Showing posts with label knowledge. Show all posts

How to make a feather quill pen?

Have you ever found a feather and felt you just had to make it in to a quill pen? If so, this article is for you!

Step 1
Find your feather. You can use just any real feather that fits comfortably in your hand (like a pencil),but a long tail feather is best.
Step 2
Shave off the fibres closest to where the fibers end. You may leave them if you prefer, but this makes it easier to work with and easier to hold.
Step 3
Leave your feather in water over night. This makes it soft and more easily bent, you will see why later.
Step 4
Heat some sand to three-hundred eighty degrees Celsius and leave the feather in the sand, on a heat-proof surface,like a large pan,until cool. This hardens it and makes it so you don't have to resharpen it as often.
Step 5
Cut your feather at forty-five degrees then make a cut that is opposite the first one at about five degrees (Steepen if necessary). This cut should make two horns.
Step 6
Bend the two horns together. This should create a cracking sound and a pretty central slit at the horns,usually cutting a slit is better.
Step 7
Shave off the horns to a not-really-pointy-or-flat point so you don't splatter ink.
Step 8
If you want to, you can dye the end of the feather by mixing a hair dye in a clear plastic tub,carefully dip the end of the feather into the dye and let it dry overnight.
Step 9
Put a small strip of cloth or a good quality ribbon around the the place where you hold your pen to add more grip.Finished it off with a little super glue.
Step 10

Leave it to dry and it's finished!

Written by Winston.

Even bigger than terabyte?

My USB has 64-gigabyte storage. My computer SSD has 4-terabyte storage. That's not bad: but do you know there are units that massively greater these? This is an intuitive look at large data sizes By Julian Bunn in Globally Interconnected Object Databases.

Bytes(8 Bits)

  • 0.1 bytes: A binary decision
  • 1 byte: A single character
  • 10 bytes: A single word
  • 100 bytes: A telegram OR A punched card

Kilobyte (1000 Bytes)

  • 1 Kilobyte: A very short story
  • 2 Kilobytes: A Typewritten page
  • 10 Kilobytes: An encyclopaedic page OR A deck of punched cards
  • 50 Kilobytes: A compressed document image page
  • 100 Kilobytes: A low-resolution photograph
  • 200 Kilobytes: A box of punched cards
  • 500 Kilobytes: A very heavy box of punched cards

Megabyte (1 000 000 Bytes)

  • 1 Megabyte: A small novel OR A 3.5 inch floppy disk
  • 2 Megabytes: A high resolution photograph
  • 5 Megabytes: The complete works of Shakespeare OR 30 seconds of TV-quality video
  • 10 Megabytes: A minute of high-fidelity sound OR A digital chest X-ray
  • 20 Megabytes: A box of floppy disks
  • 50 Megabytes: A digital mammogram
  • 100 Megabytes: 1 meter of shelved books OR A two-volume encyclopaedic book
  • 200 Megabytes: A reel of 9-track tape OR An IBM 3480 cartridge tape
  • 500 Megabytes: A CD-ROM OR The hard disk of a PC

Gigabyte (1 000 000 000 Bytes)

  • 1 Gigabyte: A pickup truck filled with paper OR A symphony in high-fidelity sound OR A movie at TV quality
  • 2 Gigabytes: 20 meters of shelved books OR A stack of 9-track tapes
  • 5 Gigabytes: An 8mm Exabyte tape
  • 10 Gigabytes
  • 20 Gigabytes: A good collection of the works of Beethoven OR 5 Exabyte tapes OR A VHS tape used for digital data
  • 50 Gigabytes: A floor of books OR Hundreds of 9-track tapes
  • 100 Gigabytes: A floor of academic journals OR A large ID-1 digital tape
  • 200 Gigabytes: 50 Exabyte tapes

Terabyte (1 000 000 000 000 Bytes)

  • 1 Terabyte: An automated tape robot OR All the X-ray films in a large technological hospital OR 50000 trees made into paper and printed OR Daily rate of EOS data (1998)
  • 2 Terabytes: An academic research library OR A cabinet full of Exabyte tapes
  • 10 Terabytes: The printed collection of the US Library of Congress
  • 50 Terabytes: The contents of a large Mass Storage System

Petabyte (1 000 000 000 000 000 Bytes)

  • 1 Petabyte: 5 years of EOS data (at 46 mbps)
  • 2 Petabytes: All US academic research libraries
  • 20 Petabytes: Production of hard-disk drives in 1995
  • 200 Petabytes: All printed material OR Production of digital magnetic tape in 1995

Exabyte (1 000 000 000 000 000 000 Bytes)

  • 5 Exabytes: All words ever spoken by human beings.
  • From wikipedia:
    • The world's technological capacity to store information grew from 2.6 (optimally compressed) exabytes in 1986 to 15.8 in 1993, over 54.5 in 2000, and to 295 (optimally compressed) exabytes in 2007. This is equivalent to less than one 730-MB CD-ROM per person in 1986 (539 MB per person), roughly 4 CD-ROM per person of 1993, 12 CD-ROM per person in the year 2000, and almost 61 CD-ROM per person in 2007. Piling up the imagined 404 billion CD-ROM from 2007 would create a stack from the earth to the moon and a quarter of this distance beyond (with 1.2 mm thickness per CD).
    • The world’s technological capacity to receive information through one-way broadcast networks was 432 exabytes of (optimally compressed) information in 1986, 715 (optimally compressed) exabytes in 1993, 1,200 (optimally compressed) exabytes in 2000, and 1,900 in 2007.
    • According to the CSIRO, in the next decade, astronomers expect to be processing 10 petabytes of data every hour from the Square Kilometre Array (SKA) telescope.[11] The array is thus expected to generate approximately one exabyte every four days of operation. According to IBM, the new SKA telescope initiative will generate over an exabyte of data every day. IBM is designing hardware to process this information.

