下載App 希平方
攻其不背
App 開放下載中
下載App 希平方
攻其不背
App 開放下載中
IE版本不足
您的瀏覽器停止支援了😢使用最新 Edge 瀏覽器或點選連結下載 Google Chrome 瀏覽器 前往下載

免費註冊
! 這組帳號已經註冊過了
Email 帳號
密碼請填入 6 位數以上密碼
已經有帳號了?
忘記密碼
! 這組帳號已經註冊過了
您的 Email
請輸入您註冊時填寫的 Email,
我們將會寄送設定新密碼的連結給您。
寄信了!請到信箱打開密碼連結信
密碼信已寄至
沒有收到信嗎?
如果您尚未收到信,請前往垃圾郵件查看,謝謝!

恭喜您註冊成功!

查看會員功能

註冊未完成

《HOPE English 希平方》服務條款關於個人資料收集與使用之規定

隱私權政策
上次更新日期:2014-12-30

希平方 為一英文學習平台,我們每天固定上傳優質且豐富的影片內容,讓您不但能以有趣的方式學習英文,還能增加內涵,豐富知識。我們非常注重您的隱私,以下說明為當您使用我們平台時,我們如何收集、使用、揭露、轉移及儲存你的資料。請您花一些時間熟讀我們的隱私權做法,我們歡迎您的任何疑問或意見,提供我們將產品、服務、內容、廣告做得更好。

本政策涵蓋的內容包括:希平方學英文 如何處理蒐集或收到的個人資料。
本隱私權保護政策只適用於: 希平方學英文 平台,不適用於非 希平方學英文 平台所有或控制的公司,也不適用於非 希平方學英文 僱用或管理之人。

個人資料的收集與使用
當您註冊 希平方學英文 平台時,我們會詢問您姓名、電子郵件、出生日期、職位、行業及個人興趣等資料。在您註冊完 希平方學英文 帳號並登入我們的服務後,我們就能辨認您的身分,讓您使用更完整的服務,或參加相關宣傳、優惠及贈獎活動。希平方學英文 也可能從商業夥伴或其他公司處取得您的個人資料,並將這些資料與 希平方學英文 所擁有的您的個人資料相結合。

我們所收集的個人資料, 將用於通知您有關 希平方學英文 最新產品公告、軟體更新,以及即將發生的事件,也可用以協助改進我們的服務。

我們也可能使用個人資料為內部用途。例如:稽核、資料分析、研究等,以改進 希平方公司 產品、服務及客戶溝通。

瀏覽資料的收集與使用
希平方學英文 自動接收並記錄您電腦和瀏覽器上的資料,包括 IP 位址、希平方學英文 cookie 中的資料、軟體和硬體屬性以及您瀏覽的網頁紀錄。

隱私權政策修訂
我們會不定時修正與變更《隱私權政策》,不會在未經您明確同意的情況下,縮減本《隱私權政策》賦予您的權利。隱私權政策變更時一律會在本頁發佈;如果屬於重大變更,我們會提供更明顯的通知 (包括某些服務會以電子郵件通知隱私權政策的變更)。我們還會將本《隱私權政策》的舊版加以封存,方便您回顧。

