8 Absolutely Bizarre Keyboards | |
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Pretty much everything on this list will make you think "WTF, that's ridiculous" but this one's definitely at the top of the list. First of all, you can't even reach the keys with your right hand fingers, and second, you'd pretty much have to relearn how to type. These are supposed to be produced later this year. If only every computer had build in bluetooth or wireless connectivity, this would actually be useful. Otherwise, you'd have to pop in the bluetooth adapter, connect to it... I suppose they'd be one hell of an awesome nerd fashion statement. Everyone who's anyone knows watches are soooo totally out of style. All the cool kids are wearing these puppies nowadays. Us awesome solar powered, whale saving, electric car driving folks here at HacknMod love the environment. We've decided to order 10 of these to decrease our carbon emmissions. Somehow this one has horribly misnamed an "ergonomic keyboard." Seems to me like you'd be twisting your fingers and wrists in so many directions to type, you're bound to get carpal tunnel while writing your first email with the thing. We've seen these in movies such as Live Free or Die Hard, and we also know how to make them as well. You can actually buy them cheap now for about 20 bucks. Similarly Amazon sells a Fabric Keyboard for $80. Okay, this one definitely beats the mouse-keyboard combo in this "WTF, thats ridiculous" category. The creators of this device claim you can learn to type 30 words a minute in just one short weekend. In the final board meeting, they decided to change the name from Carpal Tunnel Nightmare to the Twiddler. 8. No Comment | |
Wednesday, May 7, 2008
8 Absolutely Bizarre Keyboards - HacknMod.com [Technology]
Monday, May 5, 2008
BBC NEWS | Science/Nature | US army develops robotic suits [Robots][Technology]
| By Rajesh Mirchandani BBC News, Utah |
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Rex Jameson, software engineer
On the big screen, films like Robocop, Universal Soldier and forthcoming release Iron Man show man-machines with superhuman powers. But in Utah they are turning science fiction into reality.
We are at a research facility on the outskirts of Salt Lake City, ringed by beautiful snow-capped mountains. Once they held the Winter Olympics here; now they are testing endurance in other ways.
The aluminium limbs gleam in the brilliant sunshine, as the strange metal skeleton hangs from a safety harness at the outdoor testing site. It seems to be treading water; actually its programme is telling it to keep the hydraulic fluid in its joints moving.
Rex Jameson, a software engineer here at laboratories run by Sarcos, the robotics firm which designed the XOS exoskeleton, steps up and into the suit.
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Stephen Jacobsen, Sarcos
The lightweight aluminium exoskeleton, called XOS, senses Rex's every move and instantly moves with him; it is almost like a shadow or a second skin. It is designed for agility that can match a human's, but with strength and endurance that far outweigh our abilities.
With the exoskeleton on and fully powered up, Rex can easily pull down weight of more than 90 kilos, more than he weighs.
For the army the XOS could mean quicker supply lines, or fewer injuries when soldiers need to lift heavy weights or move objects around repeatedly. Initial models would be used as workhorses, on the logistics side.
Later models, the army hopes, could go into combat, carrying heavier weapons, or even wounded colleagues.
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The XOS in action
There are still problems to solve, not least how to create a mobile power supply that can last an effective length of time.
But the US military expects to take delivery of these early prototypes next year, and hopefully deploy some refined versions within eight years.
It is a long way off before we see robot soldiers that can fly or fire missiles - like in the movies - but the designers are already imagining future versions more reminiscent of Hollywood.
http://news.bbc.co.uk/go/pr/fr/-/2/hi/science/nature/7351314.stm
Published: 2008/04/16 22:30:25 GMT
© BBC MMVIII
Tuesday, April 29, 2008
Howstuffworks "How Robotic Vacuums Work" [Robots][Technology]
Introduction to How Robotic Vacuums Work
| Photo courtesy iRobot Roomba Red. See more robotic vacuum images. |
Today's robotic vacuums are a far cry from the first models that you had to track down, stranded somewhere in your house, by their melancholy, "I'm out of power" beeping. The latest products clean your house, remember the layout to increase efficiency, dump their own dirt in a receptacle and find their way back to the charging station so they can rejuice.
