Old bones in rocks tell a story. 
Scientists look at rocks to learn about the past. 
Scientists study rock layers to learn about history. 
There are many ways to make a biozone. A range zone uses one kind of fossil. It marks when that fossil first appeared and when it went away. A concurrent-range zone uses two different fossils. It looks at where their lives overlapped. Some zones use many fossils. We call this an assemblage zone. An abundance zone marks a time when one fossil was very common.
Some fossils work best for this job. Ammonites are great fossils to use. Tiny microfossils also work well. They are easy to find in small samples.
Albert Oppel was a man who studied this. 
Scientists use fossils to study the history of our Earth. They look at layers of rock to find clues about the past. These special layers are called biozones. A biozone is a section of rock defined by the fossils inside it. This is different from other rock layers defined by the rock type itself. 
There are several ways to create a biozone. A range zone uses the life span of one single group of fossils. It marks from the first appearance to the last appearance of that group. A concurrent-range zone looks at where two different groups overlap in time.
People have studied this for a long time. Albert Oppel was a famous paleontologist in the 19th century. He was the first to establish the idea of a biozone. 
Not all fossils are equally helpful for this work. Some fossils are better than others for making biozones. Graptolites and ammonites are very useful because they preserve well. They often have short biozones which help with timing. 
Using fossils to map time is a very clever way to work. It is like using a special marker to show when things changed. However, it is not always perfect. A biozone does not show the true range of a species. This is because we only find a small part of the fossils. There is also something called the Signor-Lipps effect. This means the last appearance of a species might look older than it really was. Even so, biozones help us understand the long story of life.
Biostratigraphy is the study of rock layers using fossils. A biozone is a specific interval of geological strata. These intervals are defined by the characteristic fossil taxa found within them. This is different from lithostratigraphic units. Lithostratigraphic units are defined by the physical properties of the rock itself. Biozones, however, rely on the biological content.
To understand how biozones work, we must look at their boundaries. The boundary between two distinct biostratigraphic units is called a biohorizon. Biozones can be organized into different hierarchies. They can be divided into smaller subbiozones. Many biozones can also be grouped into a larger superbiozone. These larger groups usually share a related characteristic.
There are several distinct types of biozones defined by the International Commission on Stratigraphy. Range zones are based on the geographic and stratigraphic range of a taxon. A taxon-range zone is defined by a single taxon. It uses the first appearance datum (FAD) and the last appearance datum (LAD) to set boundaries. A concurrent-range zone is different. It uses the overlapping range of two different taxa. The lower boundary is the appearance of one taxon. The upper boundary is the disappearance of the other.
Other types of biozones focus on different evolutionary or statistical patterns. An interval zone is the body of strata between two chosen biohorizons. Lineage zones, or consecutive range zones, follow a specific segment of an evolutionary lineage. These are bounded by the relationship between an ancestor and its descendant. An assemblage zone is defined by three or more different taxa. These taxa may or may not be related to one another. Finally, an abundance zone, or acme zone, marks the range where a taxon is most common.
The study of biozones has a deep history in paleontology. Albert Oppel was a 19th-century paleontologist who first established the concept. He characterized rock strata by the species of fossilized animals within them. He called these "zone fossils." Oppel worked mainly with Jurassic ammonites found throughout Europe. He used these fossils to classify the period into 33 zones. Today, that number has grown to 60 zones. 
Not all fossils are equally useful for creating biozones. Scientists look for fossils that preserve well and have short biozones. Graptolites and ammonites are excellent examples of this. 
While biozones are powerful tools, they have certain limitations. A biozone does not represent the true total range of a species in time. This is because only a small portion of fossils are ever preserved. There is also a phenomenon called the Signor-Lipps effect. This effect means the observed last appearance of a species tends to be further back in time than the actual disappearance. This happens because the fossil record is incomplete. Despite this, biozones remain essential for understanding the history of our planet.
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