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Electrocardiography

life science Maturity 9-11

A machine can see your heart.

ECGfemaleathlete.jpg
ECGfemaleathlete.jpg
It uses small pads on your skin. These pads feel the heart's tiny sparks. The machine draws a line on a screen. This line shows how your heart beats. It helps doctors keep you well. Can you feel your heart beat?

48 words

Your heart makes tiny sparks.

EKG sensor.jpg
EKG sensor.jpg
A machine can feel these sparks. It uses small pads on your skin.
ECGfemaleathlete.jpg
ECGfemaleathlete.jpg
These pads are called electrodes. The machine draws a line on a screen. This line shows your heart's rhythm.
Normal 12 lead EKG.jpg
Normal 12 lead EKG.jpg
The line moves as your heart beats. Doctors use this to see if your heart is healthy. It is a safe and painless test. It helps doctors learn how your heart works.

76 words

Your heart uses electricity to beat. This electrical activity makes tiny changes on your skin.

EKG sensor.jpg
EKG sensor.jpg
Doctors use a machine called an electrocardiograph to find these changes. This machine makes a graph called an ECG.
Normal 12 lead EKG.jpg
Normal 12 lead EKG.jpg
The graph shows a line that moves with each heartbeat.

To make a graph, doctors use small pads called electrodes. They stick ten electrodes on your arms, legs, and chest.

ECG limb and chest electrodes placement.png
ECG limb and chest electrodes placement.png
These electrodes measure the electricity from twelve different angles. We call these angles leads.

A healthy ECG has three main parts. First is the P wave. This shows the top parts of the heart working. Next is the QRS complex. This shows the bottom parts working. Finally, the T wave shows the heart getting ready for the next beat.

EKG Complex en.svg
EKG Complex en.svg

Doctors use ECGs to check heart health. They can see the rate and rhythm of your heart. They can also find damage to heart muscle. Some people wear a small device called a Holter monitor. This records the heart for a longer time. Even some smartwatches can do this now.

188 words

An electrocardiogram, or ECG, is a special graph of your heart's electrical activity.

Normal 12 lead EKG.jpg
Normal 12 lead EKG.jpg
Every time your heart beats, it uses tiny electrical signals to make the muscle move. An electrocardiograph is the machine used to record these signals. This process creates a line graph that shows voltage over time. Doctors use these graphs to see how well the heart is working. It is a very important tool for checking heart health.
ECGfemaleathlete.jpg
ECGfemaleathlete.jpg

To make this graph, doctors use small pads called electrodes.

EKG sensor.jpg
EKG sensor.jpg
In a standard 12-lead ECG, ten electrodes are placed on the limbs and the chest. These electrodes detect small electrical changes in the muscle. These changes happen during depolarization, which is when the muscle cells activate. Then, repolarization happens as the cells reset for the next beat.
ECG limb and chest electrodes placement.png
ECG limb and chest electrodes placement.png
The machine measures these signals from twelve different angles, which are called leads. This helps show the direction and strength of the electricity.

A healthy heartbeat shows a very specific pattern on the graph.

EKG Complex en.svg
EKG Complex en.svg
There are three main parts to this pattern. First is the P wave, which shows the top parts of the heart, called the atria, activating. Next is the QRS complex, which shows the bottom parts, the ventricles, activating. Finally, the T wave shows the ventricles resetting. This orderly pattern starts with special pacemaker cells in the sinoatrial node. The signal then spreads through the heart in a very precise way.

Scientists have worked on this technology for a long time.

Willem Einthoven ECG.jpg
Willem Einthoven ECG.jpg
In the late 1800s, people used mechanical machines to track heart movements. However, Willem Einthoven changed everything in 1903. He created a device called a string galvanometer that could measure electrical signals precisely. His amazing work earned him the Nobel Prize in 1924. Today, we use digital machines that are much smaller and safer. Some of these tools are even portable and run on batteries.

ECGs are used in many different parts of medicine today.

Experiment Support Scientist Matthew Roper demonstrating Holter Monitor 2 hardware (cropped).jpg
Experiment Support Scientist Matthew Roper demonstrating Holter Monitor 2 hardware (cropped).jpg
Doctors use them to check for chest pain or heart attacks. They can also monitor patients during surgery or check how heart drugs are working. Some people wear a Holter monitor to record their heart for a longer time.
Limb leads.svg
Limb leads.svg
You might even see this technology in a smartwatch. Newer watches, like the Apple Watch or Samsung Galaxy Watch, can record an ECG. This makes heart monitoring easier to access than ever before.

421 words

Electrocardiography is the medical process of recording the electrical activity of the heart. This process uses a device called an electrocardiograph to produce a recording known as an electrocardiogram, or ECG (sometimes called an EKG).