In this article, we'll learn about robotic vacuuming, do an in-depth examination of the iRobot Roomba Red and check out some of the other vacuuming robots on the market.
| Roomba Cleaning Roomba Self-charging Roomba Avoiding Stairs |
Robotic Vacuum Basics
There are a lot of models of robotic vacuums available today, and they range in price from $50 all the way up to $1,800. These vacuuming robots are typically low-slung and compact, meaning they can get under furniture that a regular upright vacuum cleaner can't.
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Most manufacturers will tell you that a robotic vacuum is meant to supplement a standard, human-pushed vacuum cleaner, not replace it. They're meant to perform daily or weekly touch-ups to keep your home cleaner in between regular vacuuming cycles. Still, if you're someone who never vacuums in the first place, a little robotic helper can certainly get your floor cleaner than it is right now, and you hardly have to lift a finger.
By far the most popular robotic vacuum in the United States is iRobot's Roomba, which comes in various models ranging from the base-model Roomba Red to the super high-tech Roomba Scheduler. HowStuffWorks has a Roomba Red ($150 MSRP) that we're going to try out and dissect for this article. Let's start by checking out what's under the hood.
Inside a Roomba
The Roomba Red is approximately 13 inches (33 cm) in diameter and 3.5 inches (9 cm) tall. An external examination reveals the following parts:
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Roombas run on a rechargeable NiMH battery. The Roomba Red battery pack is rated at 3 amp-hours and takes about seven hours to fully charge to about 18 volts. Some of the more recent Roomba models have cut that charge time down to about three hours. A full charge equals approximately two hours of cleaning time, which in the Roomba world means vacuuming three medium-size rooms before it needs to rejuice. The mobility system consists primarily of two motor-driven, tracked wheels. Roomba steers by alternating the power supplied to each wheel.
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Roomba has a total of five motors:
- One driving each wheel (2 total)
- One driving the vacuum
- One driving the spinning side brush
- One driving the agitator assembly
In the following sections, we'll address each of the systems that make Roomba work, beginning with the most robotically interesting one: the navigation system.
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Roomba Navigation
The self-navigation system is what makes a robotic vacuum robotic, and the biggest difference between a $50 model and a $1,500 model is the precision of the navigation sensors. Roomba uses iRobot's AWARE(tm) Robotic Intelligence System to make many decisions for itself, so minimal human input is required. The AWARE system is made up of multiple sensors that pick up environmental data, send it to robot's the microprocessor and alter Roomba's actions accordingly.
| Roomba Red's microprocessor |
According to iRobot, the system can adapt to new input up to 67 times per second.
We'll look at the following parts to learn how Roomba navigates its environment:
| Pressing on the bumper activates the object sensors (below). |
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The first thing Roomba does when you press "Clean" is calculate the room size. iRobot is a bit hazy on how it does this, but HowStuffWorks believes that it sends out an infrared signal and checks how long it takes to bounce back to the infrared receiver located on its bumper. Once it establishes the size of the room, it knows how long it should spend cleaning it.
While Roomba is cleaning, it avoids steps (or any other kind of drop-off) using four infrared sensors on the front underside of the unit. These cliff sensors constantly send out infrared signals, and Roomba expects them to immediately bounce back. If it's approaching a cliff, the signals all of a sudden get lost. This is how Roomba knows to head the other way. When Roomba knocks into something, its bumper retracts, activating mechanical object sensors that tell Roomba it has encountered an obstacle. It then performs (and repeats) the sequential actions of backing up, rotating and moving forward until it finds a clear path.
Another infrared sensor, which we'll call a wall sensor, is located on the right side of the bumper and lets Roomba follow very closely along walls and around objects (like furniture) without touching them. This means it can clean pretty close up to these obstacles without bumping into them. It also determines its own cleaning path using what iRobot says is a pre-set algorithm that achieves complete floor coverage.
| Roomba Red's "cleaning algorithm" |
When HowStuffWorks tried it out, we found that Roomba starts cleaning in an outward-moving spiral and then heads for the perimeter of the room. Once it hits an obstacle, it believes it has reached the perimeter of the room. It then cleans along the "perimeter" until it hits another obstacle, at which point it cleans around it, finds a clear path and proceeds to traverse the room between objects like walls and furniture until the allotted cleaning time is up. The idea appears to be that if it cleans for a certain amount of time, it'll cover the whole floor, but whether it actually achieves complete floor coverage is pretty much hit or miss.