服務條款
歡迎您加入看 ”希平方學英文”
上次更新日期:2013-09-09

歡迎您加入看 ”希平方學英文”
感謝您使用我們的產品和服務(以下簡稱「本服務」),本服務是由 希平方學英文 所提供。
本服務條款訂立的目的,是為了保護會員以及所有使用者(以下稱會員)的權益,並構成會員與本服務提供者之間的契約,在使用者完成註冊手續前,應詳細閱讀本服務條款之全部條文,一旦您按下「註冊」按鈕,即表示您已知悉、並完全同意本服務條款的所有約定。如您是法律上之無行為能力人或限制行為能力人(如未滿二十歲之未成年人),則您在加入會員前,請將本服務條款交由您的法定代理人(如父母、輔助人或監護人)閱讀,並得到其同意,您才可註冊及使用 希平方學英文 所提供之會員服務。當您開始使用 希平方學英文 所提供之會員服務時,則表示您的法定代理人(如父母、輔助人或監護人)已經閱讀、了解並同意本服務條款。 我們可能會修改本條款或適用於本服務之任何額外條款,以(例如)反映法律之變更或本服務之變動。您應定期查閱本條款內容。這些條款如有修訂,我們會在本網頁發佈通知。變更不會回溯適用,並將於公布變更起十四天或更長時間後方始生效。不過,針對本服務新功能的變更,或基於法律理由而為之變更,將立即生效。如果您不同意本服務之修訂條款,則請停止使用該本服務。

第三人網站的連結 本服務或協力廠商可能會提供連結至其他網站或網路資源的連結。您可能會因此連結至其他業者經營的網站,但不表示希平方學英文與該等業者有任何關係。其他業者經營的網站均由各該業者自行負責,不屬希平方學英文控制及負責範圍之內。

兒童及青少年之保護 兒童及青少年上網已經成為無可避免之趨勢,使用網際網路獲取知識更可以培養子女的成熟度與競爭能力。然而網路上的確存有不適宜兒童及青少年接受的訊息,例如色情與暴力的訊息,兒童及青少年有可能因此受到心靈與肉體上的傷害。因此,為確保兒童及青少年使用網路的安全,並避免隱私權受到侵犯,家長(或監護人)應先檢閱各該網站是否有保護個人資料的「隱私權政策」,再決定是否同意提出相關的個人資料;並應持續叮嚀兒童及青少年不可洩漏自己或家人的任何資料(包括姓名、地址、電話、電子郵件信箱、照片、信用卡號等)給任何人。

為了維護 希平方學英文 網站安全,我們需要您的協助:

您承諾絕不為任何非法目的或以任何非法方式使用本服務,並承諾遵守中華民國相關法規及一切使用網際網路之國際慣例。您若係中華民國以外之使用者,並同意遵守所屬國家或地域之法令。您同意並保證不得利用本服務從事侵害他人權益或違法之行為,包括但不限於:
A. 侵害他人名譽、隱私權、營業秘密、商標權、著作權、專利權、其他智慧財產權及其他權利;
B. 違反依法律或契約所應負之保密義務;
C. 冒用他人名義使用本服務;
D. 上載、張貼、傳輸或散佈任何含有電腦病毒或任何對電腦軟、硬體產生中斷、破壞或限制功能之程式碼之資料;
E. 干擾或中斷本服務或伺服器或連結本服務之網路,或不遵守連結至本服務之相關需求、程序、政策或規則等,包括但不限於:使用任何設備、軟體或刻意規避看 希平方學英文 - 看 YouTube 學英文 之排除自動搜尋之標頭 (robot exclusion headers);

服務中斷或暫停
本公司將以合理之方式及技術,維護會員服務之正常運作,但有時仍會有無法預期的因素導致服務中斷或故障等現象,可能將造成您使用上的不便、資料喪失、錯誤、遭人篡改或其他經濟上損失等情形。建議您於使用本服務時宜自行採取防護措施。 希平方學英文 對於您因使用(或無法使用)本服務而造成的損害,除故意或重大過失外,不負任何賠償責任。

版權宣告
上次更新日期:2013-09-16

希平方學英文 內所有資料之著作權、所有權與智慧財產權,包括翻譯內容、程式與軟體均為 希平方學英文 所有,須經希平方學英文同意合法才得以使用。
希平方學英文歡迎你分享網站連結、單字、片語、佳句,使用時須標明出處,並遵守下列原則:

