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

Sunday, April 5, 2009

Is a Hydrogen Powered House Really Green?

by Lloyd Alter, Toronto on 04. 3.09

hydrogen house image


Ron Monahan is trying build an energy efficient subdivision in Aiken, South Carolina, and a few weeks ago announced that he was going to build between one and four Net Zero houses, (homes create as much energy as they use over the course of the year) in the development. However, when I looked at the site plan and the size of the houses with their two car snouts, I really wondered what was the point, given the amount of energy it was going to take just to get there.

So he has cranked up the volume to get a little more attention: He is going to power one of them with hydrogen.

chukker subdivision plan image

The local news video gets it all hilariously wrong, calling it "Greenest Subdivision In America" and calling it the first hydrogen powered house (it's not) and saying that the house is powered by water (it's not) but the facts are more interesting. According to the press release:

Photovoltaic cells on the roofs of the homes – now being designed in much more efficient and attractive models – will run electricity through an electrolizer – a scientific bucket of water – which easily separates the oxygen from the hydrogen. Oxygen and water vapor are the only emissions and are beneficially released to the atmosphere. The hydrogen is captured in the hydrogen fuel cell to run the house, along with the solar power.

There is only one other house known in the United States that uses this revolutionary, simple and very safe system to power a home, and that was done by an enterprising engineer who retrofitted his north-eastern farm home. The Ridge at Chukker Creek will be the first housing development anywhere in the world to offer this option for sale to people who care deeply about their environment and want to live in a home that generates all of its own power – naturally and for free – without having to build it themselves.

stizki tank farm photo
Scientific American

Right. Scientific American covered that enterprising engineer, Mike Strizki, and his house last year. This is what his back yard looks like as he stores the hydrogen. This is not how they are storing the gas in this particular house:

"The use of hydrogen to store energy in residential applications at the Ridge is certainly unique,” said Dr Greenway. “And the highly-efficient system design using metal hydride hydrogen storage is one-of-a-kind. This truly demonstrates Ron Monahan's vision. Greenway Energy is excited to design and integrate this system."

stizki control system photo

This is what his controls look like. It is a wonderful science project and Mike Strzki did an admirable job. No doubt Dr. Scott Greenway of Greenway Engineering will be just as admirable and put into a smaller package.

But people who "deeply about their environment" would realize that this is not a solution to our problems, to drive your Prius to a house with hundreds of thousands of dollars (they say it is a fifty thousand dollar option and I don't believe it) of technology stuck on it just so you can call it Net Zero. This is what you do in space stations, not houses. We need simple, replicable and affordable solutions.

Mr. Monahan was much closer to the mark in the earlier press release, where they wrote:

Some of the strategies are quite simple, such as siting a home the way people did for centuries to take advantage of the angle of the sun, trees for shading and the prevailing breezes. Others are high tech, such as blowing in foam insulation under the roof, walls and the floor, [and] using an EnergyStar door fan test to find and seal every air leak.

Friday, March 20, 2009

Qatar Sprouts a Towering Cactus Skyscraper

Qatar Sprouts a Towering Cactus Skyscraper

by Bridgette Steffen

cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

The Minister of Municipal Affairs & Agriculture (MMAA) in Qatar is getting a brand new office building that takes the form of a towering cactus. Designed by Bangkok-based Aesthetics Architects, the modern office and adjoining botanical dome take cues from cacti and the way that they successfully survive in hot, dry environments.

cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

Qatar is fairly barren, covered by sand, and receives and average annual rainfall of 3.2 inches. Since Qatar has the highest GDP in the world, they can afford to construct spectacular buildings that can be very efficient in the hot desert environment. Aesthetics Architects GO Group decided to model the MMA’s new office upon the cactus, taking inspiration from the way these plants deal with the scorching desert climate.

cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

An excellent example of desert architecture, MMA’s new building is designed be very energy efficient and utilizes sun shades on its windows. Depending on the intensity of the sun during the day, the sun shades can open or close to keep out the heat when it is too much. This is similar to how a cactus chooses to perform transpiration at night rather during the day in order to retain water - another great example of biomimicry. The botanic dome at the base of the tower will house a botanical garden. Hopefully it will include an edible garden and a living machine as well.


cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

cactus skyscraper, desert architecture, sustainable architecture, green building, green design, quatar cactus building, aesthetics architects go group, minister of municipal affairs and agriculture, sun shades, biomimicry

Thursday, March 12, 2009

Easy To Install Solar Panels Are City Friendly and Affordable

by Christine Lepisto, Berlin on 03.11.09

veranda solar panels can be installed anywhere photo

Solar start-up Veranda Solar wants to change the world of solar power the way Apple changed computers. Veranda got a big head-start on financing the start-up when the company was awarded 100,000€ as runner-up in the PICNIC Green Challenge, funded by the Dutch postcode lottery. The solar panels Veranda uses are nothing special. The prototypes were developed in cooperation with Stanford University and SunPower Corp. No new photovoltaic advances, no biomimicry.

But these solar panels are offering something new to the market. Check the photo over the fold to see what makes Veranda solar special and decide for yourself if they have what it takes for success.

veranda solar panels installed out of a window photo
Image via: Veranda Photos

Veranda Solar panels are plug-and-play. They can be installed in hours, with just a screwdriver, and without expensive solar specialists. The ease of installation on balconies and hanging out of windows will appeal to sustainably-oriented city dwellers, although solar panels will certainly join clotheslines and television dishes in the architectural eyesore wars. But this is exactly the angle Veranda Solar will use to compete. Veranda intends to win the wars by selling -- in the words of Travis Bradford, president of solar-research firm Prometheus Institute: "sexy solar."