Roomba can clean for about two hours on a single charge. If you have the self-charger, Roomba will return and connect to the charger all by itself when the battery power is low (the self-charger is sold as an add-on to the Roomba base model but comes included on most of the higher Discovery models). It accomplishes this using the infrared receiver on its front bumper. When the battery power gets low, the vacuum starts looking for the infrared signal emitted by the charger. Once it finds it, Roomba follows the signal and docks itself to the charger. Some robotic vacuums with this self-charging feature will head back out to resume cleaning once they're fully recharged.
So the Roomba is smart enough to clean your floors while you're at the movies, but there are still some decisions you need to make for it. First, you need to remove small obstacles from the floor so Roomba doesn't get stuck on them or try to suck them up. You also need to tell Roomba where it should not go. Using included virtual wall units, you can keep the robot within certain boundaries. Virtual walls send out infrared signals that Roomba picks up with the receiver on its bumper. When it picks up a signal from a virtual wall, it knows to turn around and head the other way.
Roomba's sensors allow it navigate your home with relative autonomy. Now let's find out how it accomplishes its real purpose: vacuuming.
Roomba Cleaning
According to iRobot, more than half of Roomba owners name their little vacuuming buddy. Electrolux, the maker of the high-end Tribolite robotic vacuum, reports that it receives letters and pictures from families that own its product. Still, most people don't buy a robotic vacuum because they're looking for a low-maintenance pet. They buy it because their floors get dirty.Roomba Red has a three-part cleaning system:
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If you remove the agitator assembly, you can see two dirt sensors:
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- The spinning side brush sticks out past the Roomba shell to reach spots the underside can't access. It spins along walls to kick up dirt and direct it into the vacuum area. The brush on the opposite side of the Roomba directs any wayward dirt back under the unit to be sucked up.
- The agitator on the underside of the Roomba consists of two counter-rotating brushes that grab dirt and other debris and deposit it directly in the dirt bin.
- The vacuum sucks up dirt and dust as Roomba moves along the floor.
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You typically need to empty the dirt bin at least once for each room the Roomba vacuums, and possibly two or three times depending on how dirty your floors are. Roomba doesn't know when the bin is full -- it just keeps going. There's a filter you'll need to replace when it gets too clogged, but there's no vacuum bag -- you just dump the bin and put it back in the unit.
As far as cleaning power goes, the iRobot Web site states that Roomba has "as much suction as a standard upright," although it offers no specifications. When HowStuffWorks tried out the Roomba Red, we found that it cleans quite well on hardwoods and linoleum, and it picks up a good amount of the dirt and pet hair on low- and medium-pile carpet. According to iRobot, Roomba is not intended for deep-pile carpet.
Now, when you're pushing a vacuum through your home, you make decisions. If you see that an area is especially dirty, you spend more time there. When you pass from the linoleum of the kitchen to the carpet in the dining room, you turn a knob on the vacuum so it can achieve its optimum efficiency on the type of floor its cleaning. As a robot, Roomba should be able to at least partially replicate a human's ability to clean effectively.
In order to figure out which areas need extra cleaning, Roomba Red has two dirt sensors located immediately above the agitator brush. These dirt sensors are acoustic impact sensors. When the agitator kicks up a large amount of dirt, the dirt causes more vibration when it hits the metal plates of the sensors. The sensors detect that increase and tell Roomba to go over the area again. To make the transition between floor types, Roomba's cleaning deck (which houses the agitator setup) automatically adjusts its height when it senses a half-inch (1.3-cm) rise in the floor surface.
One thing Roomba can do that a human and an upright vacuum can't is get completely under furniture. Because Roomba Red is only about 3.5 inches (9 cm) tall, it can easily get under most coffee tables, night stands, beds and some couches. The ability to clean under furniture is arguably one of the biggest draws of the robotic vacuum.
The Roomba Red is a handy device, but it's only one example of a vacuuming robot. In the next section, we'll check out some of the other robotic vacuums available today.
| Roomba Cleaning Roomba Self-charging Roomba Avoiding Stairs |
Robotic Vacuum Models
There are lots of vacuuming robots on the market, and all of them cover certain tasks -- most notably, they vacuum. Most models also feature some sort of obstacle-avoidance system and come equipped with a remote control. Beyond that, there are differences between products that account for the great range in price. Here, we'll discuss several robotic vacuums and their distinguishing characteristics.
