How does the radar work?
Is every thing I see on the images an accurate picture of my weather?
What are the different types of radar images?
How often are the images updated?
What is Clear Air Mode?
What is Precipitation Mode?
What do the colors mean in the reflectivity products?
What is the difference between base and composite reflectivity?
What is UTC Time?
Are there any other radar images available besides the current four?
This reflected signal is then received by the radar during its listening period. Computers analyze the strength of the returned pulse, time it took to travel to the object and back, and phase shift of the pulse. This process of emitting a signal, listening for any returned signal, then emitting the next signal, takes place very fast, up to around 1300 times each second.
NEXRAD spends the vast amount of time "listening" for returning signals it sent. When the time of all the pulses each hour are totaled (the time the radar is actually transmitting), the radar is "on" for about 7 seconds each hour. The remaining 59 minutes and 53 seconds are spent listening for any returned signals.
The ability to detect the "shift in the phase" of the pulse of energy makes NEXRAD a Doppler radar. The phase of the returning signal typically changes based upon the motion of the raindrops (or bugs, dust, etc.). This Doppler effect was named after the Austrian physicist, Christian Doppler, who discovered it. You have most likely experienced the "Doppler effect" around trains.
As a train passes your location, you may have noticed the pitch in the train's whistle changing from high to low. As the train approaches, the sound waves that make up the whistle are compressed making the pitch higher than if the train was stationary. Likewise, as the train moves away from you, the sound waves are stretched, lowering the pitch of the whistle. The faster the train moves, the greater the change in the whistle's pitch as it passes your location.
The same effect takes place in the atmosphere as a pulse of energy from
NEXRAD strikes an object and is reflected back toward the radar. The radar's
computers measure the phase change of the reflected pulse of energy which
then convert that change to a velocity of the object, either toward or
from the radar. Information on the movement of objects either toward or
away from the radar can be used to estimate the speed of the wind. This
ability to "see" the wind is what enables the National Weather Service
to detect the formation of tornados which, in turn, allows us to issue
tornado warnings with more advanced notice.
Under highly stable atmospheric conditions (typically on calm, clear nights), the radar beam can be refracted almost directly into the ground at some distance from the radar, resulting in an area of intense-looking echoes. This "anomalous propagation" phenomenon (commonly known as AP) is much less common than ground clutter. Certain sites situated at low elevations on coastlines regularly detect "sea return", a phenomenon similar to ground clutter except that the echoes come from ocean waves.
Returns from aerial targets are also rather common. Echoes from migrating birds regularly appear during nighttime hours between late February and late May, and again from August through early November. Return from insects is sometimes apparent during July and August. The apparent intensity and areal coverage of these features is partly dependent on radio propagation conditions, but they usually appear within 30 nm of the radar and produce reflectivities of <30 dBZ.
However, during the peaks of the bird migration seasons, in April and early September, extensive areas of the south-central U.S. may be covered by such echoes. Finally, aircraft often appear as "point targets" far from the radar, particularly in composite reflectivity images.
The radar is also limited close in by its inability to scan directly overhead. Therefore, close the radar, data are not available due to the radar's maximum tilt elvation of 19.5°. This area is commonly referred to as the radar's "Cone of Silence".
Though surface echoes appear in the base and composite reflectivity images, special automated error checking generally removes their effects from precipitation accumulation products. The national reflectivity mosaic product is also automatically edited to detect and remove most nonprecipitation features. Even with limited experience, users of unedited products can differentiate precipitation from other echoes, if they are aware of the general meteorological situation.
The maximum range of the base reflectivity product is 124 nautical miles (about 143 miles) from the radar location. This view will not display echoes that are more distant than 124 nm, even though precipitation may be occurring at greater distances. To determine if precipitation is occurring at greater distances link to an adjacent radar or link to the National Reflectivity Mosaic.
Although the Composite Reflectivity product is able to display maximum echo intensities 248 nm from the radar, the beam of the radar at this distance is at a very high altitude in the atmosphere. Thus, only the most intense convective storms and tropical systems will be detected at the longer distances.
Because of this fact, special care must be taken interpreting this product. While the radar image may not indicate precipitation it's quite possible that the radar beam is overshooting precipitation at lower levels, especially at greater distances. To determine if precipitation is occurring at greater distances link to an adjacent radar or link to the National Reflectivity Mosaic.
In this mode, the radar is in its most sensitive operation. This mode has the slowest antenna rotation rate which permits the radar to sample a given volume of the atmosphere longer. This increased sampling increases the radar's sensitivity and ability to detect smaller objects in the atmosphere than in precipitation mode. A lot of what you will see in clear air mode will be airborne dust and particulate matter. Also, snow does not reflect energy sent from the radar very well. Therefore, clear air mode will occasionally be used for the detection of light snow.