The solar panels can be flat-packed for efficient shipping and come with everything needed for operation. At $400 for a 60 to 70 watt ($600 for a panel with inverter and cables), the Veranda solar panels are affordable, or at least in line with the cost of many electronic toys that are enjoyed by the people in Veranda's target market, but not beating the market benchmark of $1 per watt. However, Veranda can appeal to lower income buyers with the expandability concept. Consumers can start with one panel, adding additional panels later simply by snapping them on. Veranda also plans to use financing models that promote the accessibility of the technology, such as leasing the panels through utility companies.

CEO Capra J’neva is quoted in Salon:

We interact with real people to create our products, so we are reducing market risk by understanding the real needs of people.

Saturday, March 7, 2009

餿水變黑金

台北 巧文

  廚餘不是廢棄物,它可以變成黑金,化作春泥更護花!劉力學先生是隱居在東北角海岸的加拿大人,為了解決社區裡令人頭大的餿水問題,這個台灣女婿,基於對這片土地的熱愛,運用他的科學精神與知識,潛心跟著大自然學習,樂當下一波農業革命的先驅。

廚餘堆肥吸水強
 防旱防澇淨水質

   民國九十年九月納莉颱風侵襲台灣,挾帶豐沛的雨量,橫掃全省,降雨量創台灣四百年來的新高。住在白沙灣附近德茂村的劉力學,整夜輾轉難眠,外面傾盆大 雨,積水及胸,戶外露天堆放的一百噸廚餘堆肥,恐怕已被大水沖散殆盡,多時努力的成果,或許化為烏有。天剛亮,他立即出門查看,出乎意料地,堆肥完好無 恙!他扒開表面檢查內部,有一個更令人驚訝的發現,只有外面三十公分左右是溼的,堆肥的吸水性竟然這麼強!

  這個結果馬 上激發劉力學的探究欲望,隨即著手做實驗,找來容器在底部打洞,裝入兩公斤的堆肥,然後不斷加水,一直加到超過六公升,才開始滴水。之後,他又做了第二個 實驗,將一公斤的堆肥混合一公斤的紅土,此時需加到十二公升以上才開始滴水,也就是堆肥混入等量的紅土之後,吸水量增加四倍。

   這個實驗結果讓劉力學非常振奮,這表示廚餘堆肥除了可以供給農作物豐富的天然養分外,在環保上還有非凡的價值。混入紅土的堆肥,擁有如此高的的吸水性, 可以涵養水分;苗栗以北山區多為紅土,若能在水源區使用廚餘堆肥,既可防治旱災及水災,更能預防土石流的爆發,而且它還具有過濾、淨化水質的功能,我們將 可以重新擁有清淨的水源。熱愛大自然的劉力學,對環保格外關切,主動將實驗成果和學術單位及政府機關分享,希望這個好處由公家推廣,期待台灣在不久的將 來,回復福爾摩沙的美譽。

光鮮亮麗科技人
 樂當環保收ㄆㄨㄣ郎

   劉力學是遠從魁北克來的法裔加拿大人,一九六四年應輔仁大學之邀到台灣,預備在輔大成立工學院;一九六六年進入台大物理系就讀,成為台大第一位外籍學 生,就此與台灣結下不解之緣,落地生根。後來輔大工學院籌設喊停,但是他已深深愛上這個小島,決定留在台灣工作。此時他得知惠普有意在台灣成立分公司,便 積極爭取這個工作機會,如願成為惠普台灣分公司第一位負責人,也因此促成中文電腦的誕生。還有一點值得記上一筆,阿波羅十一號首度登陸月球,他也扮演了推 手的角色,幫助解決電腦方面的問題;退休前他的職務是神通電腦的副總裁。

  這樣一位科技背景的外國人,怎麼會跟廚餘堆肥扯上關係呢?

   廚餘,台語稱為ㄆㄨㄣ,早期台灣到處看得到ㄆㄨㄣ桶,有人專門收集拿來養豬。它的酸臭味,讓人掩鼻而過,我們很難想像一個外國科技人會去收ㄆㄨㄣ!當初 劉力學是為了解決社區焚化爐內湯湯水水的問題,而開始動念頭想製作堆肥。家庭廚餘是台灣飲食習慣特有的產物,混入垃圾不僅無法完全燃燒,更會降低焚化爐的 壽命,在焚化過程,鹽和塑膠素材,也容易產生戴奧辛等有毒氣體,因此劉力學便在社區推動垃圾分類。資源垃圾可以交給環保單位,廚餘怎麼辦呢?只有製成堆肥 一途。

  劉力學是那種遇到問題就會去研究,想辦法解決,並且身體力行的人。他可不是說說就算,他輾轉向台大農化系吳三和 教授求救。吳教授告訴他,要有足夠量的ㄆㄨㄣ才可以,起碼要堆至一‧五公尺高約七噸的量。他二話不說,果真就開始收ㄆㄨㄣ。每天三點多起床,天色未亮就開 車到處收ㄆㄨㄣ,數年來從未打過退堂鼓,越做越起勁。從一個光鮮亮麗、乾乾淨淨的科技人,變成與髒臭的廚餘為伍的收ㄆㄨㄣ人,我們從他身上卻看不出這兩種 角色有任何衝突,不管做什麼事,他都樂在其中,研究廚餘堆肥也不例外,在他眼中,那可是價值不菲的「黑金」呢!

