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Radiography

life science Maturity 11-13

Special rays can see inside you. They pass through skin. But they stop at your bones. This makes a picture of your bones. It helps doctors see if you are hurt. Can you see your own bones?

Рентген черепа.jpg
Рентген черепа.jpg

54 words

Special rays can see inside things. A man named Wilhelm Röntgen found them. He saw they could pass through skin. But the rays stop at bones or metal.

Рентген черепа.jpg
Рентген черепа.jpg
This makes a shadow picture of the inside. Doctors use these pictures to help people. They can see if a bone is broken. These rays also help check machines in factories. They can even look at old fossils. It is a great way to see the hidden world.

93 words

Radiography is a way to see inside objects. It uses special rays called X-rays. A scientist named Wilhelm Röntgen found these rays in 1895. He saw they could pass through skin. But they could not pass through bone or metal. This creates a shadow picture of the inside.

Рентген черепа.jpg
Рентген черепа.jpg

To make a picture, an X-ray generator makes a beam. This beam travels toward an object. Some rays are stopped by the object. This depends on how dense the object is. The rays that pass through hit a detector. This detector can be film or a digital tool.

Projectional radiography components.jpg
Projectional radiography components.jpg

There are many ways to use this. Doctors use it to find broken bones. They also use CT scans. In a CT scan, the X-ray source rotates around a person. A computer then makes 3D images.

Ct-workstation-neck.jpg
Ct-workstation-neck.jpg
Factories also use radiography. It helps them check machines for cracks. It can even help scientists study old fossils.
Darwinius radiographs.jpg
Darwinius radiographs.jpg

174 words

Radiography is a way to see inside objects without breaking them open. It uses special types of energy called X-rays or gamma rays. These rays can pass through many things, like human skin. However, they cannot pass through very dense things, like bone or metal. This difference creates a shadow-like image of the inside. This technology is very important for doctors and engineers today. It helps find broken bones or check machines for cracks.

To make a standard image, an X-ray generator creates a beam. This beam is projected toward the object you want to see. Some of the rays are absorbed by the object. This depends on how dense the object is. The rays that pass through are caught by a detector behind it.

Projectional radiography components.jpg
Projectional radiography components.jpg
This detector can be a piece of photographic film. It can also be a digital detector. This simple method is called projectional radiography. It is a great way to see bones and lungs.

This amazing discovery happened on 8 November 1895. A German physics professor named Wilhelm Conrad Röntgen found the X-rays. He was using a Crookes tube and a special screen. He noticed a green glow on a screen one metre away. He realized invisible rays were passing through his black cardboard shield.

Crookes tube xray experiment.jpg
Crookes tube xray experiment.jpg
Röntgen called them "X" because they were unknown. He even won the first Nobel Prize in Physics for this. He later took the first X-ray of his wife's hand.

Many people helped make radiography useful in medicine. John Hall-Edwards used X-rays on a needle in 1896. In the United States, Frank Austin tested many tubes. He found that only the Pulyui tube worked well. This was because the tube had a piece of mica inside. Later, Marie Curie helped use radiography for wounded soldiers in World War I. Today, radiographers use many advanced tools. They use CT scans and even bone density tests called DEXA.

AP lumbar xray.jpg
AP lumbar xray.jpg

Some tools work even better than simple X-rays. A CT scan uses a rotating X-ray source. It takes many beams from many different directions. A computer then puts this data together. This can create a 3D image of a person.

Ct-workstation-neck.jpg
Ct-workstation-neck.jpg
There is also fluoroscopy, which shows moving images. This helps doctors watch things like blood moving through vessels.
Cerebral angiography, arteria vertebralis sinister injection.JPG
Cerebral angiography, arteria vertebralis sinister injection.JPG
Even scientists use it to look at very old fossils.
Darwinius radiographs.jpg
Darwinius radiographs.jpg

422 words

Radiography is a sophisticated imaging technique used to view the internal structure of an object. It utilizes ionizing radiation, such as X-rays or gamma rays, and sometimes non-ionizing radiation. This technology is vital for both medical and industrial applications. In medicine, it is used for diagnosis and therapy. In industry, it allows for non-destructive testing of manufactured parts.