The radar continuously scans the atmosphere by completing volume coverage patterns (VCP). A VCP consists of the radar making several 360° scans of the atmosphere, sampling a set of increasing elevation angles.
For example, in clear air mode, the radar begins a volume scan at the 0.5° elevation angle (i.e., the radar antenna is angled 0.5° above the ground). Once it makes two full sweeps (a surveillance/reflectivity sweep and a Doppler/velocity sweep) at the 0.5° elevation angle, it increases to 1.5° and makes two more 360° rotations. At the higher elevations a single sweep is made (reflectivity and velocity data are collected together).
This process is repeated at 2.5°, 3.5°, and 4.5°. Then the radar returns to the 0.5° elevation angle to begin the next volume scan which will repeat the same sequence of elevation angles. In clear air mode, the complete scan of the atmosphere takes about 10 minutes at 5 different elevation angles.When precipitation is occurring, the radar does not need to be as sensitive as in clear air mode as rain provides plenty of returning signals. At the same time, meteorologists want to see higher in the atmosphere when precipitation is occurring to analyze the vertical structure of the storms. This is when the meteorologists switch the radar to precipitation mode using one of two volume coverage patterns.
Both precipitation VCP's begin like the clear air mode mentioned above with the same evaluations scans as in the clear air mode. The difference is the radar continues looking higher in the atmosphere, up to 19.5° to complete the volume scan. The time it takes to complete the entire volume scan is also less. As a result, the range of the radar is less, 124 nm. In the slower VCP, the radar completes the volume scan of nine different elevations in six minutes. In the faster VCP, the radar completes 14 different elevation scans in five minutes.
Differences in the quality of radar images between the two precipitation mode VCPs are relatively minor. Therefore, during severe weather, the faster VCP is almost always used as it provides the meteorologists with the quickest updates and most elevation slices through the storms.
In summary, when the radar is in clear air mode, radar images will be updated approximately every ten minutes. In precipitation mode, the updates will occur around five to six minutes apart.
The colors are the different echo intensities (reflectivity) measured
in dBZ (decibels of Z) during each elevation scan. "Reflectivity" is the
amount of transmitted power returned to the radar receiver. Reflectivity
(designated by the letter Z) covers a wide range of signals (from very
weak to very strong). So, a more convenient number for calculations and
comparison, a decibel (or logarithmic) scale (dBZ), is used.
The scale of dBZ values is also related to the intensity of rainfall.
Typically, light rain is occurring when the dBZ value reaches 20. The higher
the dBZ, the stronger the rainrate. Depending on the type of weather occurring
and the area of the U.S., forecasters use a set of rainrates which are
associated to the dBZ values. These values are estimates of the rainfall
per hour, updated each volume scan, with rainfall accumulated over time.
Hail is a good reflector of energy and will return very high dBZ values.
Since hail can cause the rainfall estimates to be higher than what is actually
occurring, steps are taken to prevent these high dBZ values from being
converted to rainfall.
Why the difference? Base reflectivity only shows reflected energy at a single elevation scan of the radar. Composite reflectivity displays the highest reflectivity of ALL elevations scans. So, if heavier precipitation is higher in the atmosphere over an area of lighter precipitation (the heavier rain that has yet to reach the ground), the composite reflectivity image will display the stronger dBZ level.
This occurs often with severe thunderstorms. The updraft, which feeds
the thunderstorm with moist air, is strong enough to keep a large amount
of water aloft. Once the updraft can no longer support the weight of suspended
water then the rain intensity at the surface increases as the rain falls
from the cloud.
To obtain your local time here in the United States, you need to subtract
a certain number of hours from UTC depending on how many time zones you
are away from Greenwich (England). The table below shows the standard difference
from UTC time to local time.
The switch to daylight savings time does not affect UTC. It refers to
time on the zero or Greenwich meridian, which is not adjusted to reflect
either changes either to or from Daylight Saving Time. However, you need
to know what happens during daylight savings time in the United States.
In short, the
local time is advanced one hour
during daylight savings
time. As an example, the Eastern Time zone difference from UTC is a -4
hours during daylight savings time rather than -5 hours as it is during
Information on the other products and the type of computer equipment you need to receive the products can be found at the Radar Product Central Collection/Distribution Service webpage.
National Weather Service, NOAA
1325 East-West Highway
Silver Spring, MD 20910
Page Author: Dennis R. Cain
updated by ES 12/00