Showing posts with label Power Semiconductors. Show all posts
Showing posts with label Power Semiconductors. Show all posts

Tuesday, April 05, 2011

Texas Instruments Is Buying National Semiconductor

Long time power house in the analog semiconductor area National Semiconductor is being bought by Texas Instruments.

Texas Instruments has announced that it intends to acquire National Semiconductor for $25 per share, or about an 80 percent premium over the $14 and change at which NYSE:NSM was trading at earlier in the day. The combined entity will be a major force in the analog semiconductor market, as TI will add NatSemi's analog business to its own, which was already considerable.

"Our two companies complement each other very well," said Don Macleod, National's chief executive officer, in a statement. "TI has much greater scale in the marketplace, with its larger portfolio of products and its large global sales force. This provides a platform to enhance National's strong and highly profitable analog capability, power management in particular, leading to meaningful growth."
It will be sad to see National go. I have been using their analog power parts such as the LM7805 5 volt regulator since the early 70s. But TI has always had a much better sales and marketing force.

I remember back in '67 when I was first looking into logic ICs (TTL and equivalents) at Raytheon Computer that were destined for an FAA computer. Sylvania had the best parts (SUHL) and TI had the best price. We slowed the computer down 20% and bought car loads of the TI parts.

Saturday, February 14, 2009

China And Russia Hooking Up

Yes. It is true. They are hooking up their electrical grids.

AREVA‘s Transmission and Distribution (T&D) division has signed a multi-million Euro contract to supply H400 High-Voltage Direct Current (HVDC) thyristor valves to interconnect the Chinese and Russian power grids.

The contract, the first of its kind awarded to AREVA T&D in China, is signed with the Xuji Group Corporation and China Electric Power Research Institute for the end customer, State Grid of China Corporation.

The valves will be installed in the Sino-Russian converter station located in China’s Heilongjiang province. To overcome the countries’ grid incompatibility, the station will convert alternate current into direct current and inversely.

AREVA T&D was awarded the contract thanks to its new high profile generation H400 Valve technology developed in collaboration with the China Electric Power Research Institute and the Xuji Group Corporation. The company’s ability to meet both China’s localization policy requirements and a tight installation schedule were also key factors in this success. The installation of the valves will begin in 2008.

HVDC technology is used to connect power networks and to transmit large amounts of electricity over long distances with minimal losses. With plans to transmit more than 130 GW of electricity over the next five to ten years, China’s needs in HVDC are booming. This success will strengthen AREVA T&D’s position on the domestic HVDC market and demonstrates the company’s ability to meet the country’s needs.
I know. It sounds like a press release for the H400 valve. In fact it is a press release for the H400 valve.

It does reinforce my point about new long distance transmission of power in the US. DC is the way to go.

Here is another bit from the company making that same point:
Ultra High Voltage Direct Current (UHVDC) transmission, with voltages of up to 800 kV, is the choice being made by many energy managers around the world for the future network developments.

With generation sites becoming farther and farther away from load centers, HVDC is particularly economical for transmission distances greater than 700 km.

HVDC can transmit three times as much power per tower compared with conventional AC. This means a substantial reduction in land costs and often no new right-of-way (ROW) access permits, particularly difficult in densely populated regions.

UHVDC transmission maintains all the technical advantages associated with HVDC transmission: back-to-back or point-to-point connections for synchronized or asynchronous networks, regardless of voltage or frequency. Fully controllable, all HVDC systems prevent faults from propagating and reduce overall associated transmission losses.
So why isn't DC being pushed in the USA? My guess is that there are no HVDC equipment companies in the US who own enough politicians.

Cross Posted at Classical Values

Why hasn't Polywell Fusion been funded by the Obama administration?
Bussard's IEC Fusion Technology (Polywell Fusion) Explained

Wednesday, January 28, 2009

A New Kind Of Transistor

There is some very promising research that promises the development of a new kind of transistor.

A team of Duke University chemists has modified a method for growing long, straight, numerous and well-aligned carbon cylinders only a few atoms thick that paves the way for manufacturing reliable electronic nanocircuits.

The team had already described a method last April for growing the crystals, but the modification is targeted at making a process specifically for producing semiconducting versions of the single-walled carbon nanotubes, sometimes called "buckytubes" because their ends, when closed, take the form of soccer ball-shaped carbon-60 molecules known as buckminsterfullerines, or "buckyballs".

The effort is being led by Jie Liu, Duke's Jerry G. and Patricia Crawford Hubbard professor of chemistry.

"I think it's the holy grail for the field," Liu said. "Every piece is now there, including the control of location, orientation and electronic properties all together. We are positioned to make large numbers of electronic devices such as high-current field-effect transistors and sensors."