Projectional radiography components.jpg
Projectional radiography components.jpg

The basic mechanism of conventional radiography involves a specific sequence of events. First, an X-ray generator produces a beam of X-rays. This beam is then projected toward the object being studied. As the rays hit the object, they undergo attenuation. Attenuation is when the object absorbs some of the radiation. This absorption depends on the density and structural composition of the object. For example, calcium-rich bones absorb more X-rays than soft carbon-based tissues. The rays that are not absorbed pass through the object. A detector, such as photographic film or a digital detector, captures these remaining rays. This process creates a two-dimensional image known as projectional radiography.

Coude fp.PNG
Coude fp.PNG

There are several distinct types of radiographic techniques. Projectional radiography is the most common method for viewing bones or lungs. Computed tomography, or CT scanning, is a much more complex version. In a CT scan, an X-ray source and detectors rotate around the subject. The subject moves through a conical beam. Many different beams cross any single point from many directions. A computer then collects this information to create detailed images. These images can be viewed on three planes: axial, coronal, and sagittal. They can even be processed into three-dimensional images.

Ct-workstation-neck.jpg
Ct-workstation-neck.jpg

Another method is fluoroscopy, a term created by Thomas Edison. Fluoroscopy provides moving images rather than still photographs. This is useful for watching moving tissue or guiding medical interventions like pacemaker insertion. A specific type is angiography, which uses fluoroscopy to view the cardiovascular system. To see blood vessels clearly, doctors inject a high-density contrast agent like iodine into the bloodstream. This makes the vessels stand out against the less dense liquid blood.

Cerebral angiography, arteria vertebralis sinister injection.JPG
Cerebral angiography, arteria vertebralis sinister injection.JPG

There is also Dual energy X-ray absorptiometry, often called DEXA. This is used primarily to measure bone density to test for osteoporosis. It is not used for finding fractures because the image quality is lower. Instead, it uses two narrow beams scanned at 90 degrees from each other. It can also measure total body fat, though this is less common. The radiation dose in a DEXA scan is much lower than in standard projectional radiography.

The history of radiography began with a major discovery in 1895. On 8 November 1895, German physics professor Wilhelm Conrad Röntgen discovered X-rays. He was investigating cathode rays using a Crookes tube and a fluorescent screen. He noticed a faint green glow on a screen located one metre away. He realized invisible rays were passing through an opaque black cardboard shield. He called them "X" rays because the nature of the radiation was unknown.

Crookes tube xray experiment.jpg
Crookes tube xray experiment.jpg
Röntgen later captured the first radiograph of a human body part: his wife's hand.

Early medical use developed very rapidly after this discovery. In January 1896, John Hall-Edwards performed the first clinical X-ray to find a needle in a hand. In the United States, Frank Austin found that the Pulyui tube was uniquely effective for producing X-rays. This was due to an oblique mica target inside the tube. Later, Marie Curie advocated for the use of radiography to treat wounded soldiers during World War I. Today, the field has grown into the specialized medical discipline of radiology. Radiographers perform many tasks, including ultrasound and magnetic resonance imaging, while radiologists analyze the resulting images.

Darwinius radiographs.jpg
Darwinius radiographs.jpg

624 words
🖼️ Images & Media (11)
File:Рентген черепа.jpg
Рентген черепа.jpg
File:Crookes tube xray experiment.jpg
Crookes tube xray experiment.jpg
File:First medical X-ray by Wilhelm Röntgen of his wife Anna Bertha Ludwig's hand - 18951222.jpg
First medical X-ray by Wilhelm Röntgen of...
File:James Green & James H. Gardiner - Sciagraphs of British Batrachians and Reptiles - 1897 - Rana Esculenta.jpg
James Green & James H. Gardiner -...
File:Projectional radiography components.jpg
Projectional radiography components.jpg
File:Ct-workstation-neck.jpg
Ct-workstation-neck.jpg
File:Cerebral angiography, arteria vertebralis sinister injection.JPG
Cerebral angiography, arteria vertebralis...
File:Darwinius radiographs.jpg
Darwinius radiographs.jpg
File:Coude fp.PNG
Coude fp.PNG
File:AP lumbar xray.jpg
AP lumbar xray.jpg
File:Hand Xray (48630648876).jpg
Hand Xray (48630648876).jpg
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