餿水並非垃圾物
 廚餘也能變黑金

   透過吳教授提供理論基礎,劉力學不斷嘗試,有問題立即回報討論。八十八年秋開始實驗,克服許多困難,雖然家人抱怨惡臭,但他從未氣餒。一個多月後,第一 堆廚餘堆肥成功誕生了。接下來他持續觀察研究,針對不同的狀況,找出最適宜的方法。通常收集來的廚餘,先讓它慢慢流出其中的液體,儲存起來,等堆肥溫度逐 漸升高,變得較為乾燥時再噴灑回去,保持濕度以利發酵。如果有異味就增加稻殼、木屑的量,總之,保持氮、碳比例為一比三十,依溫度、濕度調整,只要做對 了,就不會有臭味。同時他又把收集下來的液體加入糖漿做成液肥,幾乎是百分之百利用,毫不浪費。

  這個階段堆肥表面三、 四公分處,住滿各種肥肥胖胖的蛆,劉力學直接用手扒開給我們看,果真蠕動迅速,活力充沛,他說這是堆肥極佳的蛋白質來源。約三十天後不再流出汁液,蛆也不 再出現,這時要定期翻攪,讓氧氣進入幫助腐熟。一般大約一百天左右就完全腐熟,有的材質需要一百二十天或者再久一點。劉力學說:「不要勉強它,你要觀察, 順應大自然的規律。」腐熟完成的堆肥,不再有異味,而且發酵過程內部溫度高達攝氏七、八十度,很多有害物質如抗生素、農藥等物質也分解掉了。

   做好的堆肥,每公克中都有上億的微生物,富含有機質,適合農作物的生長,劉力學又開始新的嘗試,培植蔬菜。他帶著大夥參觀他的菜園,順手抓起一棵剛採收 的青江菜,鮮翠肥美,算算大概有二十幾公分長。他自豪地說:「看!沒有一個蟲蛀的洞!」秘訣是什麼?就是用他自製的廚餘堆肥!裡面有豐富的微生物,透由微 生物的媒介,根部能充分吸收堆肥中豐富的營養素,自然長得健康又能抵抗蟲害。

  菜之所以會被蟲吃,是因為本身不健康,抵 抗力低。以有機菜而言,會發生蟲害,若非根部受傷,讓植株不健康,就是開始老化,抵抗力逐漸下降,蟲兒就趁虛而入。舉個例子來說,青江菜收成期大約是二十 一天,白菜是十八、十九天,採收時間是關鍵點,如果看到菜上有洞還不快採收,隔天一半以上的菜都會被蟲吃了。

  雖然慣行 農法可以透過化學肥料提供大量的氮、磷、鉀,使蔬菜快快長大,然而只是「虛胖」,並沒有抵抗病蟲害的能力,所以必需使用農藥。有機耕作採用有機肥,讓蔬菜 健康的成長,不但沒有化學肥料導致土地鹽化、酸化、耗竭地力的後遺症,也沒有農藥污染的問題,既能維持自然生態,也可以讓耕耘者、食用者都得到安心與健 康。

利用太陽能發電
 觀察研究順自然

   三分多的菜園,一部分是溫室,種了青椒、白菜,還有各色各樣的葉菜類。打開溫室的門,一陣涼風襲來……「好涼啊!」抬頭看看門的上方,原來不是裝了冷 氣,而是裝了一台電風扇。一台電風扇就有這麼好的效果?沒錯!劉力學說,透過風扇往外抽,空氣就能對流,可以降溫十度呢!如果室外是攝氏三十五度,那麼裝 了電扇的溫室就只有二十五度,不但避免蔬菜「中暑」,更可以防止蚜蟲滋生!可是溫室位在靜僻的角落,電力要從哪兒來呢?視線沿著電線找去,原來是接到旁邊 一張朝天的板子上,是太陽能發電啊!真不愧是科技人出身,在場的人都忍不住嘆服!

  回憶兩年半前開始搭溫室、學種菜,劉 力學剛開始也是一點概念都沒有。由於對水、土壤種種的不了解,所以有不少失敗的經驗,直到最近一年半才上了軌道。以種番茄為例,最初一批結的果實都不能 吃,因為每個番茄裡都有蟲在蠕動,於是他找來幾個有機耕作的夥伴商量。其中吳三和教授語重心長地鼓勵他:「你不要放棄!你要繼續試,繼續澆你的水、繼續施 你的肥,會有動物來幫你的。」

  劉力學相信吳教授的專業,繼續做下去,沒想到後來真的出現果蠅的天敵,使果蠅漸漸減少。 靠著自然界自我平衡的力量,一個星期之後,二十幾顆番茄中,已經有五、六顆可以吃;一個月後,收成的五十顆裡有四十顆是好的;而一年後的現在,已經達到每 天收成一百顆的規模,其中往往只有一顆有蟲。

  剛收成的一籃番茄嫩紅可愛,劉力學努力找出一顆被蟲蛀了大洞的給大家看。 他說:「別看它被蟲吃成這樣,裡面可是好的!」在大家好奇的眼光下,劉力學拿起水果刀從蛀洞的地方切開,哇!裡面真的是好的,飽滿的果肉,既沒有爛也沒 臭,讓人相當驚訝,他解釋,這是因為健康的番茄在蟲咬過的地方生出了一層保護膜,所以不會爛進去。

  一般慣行農法種植的 番茄株,只能長到第三、四節就不能再往上長,可是劉力學的番茄卻可以長到第七節還繼續結果,可見其健康豐沛的生命力。他對這樣的進展感到自豪,說:「原來 植物生存在地球上的時間比我們人類久,當它們想活下去的時候,只要我們給它支持的力量(有機肥),它們會自己想辦法跟蟲害對抗,不必用農藥去殺蟲。」

哪裡沒有服務好
 打開心門細傾聽

  葉菜類、番茄的種植方法熟練了,以不斷學習、迎接新挑戰為樂的劉力學當然不會就此滿足,接下來他還要挑戰小黃瓜與豆類的栽種。去年他就種過小黃瓜了,不太成功,因為被蟲吃得厲害,長不好。今年我們來拜訪他時,新一批小黃瓜已經種了三個多星期,有的還是被蟲「叮」彎了。