Zettabyte (1 000 000 000 000 000 000 000 Bytes)

  • From wikipedia:
    • The world’s technological capacity to receive information through one-way broadcast networks was 0.432 zettabytes of (optimally compressed) information in 1986, 0.715 in 1993, 1.2 in 2000, and 1.9 (optimally compressed) zettabytes in 2007 (this is the informational equivalent to every person on earth receiving 174 newspapers per day).[9][10]
    • According to International Data Corporation, the total amount of global data is expected to grow to 2.7 zettabytes during 2012. This is 48% up from 2011.[11]
    • Mark Liberman calculated the storage requirements for all human speech ever spoken at 42 zettabytes if digitized as 16 kHz 16-bit audio. This was done in response to a popular expression that states "all words ever spoken by human beings" could be stored in approximately 5 exabytes of data (see exabyte for details). Liberman did "freely confess that maybe the authors [of the exabyte estimate] were thinking about text."[12]
    • Research from the University of Southern California reports that in 2007, humankind successfully sent 1.9 zettabytes of information through broadcast technology such as televisions and GPS.[13]
    • Research from the University of California, San Diego reports that in 2008, Americans consumed 3.6 zettabytes of information.
  • Internet Traffic to Reach 1.3 Zettabytes by 2016

Yottabyte (1 000 000 000 000 000 000 000 000 Bytes)

How big is yottabyte? Read this figure.

Xenottabyte (1 000 000 000 000 000 000 000 000 000 Bytes)

Shilentnobyte (1 000 000 000 000 000 000 000 000 000 000 Bytes)

Domegemegrottebyte (1 000 000 000 000 000 000 000 000 000 000 000 Bytes)

Icosebyte (1 000 000 000 000 000 000 000 000 000 000 000 000 bytes)

Monoicosebyte (1 000 000 000 000 000 000 000 000 000 000 000 000 000 Bytes)

Overall, the scale:

kilobyte =1024 bytes
megabyte = 1024 kilobytes
gigabyte = 1024 megabytes
terabyte  = 1024 gigabytes
petabtye = 1024 terabytes
exabyte = 1024 petabytes
zettabyte =1024 exabytes
yottabyte = 1024 zettabyte
Xenottabyte = 1024 Yottabytes
Shilentnobyte = 1024 Xenottabytes
Domegemegrottebyte = 1024 Shilentnobytes
Icosebyte = 1024 Domegemegrottebytes
Monoicosebyte = 1024 Icosebyte

So, got it? It's a bit complicated but interesting. Anyway-Hope you learn something. :-)

How atomic clocks really work

     Some people think that the atomic clock works by measuring the decay of some isotope. This is not the case; rather it measures oscillations of an atom, just as a pendulum clock measures the swing of a pendulum. In the atomic clock, cesium atoms are placed in a copper tube that is surrounded by laser beams (four perpendicular and at right angles to each other and one above and one below). When they are all turned on the cesium atoms gather at the very centre of the tube. Then all of the lasers except the one beneath the copper tube are turned off. The one beneath is turned off and on and the cesium atoms are moved up and down in a fountain-like action. To ensure precision, the clock is shielded from the Earth's magnetic field and the temperature is set to near absolute zero (-273 degrees Centigrade).
http://www.citizenclock.com/history_design.html
     As the cesium atoms are thrown up by the laser beneath the tube, they go through a microwave-emitting cavity and then return via gravity through the same cavity. The microwaves are fired at a fluctuating rate around 9,192,631,770 Hertz - regulated by a vibrating crystal. The cesium atoms actually begin to glow or emit light. As the atoms change state, their change is measured. When the state changes are at their optimum, the number of Hertz of the microwave is measured. This is used to adjust the crystal oscillator, which should now register true seconds.
     This all occurs at two places at once, in Colorado and in Paris. The two clocks really only register the length of a second. An average is found between the two measurements. This second is used to synchronize 200 or so other less accurate clocks stationed at other locations around the world. The average of all of these clocks is called International Atomic Time. The clock is so accurate that with the degree of possible error assigned it would take 6 million years for the clock to be off by a second. The Bureau of Weights and Measures then distributes this information throughout the world.

 (From the internet,revised by editors)

Working out, Petabytes


An IBM research lab in Almaden, California is working on a storage repository that offers a colossal 120-petabytes of capacity. 120 petabytes translates to nearly 120 million gigabytes.The data repository consists of some 200,000 conventional hard drives. The repository is expected to be able to store around one trillion files and will likely provide the necessary space for detailed simulations of real-world phenomena.The storage array is being developed for an unnamed client that needs a new supercomputer for detailed simulations of real-world phenomena. 

The new technologies developed to build this repository could enable similar systems for more conventional commercial computing, says Bruce Hillsberg, Director of Storage Research at IBM and leader of the project.
Most supercomputer storage arrays presently offer a maximum storage capacity of 15 petabytes, which makes IBM's new system considerably larger. The system is said to have a number of tools and redundancies at its disposal so in the event of drive failure, the supercomputer can continue to work at almost full speed.

Rewriter by Joe Saunndalkar and Andy Lui, originally by Jason Huttinson