Priced at $70, the RV01 is probably most notable for its affordability. It features a sweeper attachment for hardwoods and has four built-in cleaning patterns (random, spiral, perimeter and "z") that it uses for each room. Lentek claims this ensures complete floor coverage. This model is only meant for hardwoods and low-pile carpet.
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More expensive and more helpful than the Roomba Red ($150 MSRP), the 4210 model costs about $280 and comes standard with the self-charging base station that calls the robot home. It takes less than three hours to charge, has a larger dust bin than previous models and will clean a single area for as long as you want it to.
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At $320, the Scheduler is iRobot's current top-end robotic vacuum, although everything that makes the Scheduler the Scheduler is available for purchase as add-ons for some of the other Roomba models. This model lets you set cleaning cycles in advance. You can tell it to clean for 40 minutes every Tuesday and 80 minutes every Saturday and adjust the schedule at will using the remote control.
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The RC3000 costs about $1,500 and features some pretty cool capabilities. For one thing, not only does it find its way back to the charging station, but it also empties its own dust bin while it's there. It only takes about 15 minutes to fully charge, and a full charge gets you about 60 minutes of continuous cleaning. Once it recharges, it heads back out again to pick up its cleaning where it left off. The RC3000 also has a quiet mode.
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At $1,800, the Tribolite is at the top end of the robotic cleaning spectrum. It uses sonar to navigate and can easily avoid almost any type of obstacle. You can program it to clean at specific times and choose between three cleaning modes. The Tribolite creates a map of the room it's cleaning and calculates a cleaning path that will maximize coverage. It recognizes doorways by way of little magnetic strips that you apply, and it uses them to keep itself in the room you want it to clean. When it runs out of power, it returns itself to the charging station and resumes cleaning once it's rejuiced. |
As you can see from the pricier models, the trend in robotic vacuums is toward a more complete home robot that will do more than just clean your floor. Products sold as vacuuming robots are starting to offer additional features like Internet connectivity, home surveillance and air-purification. The future is likely to see home robots that download music, answer your phone and preheat your oven while they vacuum your house.
For more information on robotic vacuums and related topics, check out the links on the next page.
Howstuffworks "How Laser Weapons Work" [Interesting]
Introduction to How Laser Weapons Work
Lambert/Hulton Archive/Getty Images
Could this young man use
his laser gun to stun
an opponent? See more
laser pictures.
But what are the advantages of using a laser as a weapon? Is it even possible? Could you use such a weapon to stun an opponent? These questions are being addressed by the Air Force Research Laboratory's Directed Energy Directorate. This program is developing high-energy lasers, microwave technologies and other futuristic weapons systems, such as the Airborne Laser and the PHaSR.
Lasers and other directed-energy weapons have many advantages over conventional projectile weapons like bullets and missiles:
- The weapons' light outputs can travel at the velocity of light.
- The weapons can be precisely targeted.
- Their energy output can be controlled -- high-power for lethal outcomes or cutting and low-power for nonlethal outcomes.
The Air Force has already developed three weapons systems that are being tested and, in some cases, used. These systems include the Airborne Laser (Advanced Tactical Laser), the PHaSR and the Active Denial System. Read on to find out how lasers and these weapons systems work.
Researchers at Intel and the University of California, Santa Barbara demonstrated the world's first electrically driven hybrid silicon laser, addressing one of the last hurdles to producing low-cost, highly integrated silicon photonic chips for use inside and around PCs, servers and data centers. |
How can a laser be a weapon?
At its most basic, a laser is a light source. To understand how it can become a weapon, it's helpful to think about how it's different from the light sources that are around you every day. Start with an ordinary incandescent light bulb. The bulb sends light waves out in every direction. These waves, just like waves in water, have peaks and troughs, or high points and low points. If you were able to see each light wave coming from an incandescent bulb, you'd see lots of peaks and troughs passing you at the same time. There are also lots of frequencies, or colors, of light coming from a light bulb, and they all combine to create what looks like white light.
