April 8, 2013

The 1st Cellphone - Motorola DynaTAC 8000X

Motorola DynaTAC 8000X -- 1983 


The DynaTAC was the first commercially available cellphone and the culmination of all the research engineer Martin Cooper had done since joining Motorola in 1954.

The phone resembled those the military used in the field. The svelte handset weighed 28 ounces and was 10 inches tall, not including the antenna nearly as long as the phone. It wasn't exactly something you could shove in a pocket or purse. Still, it wasn't attached to a car and you could walk around with it, so there was that. 

Such mobility wasn't cheap. The DynaTAC would dig a $4,000 hole into your bank account. But that didn't stop early adopters from diving into the swanky world of mobile calling. The phone had a cameo alongside Gordon Gekko in Wall Street and with über-preppy Zack Morris on the teen drama Saved By the Bell.

Photo: Motorola

April 3, 2013

The Facebook-Phone: Leaked Photos

9to5Google has released what it claims are leaked images of the new Facebook Home user interface that is rumored to be unveiled tomorrow morning at the social networking giant’s headquarters. As rumored, the phone is said to be manufactured by HTC, but it will apparently be named “First" rather than the previously reported "Myst."
The leaks show a sleek, clean-looking interface that seems to borrow some of its style from stock Android rather than HTC Sense’s UI. As 9to5Google reports, Facebook Home features a “minimal aesthetic” with a heavy focus on photography—likely because of Facebook’s photo-friendly integration with features like cover photos and customizable photo albums. 

Be sure to follow Ars Technica's liveblog tomorrow morning for the full scoop.


Photos: 9to5Google
Story: 

April 1, 2013

T-Mobile's New Strategy: Pros and Cons


T-Mobile USA

T-Mobile USA has revamped its pricing plans, the latest move in an industry that's still experimenting feverishly with various ways of luring customers and getting current ones to pay as much as possible. Here's how T-Mobile's gambit compares.

The most significant change is that T-Mobile is breaking the cost of the phone away from the monthly service fee. Instead, the company will sell the phone on an installment. It's making a big deal out of the fact that it will no longer have two-year service contracts, but it's replacing them with two-year financing contracts. To buy an iPhone 5 from T-Mobile, you'll be putting $100 down and then paying $20 per month for two years to pay off the phone. That's on top of service fees that start at $50 per month for unlimited talk, text and 500 megabytes of data. An additional $10 per month gives you another 2 gigabytes of data. Add $20 instead, and you get unlimited data. If you leave T-Mobile within the two-year period, you'll still be charged $20 a month until the two-year contract runs out.

Pros

T-Mobile's plans are generally cheaper than the competition. If you've paid off your phone, your monthly bill declines. You can pay off the phone early if you want, with no penalty. You can also buy "unlocked" phones, or bring them over from AT&T, and get a good deal on monthly service. T-Mobile's "4G" service is relatively fast — at least, faster than Sprint, in places where Sprint doesn't have LTE. T-Mobile also offers unlimited data service, for peace of mind.

Cons

T-Mobile's data network coverage is poor in rural areas. It's only now rolling out an "LTE" network, and it doesn't have access to the low frequencies where Verizon Wireless and AT&T run their wall-penetrating LTE networks. There's no option to share a data plan among many devices, but T-Mobile makes it relatively inexpensive to add a line to the plan: $10, which comes with 500 megabytes of data usage.

Bottom Line

The price over two years for a 16-gigabyte iPhone 5 with unlimited calling, unlimited texting and 2.5 gigabytes of data usage per month, excluding taxes, is $2,020.


AP | By PETER SVENSSON

March 27, 2013

Top 8 Laser Printer Care and Maintenance Tips


Laser printing is a digital printing process that rapidly produces high quality text and graphics on plain paper. As with digital photocopiers and multifunction printers (MFPs), laser printers employ a xerographic printing process, but differ from analog photocopiers in that the image is produced by the direct scanning of a laser beam across the printer's photo-receptor.

Photoreceptor

Most consumer and small business laser printers use a toner cartridge that combines the photo-receptor (sometimes called "photo conductor unit" or "imaging drum") with the toner supply bin, the waste toner hopper, and various wiper blades. When the toner supply is consumed, replacing the toner cartridge automatically replaces the imaging drum, waste toner hopper, and wiper blades. 

Wiper blades can fail even in new, unused toners that have been stored for a few years; a failed wiper blade will manifest itself as ghosting and/or full page shading. 

Print Page Tracking

Some laser printers maintain a page count of the number of pages printed since last maintenance. On these models, a reminder message will appear informing the user it is nearing time to replace standard maintenance parts. On other models, no page count is kept or no reminder is displayed, so the user must keep track of pages printed manually or watch for warning signs like paper feed problems and print defects. 

Laser printer parts and components.