   不過,這六十三歲的人還是很開朗地把小黃瓜栽種列為目前的新鮮課題。他每天都會觀察小黃瓜,看看哪一條彎起來。研究它的位置、水土、光線……再觀察附近 沒有被蟲兒「盯上」的小黃瓜,想想為什麼蟲不會吃它?對於被蟲吃的小黃瓜,「我到底是哪裡沒有服務好?」這種對植物溫柔、細心又有耐心的態度,令人不禁莞 爾卻又深深佩服。

  「讓大自然來教你,當它來臨的時候,別忘了打開你的門、你的窗,讓訊息通通都進來。你先全部接納,然 後不要看壞的,好的才把它收起來……我天天都可以看到大自然的奇蹟!」劉力學先生如是說。許多人都愛好大自然,可是要從一個叱癍電腦界的高科技份子,變成 以身體力行、收餿水、做堆肥、耕地種菜的農夫,劉力學生命格局所開展的仍是一般人無法想像的遼闊。一位參觀過他有機農園的人問他:「你的生命中曾經消沉低 潮嗎?」你猜他怎麼回答:「連一秒鐘都沒有過!」

  他每天清晨三點半起床,第一件事就是上網收信找資料,接下來展開忙碌 的一天:耕作、收廚餘、種種勞務、接待一批又一批來參訪的個人、團體,還要出門與機關單位分享廚餘堆肥的經驗……這不禁令人想起他的中文名字──力學,這 個名字取得真好!因為他的的確確是個「努力學習」的人,也是個快樂學習、又願意分享的人,好像永遠都保持赤子的活力與熱忱,對世間一切事物充滿好奇,即使 遇到困難或挫折,也能既認真又輕鬆、既踏實又不疲厭地學習跟超越,彷彿沒有一件事難得倒他!只要找出正確的方法、肯學、肯努力,沒有事情是不能成功的!

Friday, February 13, 2009

Mushroom Cities: Tropical Urban Rainforests

Mushroom Cities: Tropical Urban Rainforests
by Evelyn Lee

Tropicool@KL, Urban Cities, Vertical Parks, Sustainable Developments, Green Cities, Sustainable Utopia, green building, mushroom city, sustainable architecture

As cities stretch to accommodate the world’s skyrocketing population, loyal Inhabitat followers are surely familiar with skyscrapers and other vertical solutions to cope with urban densification. Still, an urban ecology modeled after the rainforest, complete with towering mushroom high-rises, is sure to raise some eyebrows. Designed for the heart of Sentul, Kuala Lumpur, TROPICOOL @ KL envisions a series of self-sustaining mushroom skyscrapers that incorporate natural energy sources, rainwater harvesting, and bio-mass support for off-the-grid living in a truly green environment.

Tropicool@KL, Urban Cities, Vertical Parks, Sustainable Developments, Green Cities, Sustainable Utopia, green building, mushroom city, sustainable architecture

A play upon the symbiotic nature of organisms thriving in the rainforest, TROPICOOL @ KL envisions a series of symbiotic energy-generating skyscrapers modeled after mushrooms. These tropical trees of life provide housing and recreational facilities while mimicking the five layers found within a tropical rainforest: the overstory, the canopy, the understory, the shrub layer, and the forest floor.

The structure’s circular tops are composed of miniature solar panels that provide a power source while mimicking the process of photosynthesis that takes place in rainforest canopies. Scattered throughout the branches of the mushroom tops are dwellings modeled after the Malaysian vernacular, offering living within the “rural fabric” of nature. Although definitely a work in progress, the idea of bringing a crazy rainforest canopy into the city is a novel one, and one worth considering as we chart the future of our urban environments.

+ Tropicool @ CL

Via Ecofriend

Tropicool@KL, Urban Cities, Vertical Parks, Sustainable Developments, Green Cities, Sustainable Utopia, green building, mushroom city, sustainable architecture

Thursday, January 29, 2009

Will A Hybrid Car Really Pay Off?

by Todd Kaho
06/10/2008

Hybrid Driving

It's true that hybrids cost more than regular vehicles. This prompts many to wonder if the extra cost for these high efficiency cars is worth it, and in fact if the difference can be offset over time by the cash saved from buying less fuel. While plenty of generalizations have been made on this in recent years, the concept of payback for a hybrid's incremental cost involves many variables and can only be answered on a case-by-case basis. Green Car's research shows that a realistic answer is not so simple and boiling this down into a simple chart is misleading ... so we're not going to do that. Instead, we're going to do this the right way and help you come up with a valid payback factor for the hybrid you may be considering.

You need to know that crunching the numbers involves some elements that are moving targets. For example, higher gasoline prices work to shorten the number of miles needed for payback. Changing government incentives mean that calculations made today may be different than the realities of calculations made a few months down the road. And let's not forget that the retail price of hybrids also appears to be in play as some dealers tack thousands of dollars onto a hybrid's suggested retail price because of high demand.

Still, the basic equation for determining a hybrid's breakeven point is straightforward. It begins by identifying the combined city/highway mpg number for a hybrid and that of its closest conventional counterpart. These mpg figures can be found online at www.fueleconomy.gov. Once armed with these numbers you can figure each vehicle's operating cost per mile based on current fuel prices.

Civic Hybrid

To do so, simply divide the price of fuel (such as $4.00 per gallon) by a vehicle's combined mpg. As an illustration, a Honda Civic Hybrid would pencil out as follows, assuming the above gas cost: $4.00 ÷ 42 mpg = $0.095 (9 ½ cents) per mile operating cost. If a Civic EX was used as a conventional comparison, this would pencil out at $4.00 ÷ 29 mpg = $0.14 (14 cents) per mile. So, the hybrid variant would cost $0.045 (4 ½ cents) less for each mile driven. Placed in these terms, it's enlightening that even at 42 mpg, you're burning nearly a buck's worth of gasoline every 10 miles you drive. Ouch.