Now, think of a flashlight. A flashlight's beam is more focused than what comes from a naked light bulb. Most of its light travels in one direction, depending on where you point the flashlight. There are still lots of frequencies of light that combine to create white light, and the peaks and troughs of the different light waves pass by at different times.
A laser is even more focused than a flashlight. It creates only one wavelength, or color, of light. The peaks and troughs from the light waves are also synchronized peak to peak and trough to trough. This means that the different waves don't interfere with each other. This light travels only in one direction. The light beam can be tightly focused and remain so over great distances. Lasers can produce light of tremendous powers (1,000 to 1 million times stronger than a typical light bulb). Various types of lasers can produce various wavelengths of light, from the infrared range through the visible wavelengths to the ultraviolet range.
Light is basically moving energy. A laser produces very intense energy that can travel over very long distances. That's why a laser can become a weapon while the light from an incandescent bulb typically can't.
To do this, a laser has to produce light in a nonconventional way. "Laser" stands for light amplification by stimulated emission of radiation. In other words, a laser produces light by stimulating the release of photons, or light particles. A laser needs four basic parts to do this:
- Lasing medium: a source of atoms that get excited and emit light of a specific wavelength. The medium can be a gas, liquid or solid.
- Energy source: primes or pumps the atoms in the lasing medium to an excited state
- Mirrors: a full mirror and a half-silvered mirror. The mirrors allow the emitted light to bounce back and forth within the lasing medium cavity and ultimately to escape to the outside
- Lens: most lasers have some type of lens to focus the beam.
The lasing process is all about storing and releasing energy. An energy source injects energy into the lasing medium. The energy excites electrons, which move up to higher energy levels. When the electrons relax, they emit photons. The photons move back and forth between the mirrors, exciting other electrons as they go. This produces powerful, focused light.
Next, we'll start to look at some of the lasers being used for the military.
Military Lasers
There are many different types of lasers:
- Solid state lasers have a lasing medium that is solid crystal, like the ruby laser or the neodinium YAG laser, which emits 1.06 micrometer wavelength.
- Gas lasers have a lasing medium that is a gas or combination of gases, such as helium-neon laser or carbon dioxide laser, which emits 10.6 micrometer wavelengths (infrared).
- Excimer lasers have a lasing medium that is a combination of reactive gases, like chlorine or fluorine, and inert gases, like argon or krypton. The argon fluoride laser emits ultraviolet light of 193 nanometer wavelengths.
- Dye lasers have a lasing medium that is a fluorescent dye, such as rhodamine. They can be tuned to a variety of wavelengths within a certain range. The rhodamine 6G dye laser can be tuned from 570- to 650-nanometer wavelengths.
- Carbon dioxide lasers are being explored by the military because they're powerful infrared lasers that can be used for cutting metal.
Image courtesy Flavio Robles/Creative Services Office, Lawrence Berkeley National Lab
Illustration of a free electron laser. A beam of electrons is sent through an undulator -- an array of magnets with alternating north and south poles. The magnetic field in the undulator forces each bunch of electrons to oscillate back and forth, causing them to emit a laserlike beam of light.
There are several lasers currently being used for military purposes. One that's being researched and developed is the free electron laser (FEL). In the 1970s, Stanford physicist John Madey invented and patented the FEL, which consists of an electron injector, a particle accelerator and a magnetic undulator or wiggler. It works like this:
- The electron injector injects a pulse of free electrons into the particle accelerator.
- The particle accelerator accelerates the electrons to near the speed of light (300,000 km/s)
- The electrons move through the undulator or wiggler, which is a series of magnets with alternating north-south directions.
- Inside the wiggler, the electrons oscillate back and forth. With each bend, they emit light of a specific wavelength.
- The spacing of the magnets within the wiggler controls the wavelength of emitted light. So, the FEL laser can be tuned by changing the magnet spacing.
- In theory, the FEL can be tuned from the infrared region to the X-ray region of the electromagnetic spectrum.
FELs have been used to produce high-energy infrared light and synchrotron X-rays for research purposes. The FEL was also a laser of interest for the Defense Department's Strategic Defense Initiative (President Reagan's "Star Wars" program). Recently, the U.S. Naval Postgraduate School acquired Madey's original FEL developed at Stanford University, to use for military research.
