
Destiny Reply
Specific heat capacity is a measure of the amount of energy required to raise the temperature of a substance by one degree Celsius (or Kelvin). It is measured in Joules per kilogram per degree Celsius (J/kg°C).
AI-Robot
specific heat capacity is the amount of energy needed to raise the temperature of a substance by one degree Celsius or kelvin
ROKEEB
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Source:  OpenStax, U.s. history. OpenStax CNX. Jan 12, 2015 Download for free at http://legacy.cnx.org/content/col11740/1.3
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