Next, determine the manufacturer's suggested retail price (MSRP) for the models you're comparing. The Honda Civic Hybrid MSRP is $22,600 and the standard Civic EX is $18,710, with a differential of $3,890. To find the projected mileage to a breakeven point - where the increased fuel efficiency offsets the cost of a hybrid premium - the difference in price between the hybrid model and an identical conventionally powered model is divided by the savings per mile. In the case of the Honda Civic, this figures out this way: $3,890 (cost difference) ÷ $0.045 (4 ½ cents per mile savings) = 86,444 miles. So, at least in theory, the extra cost of a Honda Civic hybrid in this scenario would be offset in just over 86,000 miles of driving if gas prices are $4.00 a gallon.

Of course, federal incentives exist for many hybrid models and this can make a big difference in payback calculations. The Civic Hybrid is currently eligible for a federal tax credit of $1,050, which changes the cost differential between comparative models and results in a payback mileage factor of 63,111 miles if purchased now. However, tax credits are phased out according to specific criteria and disappear when an automaker sells 60,000 hybrids. For example, the Honda tax credit is reduced to $525 on July 1, 2008 and goes away completely on January 1, 2009. The substantial $3,150 tax credit made available for Toyota's Prius when the federal incentive program began has now gone away completely for this model, and in fact all Toyota/Lexus hybrids, because of this automaker's successful hybrid sales. Current information on available credits for specific hybrid models can be found at http://www.fueleconomy.gov/Feg/tax_hybrid.shtml.

These fundamental calculations can be used to determine the theoretical payback for any hybrid model. If the basics are what you're looking for then you're done here. But there are more 'wild card' factors to consider, so if you're inclined to explore how other influences can weigh in, then read on.

BEYOND THE BASICS
If all this sounds simple, rest assured it's not. Finding direct hybrid/gasoline model comparisons can be tricky since many of the features that come standard on hybrid models may not be offered on their gasoline powered counterparts. Auto manufacturers often sweeten the deal on hybrids with additional content to soften a hybrid's higher price. These extra features cost the manufacturer much less than the added retail value they bring to the consumer, so this content serves to take some of the sting out of the additional money being paid for expensive hybrid technology.

Hybrid Camry

The challenge in identifying a direct hybrid comparison is illustrated by the Toyota Camry. When you add in the engine options and trim levels, Toyota lists 11 different Camry styles and none have the exact mix of options and components as the Camry Hybrid. Also, while a singular example, it should also be noted that Toyota's Prius hybrid has no direct basis for comparison since that body style is offered only as a hybrid.

Still other factors cloud the issue. Driving habits present a significant wild card in this payback equation. Fuel economy can easily differ by 5 mpg or more on high fuel economy vehicles with differences in driving style. Drive with fuel economy in mind and you may well cut the miles to achieving breakeven in half.

Other incentives that influence breakeven are not so obvious, like the ability for solo drivers to use high occupancy vehicle (carpool) lanes in some states. While this incentive can save hundreds of hours of behind-the-wheel time in heavily congested cities over the course of a year - a real quality of life advantage - it also offers tangible financial benefits since cutting commuting time saves fuel, which also saves cash. A case could certainly be made for factoring the dollar value of fuel saved into the payback equation. But again, that's a wild card that must be calculated on a case-by-case basis. Plus, those counting on this must keep in mind that the HOV benefit could go away for new hybrid purchases once quotas are reached, as has happened now in California.

Hybrid Display

One major consideration when shopping for a new hybrid is the length of time you plan to keep the vehicle. If you're a short-term buyer, then the math to breakeven may seem impossible to achieve. The big variable here is the resale or residual value when you sell the car. A hybrid will likely retain much of the original premium you paid due to high demand, particularly if you sell it or trade it in after only a few years. So, that $3,000 or $4,000 premium you paid for a hybrid could still add $2,000 or more to the car's value used, meaning you may only need to save $1,000 or so in gas - or consume 250 gallons at $4 per gallon - to hit breakeven.

Finally, there's the subject of battery replacement cost that could (or should) be factored into the equation. While hybrids are new enough so actual battery replacement costs are generally unknown, it's projected that a new battery pack will likely fall in the $2,000 or so range when aging hybrids get to the point where replacement is needed.

When will a hybrid pay for itself? We like to think the day you drive it off the lot. Being an early adopter of environmentally positive technology, reducing oil dependency, and creating less pollution have their own rewards. The substantial savings realized at the pump every time a new hybrid is filled up also provides real and immediate financial gain. With all this and rising gas prices that are already driving up the resale value of efficient smaller cars - a trend that will surely benefit hybrid values as well - the answer to those questioning whether a hybrid will pay off seems to be getting clearer every day.

Monday, September 29, 2008

Common LED Types and Packages

LEDs come in two basic categories:

Low power LEDs
commonly come in 5 mm size, although they are also available in 3 mm and 8 mm sizes. These are fractional wattage devices, typically 0.1 watt, operate at low current (~20 milliamps) and low voltage (3.2 volts DC), and produce a small amount of light, perhaps 2 to 4 lumens.

High power LEDs come in 1-3 watt packages. They are driven at much higher current, typically 350, 700, or 1000 mA, and—with current technology—can produce 40-80 lumens per 1-watt package.

High power LEDs come in many different shapes and sizes. Some current products from the leading LED manufacturers are shown below.