In 1977, the U.S. Air Force developed a chemical oxygen-iodine laser (COIL). The energy source for the COIL is a chemical reaction, and the lasing medium is molecular iodine. Here's how it works: atoms, heat and byproducts, including water vapor and potassium chloride.
- A chemical reaction occurs between chlorine gas and liquid mixture of hydrogen peroxide and potassium hydroxide.
- The chemical reaction produces single oxygen
- Molecular iodine gets injected into the laser. The singlet oxygen provides the energy to get the iodine atoms to lase and emit infrared light at a wavelength of 1.3 micrometers.
- The laser can emit light continuously or the light can be pulsed, which increases the efficiency of the laser.
The Airborne Laser
Photo courtesy Kirtland AFB/
U.S. Air Force
Air Force's Airborne Laser
is an aircraft equipped
with a chemical laser. It's designed to shoot down missiles in early flight.
The ABL is mounted in a modified Boeing 747 jumbo jet. It consists of four lasers, advanced adaptive optics, sensors, and computers to locate, track and destroy missiles. It works like this:
- Infrared sensors detect the heat signature of a boosting missile and report information to an Active Tracking Laser.
- The Active Tracking Laser tracks the missile and reports relevant tracking information (distance, speed, altitude).
- The Tracker Illuminator Laser scans the target and figures out where best to aim the high-energy laser.
- The Beacon Illuminator Laser shines on the target, determines the amount of atmospheric turbulence between the ABL and the target, and relays this information to the adaptive optics system in the aiming mechanism of the high-energy laser.
- The Adaptive Optics system is made of deformable mirrors that compensate for atmospheric turbulence. The turret mounted in the nose houses a 1.5-meter telescope as part of the optics system.
- The COIL laser fires a megawatt beam at the target. The beam exits the ABL through the nose-mounted turret.
- The high-energy laser beam penetrates the skin of the target missile and disables or explodes it, depending upon where the beam strikes.
All of the operations are coordinated by computer.
The Air Force is currently testing the ABL and says that its range is in the order of hundreds of kilometers. The ABL will require a crew of six when it is fully operational, and they'll wear special safety goggles to protect their eyes from possible reflections of the beams by water droplets in the air.
High-energy lasers like those developed for the ABL are being designed and developed for use on land and at sea. These lasers would be truck- or ship-mounted and capable of shooting down incoming missiles, artillery shells and possibly enemy aircraft.
Nonlethal and Personal Laser Weapons
Photo courtesy U.S. Department
of Defense
The Active Denial System directs millimeter radio frequencies at a target and causes an intense burning sensation.
Now we know that high-energy lasers are used to shoot down missiles, but do they have nonlethal uses, too? Yes. In fact, one such system has been tested and will soon be operational. It's called the Active Denial System (ADS). The ADS isn't a laser, but a truck-mounted high-energy radio frequency generator and directional antenna. A generator inside creates a 95 GHz millimeter wave. (Millimeter waves have wavelengths of 1 to 10 millimeters and frequencies of 30 to 300 GHz.) The directional antenna focuses the millimeter waves and allows the operator to point the beam. The millimeter beam penetrates the skin of anyone in its path to a depth of 1/64th of an inch, about the thickness of three sheets of paper. Like a microwave oven, the energy of the beam heats water molecules in the skin tissue and causes an intense burning sensation. The beam doesn't permanently injure because it doesn't penetrate very far, and when a person moves out of the beam, the sensation goes away (see How Military Pain Beams Will Work).
Suppose you could momentarily stun or distract an opponent. The Air Force has developed a device that will do just that -- the Personnel Halting and Stimulation Response (PHaSR). The PHaSR incorporates two low-power diode lasers, one visible and one infrared. It's about the size of a rifle and can be fired by an individual. The laser light temporarily distracts or "dazzles" the target person without blinding him.
The Department of Defense is also developing other optical distracter devices that could temporarily impair a target's vision.
You don't have to be a sci-fi fan to be wondering if there are any personal laser weapons on the market for civilians. Maybe something like those you see in science fiction shows? Can an average person purchase or build one? A company called Information Unlimited advertises a laser ray gun. After signing a hazardous equipment affidavit and purchasing the plans, you can purchase the hardware and assemble your very own laser gun.