Normal 12 lead EKG.jpg
Normal 12 lead EKG.jpg
The ECG is a line graph that plots voltage against time. It captures the electrical changes that occur during repeated cardiac cycles, which are individual heartbeats. By observing these electrical signals, clinicians can understand the structure and function of the heart's conduction system. This makes electrocardiography a vital tool for diagnosing various heart conditions and monitoring patient health.

The mechanism of an ECG relies on detecting small electrical changes in the body. These changes happen because of two processes: depolarization and repolarization. During depolarization, the cardiac muscle cells activate. During repolarization, the cells reset themselves. In a healthy heart, this electrical signal follows a very specific path. It begins with pacemaker cells in the sinoatrial node. The signal then spreads through the atria, passes through the atrioventricular node, and moves down the bundle of His. Finally, it enters the Purkinje fibers to spread through the ventricles. This orderly progression creates the characteristic waves seen on a graph.

A standard clinical ECG is typically a 12-lead ECG. To perform this, ten electrodes are placed on the patient's limbs and the surface of the chest.

ECG limb and chest electrodes placement.png
ECG limb and chest electrodes placement.png
These electrodes detect the electrical potential difference between two points, which forms a single "lead." The 12-lead ECG captures the heart's electrical activity from twelve different angles. These leads are categorized into three types: limb leads, augmented limb leads, and precordial leads. The limb and augmented limb leads act like spokes of a wheel in a vertical plane. The six precordial leads are placed on the chest to view the heart in a horizontal plane.
Precordial leads in ECG.png
Precordial leads in ECG.png

The resulting ECG tracing consists of three main components. The first is the P wave, which represents the depolarization of the atria. Next is the QRS complex, which represents the depolarization of the ventricles. Finally, the T wave represents the repolarization of the ventricles.

ECG principle slow.gif
ECG principle slow.gif
By analyzing these waves, doctors can identify many abnormalities. These include cardiac rhythm disturbances like atrial fibrillation or ventricular tachycardia. They can also detect inadequate blood flow, such as myocardial ischemia or myocardial infarction. Furthermore, ECGs can reveal electrolyte disturbances, such as hypokalemia.

The history of this technology shows a massive leap in precision. In the 19th century, mechanical cardiographs recorded physical heart movements using a spring and air chamber system. These were often inaccurate because they captured all body movements.

Willem Einthoven ECG.jpg
Willem Einthoven ECG.jpg
This changed in 1903 when Willem Einthoven developed the string galvanometer. This device allowed for the precise measurement of electrical signals. His revolutionary work earned him the Nobel Prize in 1924. While early machines used analog electronics to print signals onto paper, modern electrocardiographs use analog-to-digital converters to create digital signals. Many modern units are portable, often mounted on small wheeled carts.

Today, ECG technology is used in many medical contexts. Doctors use it to investigate chest pain, shortness of breath, fainting, or seizures. It is also essential for perioperative monitoring during anesthesia.

ECGfemaleathlete.jpg
ECGfemaleathlete.jpg
In some advanced procedures, such as cardiac stress testing or CT angiography, the ECG is used to "gate" the scan. This ensures the anatomical position of the heart remains steady during imaging. Some patients even undergo clinical cardiac electrophysiology, where a catheter with electrodes is inserted through the femoral vein to record activity from inside the heart.

Monitoring can be either intermittent or continuous. Continuous monitoring is used for critically ill patients or those undergoing general anesthesia.

Experiment Support Scientist Matthew Roper demonstrating Holter Monitor 2 hardware (cropped).jpg
Experiment Support Scientist Matthew Roper demonstrating Holter Monitor 2 hardware (cropped).jpg
There are several ways to achieve this. A Holter monitor is a portable device that can be worn for longer periods.
Limb leads.svg
Limb leads.svg
Other options include implantable loop recorders, which stay inside the body for years. Even modern consumer technology has joined this field. Smartwatches, such as the Apple Watch or Samsung Galaxy Watch, can now record single-lead ECGs. These advancements allow for easier access to heart monitoring in daily life.

694 words
🖼️ Images & Media (20)
File:Patient lying in hospital bed in intensive care unit in Germany in 2015.jpg
Patient lying in hospital bed in...
File:Normal 12 lead EKG.jpg
Normal 12 lead EKG.jpg
File:12 lead ECG of a 26 year old male.jpg
12 lead ECG of a 26 year old male.jpg
File:ECGfemaleathlete.jpg
ECGfemaleathlete.jpg
File:EKG sensor.jpg
EKG sensor.jpg
File:Experiment Support Scientist Matthew Roper demonstrating Holter Monitor 2 hardware (cropped).jpg
Experiment Support Scientist Matthew...
File:Limb leads.svg
Limb leads.svg
File:ECG limb and chest electrodes placement.png
ECG limb and chest electrodes placement.png
File:Precordial leads in ECG.png
Precordial leads in ECG.png
File:Limb leads of EKG.png
Limb leads of EKG.png
File:EKG leads.png
EKG leads.png
File:Contiguous leads.svg
Contiguous leads.svg

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