Structure of a 5mm type LED.
Source: Lumileds™

Luxeon® K2 Emitter / Lumileds
Structure of a high-brightness LED.
Source: Lumileds™



Cree XLamp 7090
Cree® XLamp 7090
Luxeon K2 Emitter
Philips Lumileds
Luxeon® K2 Emitter
Osram® OSTAR Lighting
Osram® OSTAR Lighting

Luminous Efficacy

Energy efficiency of light sources is typically measured in lumens per watt (lm/W), meaning the amount of light produced for each watt of electricity consumed by the light source. This is known as luminous efficacy. DOE's long-term research and development goal calls for white-light LEDs producing 160 lm/W in cost-effective, market-ready systems by 2025. In the meantime, how does the luminous efficacy of today's white LEDs compare to traditional light sources? Currently, the most efficacious white LEDs can perform similarly to fluorescent lamps. However, there are several important caveats, as explained below.

Color Quality
The most efficacious LEDs have very high correlated color temperatures (CCTs), often above 5000K, producing a “cold” bluish light. However, warm white LEDs (2600K to 3500K) have improved significantly, now approaching the efficacy of CFLs. In addition to warmer appearance, LED color rendering is also improving: leading warm white LEDs are now available with color rendering index (CRI) of 80, equivalent to CFLs.

Driver Losses
Fluorescent and high-intensity discharge (HID) light sources cannot function without a ballast, which provides a starting voltage and limits electrical current to the lamp. LEDs also require supplementary electronics, usually called drivers. The driver converts line power to the appropriate voltage (typically between 2 and 4 volts DC for high-brightness LEDs) and current (generally 200-1000 milliamps or mA), and may also include dimming and/or color correction controls.

Currently available LED drivers are typically about 85% efficient. So LED efficacy should be discounted by 15% to account for the driver. For a rough comparison, the range of luminous efficacies for traditional and LED sources, including ballast and driver losses as applicable, are shown below.

Light Source

Typical Luminous Efficacy Range in lm/W

(varies depending on wattage and lamp type)

Incandescent (no ballast)

10-18

Halogen (no ballast)

15-20

Compact fluorescent (CFL) (incl. ballast)

35-60

Linear fluorescent (incl. ballast)

50-100

Metal halide (incl. ballast)

50-90

Cool white LED 5000K (incl. driver)

47-64*

Warm white LED 3300K (incl. driver)

25-44*

* As of October 2007.


Thermal Effects
The luminous flux figures cited by LED manufacturers are based on an LED junction temperature (Tj) of 25°C. LEDs are tested during manufacturing under conditions that differ from actual operation in a fixture or system. In general, luminous flux is measured under instantaneous operation (perhaps a 20 millisecond pulse) in open air. Tj will always be higher when operated under constant current in a fixture or system. LEDs in a well-designed luminaire with adequate heat sinking will produce 10%-15% less light than indicated by the “typical luminous flux” rating.

Friday, September 5, 2008

LED Street Lights are Coming

by Michael Graham Richard, Gatineau, Canada on 05.28.08

New Foothold for LED Lights
Dusseldorf, Germany, has 17,000 gas street lamps. The city's power utility has decided to replace 10,000 of them with LED street lights, but that hasn't happened yet. So far, only about 25 of them have been installed.

Of course, LED are still kind of expensive, so there's a capital cost. But once they are in place, their operating costs are lower and they can last for a very long time. Another benefit is that you can direct light much more easily, so you can avoid sending light in all directions (people with a street light across the street from their bedroom window will understand...). The first bump in the road for LED street lights was that some people thought their white light was too cold compared to the red-ish glow of the old lamps, but that can easily be fixed by using colored LEDs. ::Replacing gas lamps with LEDs

Tuesday, August 19, 2008

Next Generation of Cheap Solar Cells

New technology uses cheaper materials instead of expensive silicon crystals. These new solar cells are projected to cost 1/10th of what the more expensive silicon cells cost.



Wednesday, July 23, 2008

Tuesday, July 8, 2008

Solar Powered Toyota Prius!

TRANSPORTATION TUESDAY: Solar Powered Toyota Prius!
by Jorge Chapa

prius, solar panels, solar powered prius, toyota adds solar panels, solar powered air conditioning, solar air conditioning, solar powered toyota prius, greener prius, 2009 prius, 2010 prius, prius_1.jpg

The manufacturer of the most popular hybrid car on the market is planning take its green vision even further. Toyota, the makers of the Prius, have decided that the best way to make their top selling hybrid car even greener is to add a set of solar panels to the roof of the vehicle. The addition of solar power to the already super efficient Prius marks the first time that a major auto maker will use this renewable energy in a top selling car. Could this be the official start of a hot commercial trend?

prius, solar panels, solar powered prius, toyota adds solar panels, solar powered air conditioning, solar air conditioning, solar powered toyota prius, greener prius, 2009 prius, 2010 prius, prius_2.jpg

According to a report in the Nikkei Business Daily, Toyota is seriously mulling installing solar panels, to be produced by Kyocera, that will power the air-conditioning unit of the vehicle. This is part of the refreshed model which is expected to be available next spring. It is probably more of a symbolic gesture than anything else, but still, it is a nice detail that will save some fuel.

With oil prices so high, everyone is focusing on making their vehicles as fuel efficient as possible. And, as far as the big car manufacturers are concerned, no one does this better than Toyota. Hopefully, where Toyota leads, others will follow.