Photo courtesy Kirtland AFB/U.S. Air Force
The Personnel Halting and Stimulation Response (PHaSR) is a rifle-size laser weapon system that uses two nonlethal laser wavelengths to deter an adversary.
Information Unlimited's laser ray gun is a solid state laser that uses a flash lamp as an energy primer and a neodinium glass rod as the lasing medium. It works much like the ruby laser described in How Lasers Work. It requires 12 volts of DC power, which comes from AA batteries. It emits infrared light of 1.06 micrometer wavelength in short 3 joule pulses for a total of 500 joules of energy. The beam is focused with a collimating lens, which straightens the beams and makes them parallel. It's classified as a hazardous class IV laser, and the company claims that it's capable of burning holes in most materials (infrared lasers can do these things). So you might not want to pick one up for your 9-year-old's birthday.
To learn more about laser weapons, take a look at the links on the next page.
Tuesday, April 8, 2008
Robots seen doing work of 3.5 million in Japan | Oddly Enough | Reuters [Technology]
Robots seen doing work of 3.5 million in Japan
TOKYO (Reuters) - Robots could fill the jobs of 3.5 million people in graying Japan by 2025, a thinktank says, helping to avert worker shortages as the country's population shrinks.
Japan faces a 16 percent slide in the size of its workforce by 2030 while the number of elderly will mushroom, the government estimates, raising worries about who will do the work in a country unused to, and unwilling to contemplate, large-scale immigration.
The thinktank, the Machine Industry Memorial Foundation, says robots could help fill the gaps, ranging from microsized capsules that detect lesions to high-tech vacuum cleaners.
Rather than each robot replacing one person, the foundation said in a report that robots could make time for people to focus on more important things.
Japan could save 2.1 trillion yen ($21 billion) of elderly insurance payments in 2025 by using robots that monitor the health of older people, so they don't have to rely on human nursing care, the foundation said in its report.
Caregivers would save more than an hour a day if robots helped look after children, older people and did some housework, it added. Robotic duties could include reading books out loud or helping bathe the elderly.
"Seniors are pushing back their retirement until they are 65 years old, day care centers are being built so that more women can work during the day, and there is a move to increase the quota of foreign laborers. But none of these can beat the shrinking workforce," said Takao Kobayashi, who worked on the study.
"Robots are important because they could help in some ways to alleviate such shortage of the labor force."
The current fertility rate is 1.3 babies per woman, far below the level needed to maintain the population, while the government estimates that 40 percent of the population will be over 65 by 2055, raising concerns about who will look after the graying population.
Kobayashi said changes was still needed for robots to make a big impact on the workforce.
"There's the expensive price tag, the functions of the robots still need to improve, and then there are the mindsets of people," he said.
"People need to have the will to use the robots."
(Reporting by Yoko Kubota; Editing by Rodney Joyce)
Thursday, March 27, 2008
Tactile Keys for the iPhone At Last! [Technology]
I always had my reservations about the touch screen because of this very thing...Tactile Keys for the iPhone At Last!
~P~
Tactile Keys for the iPhone At Last!
Perhaps the one complaint that both detractors and proponents of the iPhone voice, is how difficult the device can be to type on sans any physical keys. Using the touch screen to type out any serious message takes some time to get used to. For instance, I found that my fingers had a propensity to hit more than one key at a time while trying to type on the iPhone. The problem was even worse than on my Treo.
The solution for people like me may have arrived. Introducing My Touch Keys! My Touch Keys is a plastic shield that attaches to the front of your iPhone using static cling. The iPhone's touch screen QWERTY keyboard keys are then outlined in plastic "dimples" - allowing you to feel exactly where your fingers should be.
My Touch Keys attaches through static cling, this is good and allows for two things, the first being that the glass surface of your iPhone remains un-scarred by sticky adhesives nor is it scratched by physical plastic gripping the phone; the second is that My Touch Keys are completely transparent. How transparent you ask? Transparent enough for the company to claim that they won't interfere with your movie watching experience should you flip the phone and watch a movie in wide screen with the My Touch Keys guard still attached.
So will My Touch Keys improve your typing on the iPhone? Well, for only $7.99 for two, you don't have much to lose by giving them a shot.
Via OhGizmo!
Ben Arnold
Technocentric
InventorSpot.com