A report on their achievement, co-authored by Liu and a team of collaborators from his Duke laboratory and Peking University in China, has just been published in the research journal Nano Letters.
What does this portend? Well quite a few things actually. Carbon Nano Tubes (CNTs) are five times as conductive as copper, electron mobility is about 70 times that of silicon and it should be able to withstand much higher temperatures than silicon without losing its semiconducting properties. Not only that, the material is abundant. So once the manufacturing process is worked out it will mean high power, low loss, extremely high speed transistors.

How soon you ask? First off not all the bugs have been worked out in the laboratory models.
That earlier JACS report described how the researchers coaxed nanotubes to form in long, parallel paths that will not cross each other to impede potential electronic performance. Their method grows the nanotubes on a template made of a continuous and unbroken kind of single quartz crystal used in electronic applications. Copper is also used as a growth promoter.

But that method left one unresolved issue blocking the use of such nanotubes as electronic components. Only some of the resulting nanotubes acted electronically as semiconductors. Others were the electronic equivalent of metals. To work in transistors, the nanotubes must all be semiconducting, Liu said.

The researchers now say they have achieved virtually all-semiconductor growth conditions by making one modification.

In their earlier work they had used the alcohol ethanol in the feeder gas to provide carbon atoms as building blocks for the growing nanotubes. In the new work, they describe how they tried various ratios of two alcohols—ethanol and methanol—combined with two other gases they also used previously—argon and hydrogen.

"We found that by using the right combination of the two alcohols with the argon and hydrogen we could grow exclusively semiconducting nanotubes," Liu said. "It was like operating a tuning knob." The inert argon gas was used to provide a steady feed of the ethanol and methanol, with hydrogen to keep the copper catalyst from oxidizing.

After making the nanotubes by chemical vapor deposition in a small furnace set to a temperature of 900°C, the researchers assembled some of them into field-effect transistors to test their electronic properties.

"We have estimated from these measurements that the samples consisted of 95 to 98 percent semiconducting nanotubes," the researchers reported.
Now that is probably good enough for first generation transistors in some applications if those kind of numbers can be achieved in production. However what you want for general use is 99.9% or 99.99% semiconducting CNTs. The more nines the better. So how soon? I'd say pilot production in five years, and full scale production (10s of millions of devices) in about eight years. Fortunately it builds on the base of silicon semiconductor production so the equipment needed is likely to be very similar to what is already in use.

The best power conversion equipment we have using silicon has efficiencies topping out at around 95% with the more typical units running at 85% to 90% efficiency. With these new devices we could reach 99% or better. They could also mean 20 times faster computers that use 1/10th as much power as current devices. Considering that we already have chips on the market that deliver 25,000 MIPS for 360 milliwatts that would be something. It would be roughly equivalent to 1,000 Cray 1s in your pocket that could be powered from an AA cell for a month. Cell phones could run for weeks on a charge. Laptops that could run for many days. Faster please.

Cross Posted at Classical Values

Saturday, May 17, 2008

Zilog Gets An Offer

Those of you in at the start of the personal computer revolution will remember Zilog for its Intel 8080 clone, the Z-80, that was a much better performer than the Intel chip. The Intel 8080 and the Zilog Z-80 were both designed by Federico Fagin. The Z-80 didn't require a special clock chip and it had a lot of neat add on instructions that made writing code easier and made the code perform better and take up less space in memory. It also used fewer clock cycles for some instructions. I upgraded my IMSAI 8080 to a Z-80 processor as soon as I could.

The Z-80 was also the heart of the Sinclair ZX-81 a really cute little computer with a very creative hardware design. As I recall memory address lines were used not just for memory access but also to scan the keyboard. I had one of those and had lots of fun with it. It used a TV set as a monitor.

Zilog is now entertaining a buy out offer from power semiconductor maker IXYS.

MILPITAS, Calif. (AP) - Semiconductor maker Ixys Corp. on Friday made an unsolicited offer to buy Zilog Inc. for $4.50 per share, a 9 percent premium over Zilog stock's $4.14 closing price.

Zilog, also a semiconductor maker, in February said a $4.50 per share offer by remote-control maker Universal Electronics Inc. was too low. Zilog's stock closed at $3.62 the day before that offer.

Zilog said it received the offer and is reviewing it.

Last week, San Jose, Calif.-based Zilog said it narrowed its net loss to $1.9 million, or 11 cents per share, from $3.6 million, or 21 cents per share. Revenue fell 13 percent to $16.7 million.
Compare Zilog's revenue to Intel's billions. They were once a contender.

IXYS makes some very good power semiconductors. With those kinds of transistors the heart of hybrid autos and plug in hybrids business must be very good. The control of power is a very important part of electronics these days. It is the area of aerospace I have the most experience with.