Calibration Cycles

Some color laser printers, notably some Lexmark models run "calibration" cycles even when no printing has occurred for weeks. This can waste a significant amount of toner from each reservoir, in addition to consuming electricity. This has a significant impact on printing economy, especially in low-volume applications. On some models these calibration cycles can be disabled via a menu choice, for others the printer must be unplugged to avoid this waste. Printers that have this issue have a replaceable "waste toner bin", which is another periodic operating expense. 

Life Expectancy Charts

Manufacturers usually provide life expectancy charts for common printer parts and consumables. Manufacturers rate life expectancy for their printer parts in terms of "expected page-production life" rather than in units of time. 

Business Class Versus Personal Laser Printers

Consumables and maintenance parts for business-class printers will generally be rated for a higher page-production expectancy than parts for personal printers. In particular, toner cartridges and fusers usually have a higher page production expectancy in business-class printers than personal-class printers. Color laser printers can require more maintenance and parts replacement than monochrome laser printers since they contain more imaging components. 

Roller assembly.

Rollers and Assemblies

For rollers and assemblies involved in the paper pickup path and paper feed path, typical maintenance is to vacuum toner and dust from the mechanisms, and replace, clean, or restore the rubber paper-handling rollers. Most pickup, feed, and separation rollers have a rubber coating which eventually suffers wear and becomes covered with slippery paper dust. In cases where replacement rollers are discontinued or unavailable, rubber rollers can be cleaned safely with a damp lint-free rag. Commercial chemical solutions are also available which may help temporarily restore the traction of the rubber. 

Fusing Assembly, aka Fuser

The fusing assembly (also called a "fuser") is generally considered a replaceable consumable part on laser printers. The fusing assembly is responsible for melting and bonding the toner to the paper. There are many possible defects for fusing assemblies: defects include worn plastic drive gears, electronic failure of heating components, torn fixing film sleeves, worn pressure rollers, toner buildup on heating rollers and pressure rollers, worn or scratched pressure rollers, and damaged paper sensors. 

Laser Printer Preventive Maintenance Kits

Some manufacturers and third-party parts suppliers offer preventative maintenance kits specific to each printer model; such kits generally include a fuser and may also include pickup rollers, feed rollers, transfer rollers, charge rollers, and separation pads. These same sources may offer a trade-in credit for the return of failed fuser assemblies, which they later rebuild for resale.

Sources Wikipedia
 

March 25, 2013

Future Smartphone Screens May Be Made of Sapphire

Manufactured Sapphire Disk.

Manufactured sapphire—a material that’s used as transparent armor on military vehicles—could become cheap enough to replace the glass display covers on mobile phones. That could mean smartphone screens that don’t crack when you drop them and can’t be scratched with keys, or even by a concrete sidewalk. 

Sapphire, a crystalline form of aluminum oxide, probably won’t ever be as cheap as Gorilla Glass, the durable material from Corning that’s used to make screens on iPhones and other smartphones. A Gorilla Glass display costs less than $3, while a sapphire display would cost about $30. But that could fall below $20 in a couple of years thanks to increased competition and improving technology, says Eric Virey, an analyst for the market research firm Yole Développement. And since sapphire performs better than glass, that price could make it cheap enough to compete, he says. 

Sapphire is harder than any other natural material except diamond; by some measures, it’s three times stronger than Gorilla Glass, and it is also about three times more scratch resistant. That’s why Apple uses it now to protect the camera on its iPhone 5. Virey says that all major mobile-phone makers are considering using sapphire to replace glass. “I’m convinced that some will start testing the water and release some high-end smartphones using sapphire in 2013,” he says. 

An alternative to using pure sapphire is to laminate an ultra-thin layer of sapphire with another, cheaper transparent material, maintaining much of the performance advantage of sapphire at a cost comparable to that of the glass typical in mobile-phone displays. 

For this purpose, GT Advanced Technologies, based in Nashua, New Hampshire, is developing a method for making sapphire sheets thinner than a human hair—much thinner than the nearly millimeter-thick glass used now on mobile phones.

GT is also cutting the cost of sapphire manufacturing by following the strategy that it used over the last several years to reduce the cost of making crystalline silicon for solar cells. 


To make the sapphire, aluminum oxide is melted down in a specialized furnace and then allowed to slowly cool to form a large crystal. That crystal is then cut with a diamond-coated wire saw. GT designs its furnaces so that they can be cheaply upgraded to make ever larger crystals as the technology improves, allowing customers to increase production without buying new equipment. 

GT is more optimistic about prices than Virey, estimating that sapphire displays might cost only three to four times as much as those made from Gorilla Glass. People at the company say prices will fall further as GT improves its furnaces, and as the manufacturers that buy those furnaces streamline their operations. 

Several other companies with proprietary technologies are also lowering the cost of sapphire, including Rubicon Technologies in the United States, Monocrystal in Russia, and Sapphire Technology in South Korea. If costs can get low enough, these manufacturers may have a large market waiting for them. But they’ll have to continue to contend with the incumbent technologies—Gorilla Glass and similar materials offered by other manufacturers. This year Corning introduced a new version of the material that it says is about twice as resistant to scratches. It could be in products later this year.

By Kevin Bullis

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