+ Toyota to equip Prius with solar panels: report
+ Toyota Prius

prius, solar panels, solar powered prius, toyota adds solar panels, solar powered air conditioning, solar air conditioning, solar powered toyota prius, greener prius, 2009 prius, 2010 prius

Image via: Car and Driver

Tuesday, July 1, 2008

VOLTAIC’s Super Solar Powered Backpack

VOLTAIC’s Super Solar Powered Backpack
by Ali Kriscenski

Voltaic backpack, Voltaic solar powered backpack, Voltaic solar bags, Voltaic solar backpack, renewable energy, portable renewable energy, green gadgets, on-the-go green gadgets, renewable energy chargers, solar chargers, solar gadget chargers, solar phone chargers, solar energy, mobile solar energy, voltaicbackpack1.jpg

There’s nothing quite like renewable energy on-the-go, and Voltaic makes solar power a stylish accessory with a hot lineup of solar powered bags to charge your mobile gadgets. We’ve been impressed with Voltaic’s products from the get go, and with their ongoing efforts to amp up the sustainability factor in their bags like boosting the power in their Generator laptop bag and going to 100% post-consumer recycled PET plastic based fabrics. One of our all-time favorite bags is the durable Voltaic Backpack which just may be the ultimate sustainable summertime sidekick and a must have for the eco-geek on the go.


Voltaic backpack, Voltaic solar powered backpack, Voltaic solar bags, Voltaic solar backpack, renewable energy, portable renewable energy, green gadgets, on-the-go green gadgets, renewable energy chargers, solar chargers, solar gadget chargers, solar phone chargers, solar energy, mobile solar energy, voltaic1.jpg

The Voltaic Backpack has 1,850 cubic inches of storage, making it the ideal weekend or day pack. Made from a tough fabric that puts recycled PET soda bottles into good use, the backpack is built to hold up under wear and tear. Water resistant and light weight, the bag offers 4 watts of solar power to charge smaller gadgets like phones, cameras and mp3 players and lots of techy features - like 11 adaptors, pouches and wire channels - keep things organized on the go. The bag even has a padded sleeve that can hold up to a 17″ laptop making versatility part of the deal.

+ Voltaic Systems

+ Voltaic Now Using Recycled Bottles in their Solar Bags
+ NEW VOLTAIC ‘GENERATOR’ Solar Bag Charges Laptops!

Voltaic backpack, Voltaic solar powered backpack, Voltaic solar bags, Voltaic solar backpack, renewable energy, portable renewable energy, green gadgets, on-the-go green gadgets, renewable energy chargers, solar chargers, solar gadget chargers, solar phone chargers, solar energy, mobile solar energy, voltaicbackpack2.jpg

Saturday, June 21, 2008

Stunning New Terminal at Shenzen Bao’an International Airport

Stunning New Terminal at Shenzen Bao’an International Airport
by Mahesh Basantani

Shenzen Bao

It’s not often that we get to talk about airports but there is a lot happening in the aviation industry. One landmark development is the proposed construction of a new terminal at Shenzen Bao’an International Airport in China. Positioned as a gateway to China and designed by architects Massimiliano and Doriana Fuksas, the terminal will no doubt be a sleek transit destination. What has captured our attention is the incredible double skin canopy intended to let patterned natural light into the space, and significantly reduce energy consumption.

Shenzen Bao

Shenzhen, located in the southern portion of the Guangdong Province in China, is one of the most important industrial and tourist locations, and holds a great potential for economic development. The new terminal at Shenzhen Bao’an International has been proposed as an addition to the 10.8 km2 airport, located near Huangtian and Fuyong villages in Bao’an District of Shenzhen.

The design has been made keeping in mind the unpredictable nature of the aviation industry. The terminal will be made so that people could have a glimpse of the outside, where planes will fly in and out to all corners of the world. The roof canopy will be made of of a patterned double skin. The inner skin will be made of fine net and allow diffused sunlight into the terminal. It will reduce energy consumption and create a pleasant indoor atmosphere.

The master plan shows a truly stunning design. The new terminal, dubbed Terminal 3 or T3, will be built in three phases and cover 400,000 square meters. Phase 1, expected to be complete in 2015, will bring the unit terminal, traffic system, parking place, landscape, and shopping center into form. During phase 2, the first remote passenger concourse, and satellite terminal with rail stations will be built and completed by 2025. Phase 3 is scheduled to be complete in 2035, when the terminal will be fully constructed.

+ Massimiliano and Doriana Fuksas

Via Dezeen

Shenzen Bao

Shenzen Bao

Shenzen Bao

Shenzen Bao

Friday, June 20, 2008

A car for the eco-minded bootlegger

June 19, 2008 10:17 AM PDT
A car for the eco-minded bootlegger
Posted by Mike Yamamoto
(Credit: Red Ferret)

Cars that run on alternative sources of energy needn't look like one of those sober vehicles produced by Eastern Bloc countries at the height of the Cold War economy. At the same time, we're not sure if this Chinese-made model is headed in the right direction either.

The "STM3004 Electric Car" looks vaguely like something Bonnie and Clyde would have ridden, Tommy guns ablaze, with state troopers on their tail. But this version wouldn't make much of a getaway, as Red Ferret notes, as it tops out at 28 miles per hour and has a range of only 50 miles on a 7-hour charge. If it's headed for the jammed streets of Beijing, however, that speed should be plenty.

Wednesday, June 18, 2008

LILYPAD: Floating City for Climate Change Refugees

LILYPAD: Floating City for Climate Change Refugees
by Jorge Chapa

lilypad, green floating city, floating eco utopia, lilypage city, floating cities, biomimicry inspired city, Vincent Callebaut, lilypad floating city, global warming solution, rising seas concept, refugee city, climate refugee

There are very few urban design solutions that address housing the inevitable tide of displaced people that could arise as oceans swell under global warming. Certainly none are as spectacular as this one. The Lilypad, by Vincent Callebaut, is a concept for a completely self-sufficient floating city intended to provide shelter for future climate change refugees. The intent of the concept itself is laudable, but it is Callebaut’s phenomenal design that has captured our imagination.

