A special stone helps clocks work. 

A special stone helps clocks work. 

Quartz clocks and watches use a special crystal to keep time. 

A tiny computer counts these vibrations. It uses parts called flip-flops to divide the number. Each part cuts the count in half. After 15 steps, the clock gets one pulse every second. 
Quartz is great because it stays stable. Its size does not change much when it gets hot or cold. This helps the clock stay accurate. A typical watch might only lose 15 seconds in 30 days. Wearing a watch near your body also helps. Your body heat keeps the crystal at a steady temperature. 
Quartz clocks and watches are amazing tools for keeping time. They use a tiny piece of quartz to stay very steady. This special crystal is a type of silicon dioxide. Most quartz clocks are much more accurate than old mechanical clocks. This is because they use an electronic oscillator to keep time. 
How does the crystal actually work? Quartz is a piezoelectric material. This means it reacts to electricity in a special way. When you put electricity across the crystal, it will bend. This causes the crystal to vibrate at a very precise frequency. 
Scientists have studied these vibrations for a long time. In the early 1920s, Walter Guyton Cady found that quartz was very stable. He noticed it worked better than steel resonators. Later, experts at the National Bureau of Standards discovered something even better. They found a crystal oscillator could be more accurate than a pendulum clock. 
Once the crystal vibrates, a tiny computer must count the pulses. The clock uses a chain of 15 parts called flip-flops. Each flip-flop acts as a frequency divider. This means it cuts the incoming signal in half. 

Quartz is also great because it handles temperature well. Most materials change size when they get hot or cold. However, quartz stays very steady even when the weather changes. This helps a watch stay accurate for a long time. A standard watch might only lose 15 seconds every 30 days. 
A quartz clock is a timepiece that uses an electronic oscillator to keep time. This oscillator is regulated by a quartz crystal to ensure extreme precision. Because of this stability, quartz timekeepers are at least an order of magnitude more accurate than mechanical clocks. 
The core of the device is a crystal made of silicon dioxide, which is the chemical name for quartz. Quartz is a piezoelectric material, meaning it has a unique relationship with mechanical stress and electricity. When you apply mechanical stress, such as bending, to a quartz crystal, it accumulates an electrical charge across its planes. Conversely, if you apply an electric charge across the crystal, the quartz will physically bend. 
To keep time, the clock uses an electronic circuit called an oscillator. This circuit consists of an amplifier whose output passes through the quartz resonator. The resonator acts as an electronic filter that eliminates all frequencies except for the one of interest. The output of the resonator then feeds back into the amplifier. This feedback loop ensures the oscillator runs at the exact frequency determined by the crystal's shape, size, and the plane on which it was cut. 
In almost all quartz watches, the crystal is cut into a small tuning fork shape. It is designed to vibrate at a frequency of 32,768 Hz, which is 2 to the power of 15. This specific number is chosen because it is high enough to be above human hearing, yet low enough to save battery energy. 
Once the pulse is created, the clock must display the time. In digital clocks, this pulse drives a numerical display. In analog watches, the pulse is sent to a Lavet-type stepping motor. This motor converts the electronic pulses into mechanical movement to turn the gears and hands. 
Accuracy is heavily influenced by temperature, even though quartz has a low coefficient of thermal expansion. To achieve the best results, laboratory-grade oscillators use an oven-controlled crystal oscillator, which keeps the crystal in a tiny, constant-temperature oven. Consumer watches cannot use such expensive systems, so they are designed to work best between 0°C and 30°C. 
The history of this technology began in the early 20th century with radio engineers. They originally used steel resonators to find stable radio frequencies, but these were not as efficient. In the early 1920s, Walter Guyton Cady discovered that quartz provided better stability and required less equipment. Shortly after, scientists at the National Bureau of Standards found that crystal oscillators were more accurate than pendulum clocks. Today, highly advanced quartz movements can be accurate to within 1 to 25 seconds per year. Such precision allows them to be used as marine chronometers for celestial navigation to determine longitude.
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