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Severity of electrical shock The severity of injury from electrical shock depends on the amount of electrical amperage (current) and the length of time the current passes through the body. For example, 1/10 of an ampere (amp) of electricity going through the body for just 2 seconds is enough to cause death. The amount of internal current a person can withstand and still be able to control the muscles of the arm and hand can be less than 10 milliamperes (milliamps or mA). Currents above 10 mA can paralyze or "freeze" muscles. When this "freezing" happens, a person is no longer able to release a tool, wire, or other object. In fact, the electrified object may be held even more tightly, resulting in longer exposure to the shocking current. For this reason, hand-held tools that give a shock can be very dangerous. If you can't let go of the tool, current continues through your body for a longer time, which can lead to respiratory paralysis (the muscles that control breathing cannot move). You stop breathing for a period of time. People have stopped breathing when shocked with currents from voltages as
low as 49 volts. Usually, it takes about 30 mA of current to cause
respiratory paralysis.Currents greater than 75 mA may cause ventricular fibrillation (very rapid, ineffective heartbeat). This condition will cause death within a few minutes unless a special device called a defibrillator is used to save the victim. Heart paralysis occurs at 4 amps, which means the heart does not pump at all. Tissue is burned with currents greater than 5 amps. The table below shows what usually happens for a range of currents (lasting one second) at typical household voltages. Longer exposure times increase the danger to the shock victim. For example, a current of 100 mA applied for 3 seconds is as dangerous as a current of 900 mA applied for a fraction of a second (0.03 seconds). The muscle structure of the person also makes a difference. People with less muscle tissue are typically affected at lower current levels. Even low voltages can be extremely dangerous because the degree of injury depends not only on the amount of current but also on the length of time the body is in contact with the circuit.LOW VOLTAGE DOES NOT MEAN LOW HAZARD!
![]() There have been cases where an arm or leg is severely
burned by high-voltage electrical current to the point of coming off,
and the victim is not electrocuted. In these cases, the current passes
through only a part of the limb before it goes out of the body and into
another conductor. Therefore, the current does not go through the chest
area and may not cause death, even though the victim is severely disfigured.
If the current does go through the chest, the person will almost surely
be electrocuted. A large number of serious electrical injuries involve
current passing from the hands to the feet. Such a path involves both
the heart and lungs. This type of shock is often fatal.
A severe shock can cause much more damage to the
body than is visible. A person may suffer internal bleeding and destruction
of tissues, nerves, and muscles. Sometimes the hidden injuries caused
by electrical shock result in a delayed death. Shock is often only the
beginning of a chain of events. Even if the electrical current is too
small to cause injury, your reaction to the shock may cause you to fall,
resulting in bruises, broken bones, or even death.
The length of time of the shock greatly affects the amount of injury. If the shock is short in duration, it may only be painful. A longer shock (lasting a few seconds) could be fatal if the level of current is high enough to cause the heart to go into ventricular fibrillation. This is not much current when you realize that a small power drill uses 30 times as much current as what will kill. At relatively high currents, death is certain if the shock is long enough. However, if the shock is short and the heart has not been damaged, a normal heartbeat may resume if contact with the electrical is eliminated. (This type of recovery is rare.) The amount of current passing through
the body also affects the severity of an electrical shock. Greater voltages
produce greater currents. So, there is greater danger from higher voltages.
Resistance hinders current. The lower the resistance (or impedance in
AC circuits), the greater the current will be.
Dry skin may have a resistance
of 100,000 ohms or more. Wet skin may have a resistance of only 1,000
ohms. Wet working conditions or broken skin will drastically reduce
resistance. The low resistance of wet skin allows current to pass into
the body more easily and give a greater shock. When more force is applied
to the contact point or when the contact area is larger, the resistance
is lower, causing stronger shocks.
The path of the electrical current through the body affects the severity
of the shock. Currents through the heart or nervous system are most
dangerous. If you contact a live wire with your head, your nervous system
will be damaged. Contacting a live electrical part with one hand-while
you are grounded at the other side of your body-will cause electrical
current to pass across your chest, possibly injuring your heart and
lungs.
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