'lilypad, green floating city, floating eco utopia, lilypage city, floating cities, biomimicry inspired city, Vincent Callebaut, lilypad floating city, global warming solution, rising seas concept, refugee city, climate refugee

Biomimicry was clearly the inspiration behind the design. The Lilypad, which was designed to look like a waterlily, is intended to be a zero emission city afloat in the ocean. Through a number of technologies (solar, wind, tidal, biomass), it is envisioned that the project would be able to not only produce it’s own energy, but be able to process CO2 in the atmosphere and absorb it into its titanium dioxide skin.

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Each of these floating cities are designed to hold approximately around 50,000 people. A mixed terrain man-made landscape, provided by an artificial lagoon and three ridges, create a diverse environment for the inhabitants. Each Lilypad is intended to be either near a coast, or floating around in the ocean, traveling from the equator to the northern seas, according to where the gulf stream takes it.

The project isn’t even close to happening anytime soon, but there is value in future forward designs like the Lilypad. They inspire creative solutions, which at some point, may actually provide a real solution to the climate change problem.

+ Lilypad, a floating ecopolis for climate refugees

via Freshhome

lilypad, floating cities, Vincent Callebaut, biomimicry inspired city, lilypad floating city, global warming solution, rising seas concept, refugee city, climate refugee

lilypad, floating cities, Vincent Callebaut, biomimicry inspired city, lilypad floating city, global warming solution, rising seas concept, refugee city, climate refugee

Monday, June 16, 2008

Power From Rubbish

Published June 9, 2008

Every cloud has a silver lining so they say ….. and it seems the old expression applies even to the much-maligned landfill site.

In America, gas from landfill sites is now being used as an alternative form of energy for around a million homes.

And as demand grows for alternative energy sources, experts predict that its use will become much more widespread.

Landfill gas is produced by the breaking down of organic matter in waste dumped in a landfill site and is made up of both methane and carbon dioxide.

Waste Management companies are now building special plants that can convert the gas into energy for household use and it is estimated that many landfill sites have sufficient gas to run for around 20 years.



In the UK alone, around 100 million tonnes of waste goes to landfill every year and if the gas it produces is simply left for release into the atmosphere, it is a potent greenhouse gas. There is also a danger that it could leak offsite to nearby buildings and cause explosions.

So, using it as a form of renewable energy actually avoids two potential problems in addition to saving fossil fuels!

This summer, sustainable energy company, ENER-G will open the UK’s first waste gasification plant on the Isle of Wight, generating enough power to serve around 3000 homes.

Planning permission has also been given for another plant in Irvine, Scotland where building is due to begin later this year and the company is also hoping to build a smaller plant on Merseyside. This would generate enough electricity for over 10,000 homes and produce heat for use by neighbouring businesses.
Susan

Cheaper Solar Energy

A solar "power tower" in an undated illustration courtesy of BrightSource Energy. The company said it will open a solar "power tower" in Israel this week to test new technology it will use when building power plants next year in California. REUTERS/Handout
A solar "power tower" in an undated illustration courtesy of BrightSource Energy. The company said it will open a solar "power tower" in Israel this week to test new technology it will use when building power plants next year in California. REUTERS/Handout

By Ari Rabinovitch

JERUSALEM (Reuters) - Energy company BrightSource Energy Inc said it will open a solar "power tower" in Israel this week to test new technology it will use when building power plants next year in California.

California utility PG&E Corp signed contracts with BrightSource in April to buy up to 900 megawatts of solar thermal power in the next few years, enough to power about 630,000 homes.

The move is part of a PG&E push to comply with California's requirement that at least 20 percent of its electricity supplies come from renewable energy by 2010.

A global race is on to find energy alternatives to replace fossil fuels, and entrepreneurs are scrambling for a slice of a clean energy market that analysts estimate was worth nearly $150 billion last year.

BrightSource's development centre, with its 60 meter-high (60 foot) tower and some 1,200 mirrors, sits on about 12,000 square meters (three acres) of Israel's southern Negev Desert, chairman Arnold Goldman said.

BrightSource did not release financial details of the complex, but said its systems are more cost-efficient than other solar power plants.

The new power tower, which is capable of generating 1.5 megawatts, will not produce electricity for public use, but rather test the technologies that will power future plants, including a 100 megawatt plant in California's Mojave Desert scheduled to be completed by 2011, Kroizer said.

The 100 megawatt plant will be about 50 times larger that the Negev centre.

BrightSource CEO John Woolard said competitors, like Spanish building and energy group Acciona, were still using similar technologies to those used by BrightSource 20 years ago.

"The new power tower based technology, we don't see any serious competition, yet, in that area," Woolard told a news conference in Jerusalem.

HIGHER TEMPERATURE, HIGHER PRESSURE

Solar power towers, which have been used for decades, use mirrors to reflect and intensify sunlight, much like using a magnifying glass to start a fire. Traditionally, the system contains rows of large, curved mirrors, sometimes reaching 100 meters in length.

The sunlight is aimed at a boiler on top of the tower and is hot enough to boil the water into steam that passes through turbines and produces electricity.

The new power tower is surrounded by a system of smaller, flat mirrors, each with an enhanced guidance system to track and reflect the sun more effectively than the trough-like systems, Goldman said.

"It takes huge amounts of electronics and controls and gears. The electronics industry has driven those costs down so much that you can do that today," Goldman said. It also requires about a third of the steel and cement, he said.

BrightSource's mirrors reflect about 50 percent of the sunlight, while standard systems reflect 35-40 percent, Goldman said. As a result, the temperature and pressure in the boiler is higher and energy is produced more effectively.

"Historic troughs can put the equivalent of about 20 suns on the tower. We have a maximum of 600 suns," Goldman said.

Woolard also said the new power tower works at half the cost of photo-voltaic solar panel plants because it produces energy about twice as many hours in a year.

(Editing by William Hardy)