  • 禁止用於獲取個人或團體利益,或從事未經 希平方學英文 事前授權的商業行為
  • 禁止用於政黨或政治宣傳,或暗示有支持某位候選人
  • 禁止用於非希平方學英文認可的產品或政策建議
  • 禁止公佈或傳送任何誹謗、侮辱、具威脅性、攻擊性、不雅、猥褻、不實、色情、暴力、違反公共秩序或善良風俗或其他不法之文字、圖片或任何形式的檔案
  • 禁止侵害或毀損希平方學英文或他人名譽、隱私權、營業秘密、商標權、著作權、專利權、其他智慧財產權及其他權利、違反法律或契約所應付支保密義務
  • 嚴禁謊稱希平方學英文辦公室、職員、代理人或發言人的言論背書,或作為募款的用途

網站連結
歡迎您分享 希平方學英文 網站連結,與您的朋友一起學習英文。

抱歉傳送失敗!

不明原因問題造成傳送失敗,請儘速與我們聯繫!
希平方 x ICRT

「Juan Enriquez:利用生物學重新思考能源挑戰」- Using Biology to Rethink the Energy Challenge

觀看次數:2482  • 

框選或點兩下字幕可以直接查字典喔!

What is bioenergy? Bioenergy is not ethanol. Bioenergy isn't global warming. Bioenergy is something which seems counterintuitive. Bioenergy is oil. It's gas. It's coal. And part of building that bridge to the future, to the point where we can actually see the oceans in a rational way, or put up these geo-spatial orbits that will twirl or do microwaves or stuff, is going to depend on how we understand bioenergy and manage it. And to do that, you really have to look first at agriculture.

So we've been planting stuff for 11,000 years. And in the measure that we plant stuff, what we learn from agriculture is you've got to deal with pests, you've got to deal with all types of awful things, you've got to cultivate stuff. In the measure that you learn how to use water to cultivate, then you're going to be able to spread beyond the Nile. You're going to be able to power stuff, so irrigation makes a difference.

Irrigation starts to make you be allowed to plant stuff where you want it, as opposed to where the rivers flood. You start getting this organic agriculture; you start putting machinery onto this stuff. Machinery, with a whole bunch of water, leads to very large-scale agriculture. You put together machines and water, and you get landscapes that look like this. And then you get sales that look like this. It's brute force. So what you've been doing in agriculture is you start out with something that's a reasonably natural system. You start taming that natural system. You put a lot of force behind that natural system. You put a whole bunch of pesticides and herbicides behind that natural system, and you end up with systems that look like this.

And it's all brute force. And that's the way we've been approaching energy. So the lesson in agriculture is that you can actually change the system that's based on brute force as you start merging that system and learning that system and actually applying biology. And you move from a discipline of engineering, you move from a discipline of chemistry, into a discipline of biology. And probably one of the most important human beings on the planet is this guy behind me.

This is a guy called Norman Borlaug. He won the Nobel Prize. He's got the Congressional Medal of Honor. He deserves all of this stuff. And he deserves this stuff because he probably has fed more people than any other human being alive because he researched how to put biology behind seeds. He did this in Mexico. The reason why India and China no longer have these massive famines is because Norman Borlaug taught them how to grow grains in a more efficient way and launched the Green Revolution. That is something that a lot of people have criticized. But of course, those are people who don't realize that China and India, instead of having huge amounts of starving people, are exporting grains.

And the irony of this particular system is the place where he did the research, which was Mexico, didn't adopt this technology, ignored this technology, talked about why this technology should be thought about, but not really applied. And Mexico remains one of the largest grain importers on the planet because it doesn't apply technology that was discovered in Mexico. And in fact, hasn't recognized this man, to the point where there aren't statues of this man all over Mexico. There are in China and India. And the Institute that this guy ran has now moved to India. That is the difference between adopting technologies and discussing technologies. Now, it's not just that this guy fed a huge amount of people in the world. It's that this is the net effect in terms of what technology does, if you understand biology.

What happened in agriculture? Well, if you take agriculture over a century, agriculture in about 1900 would have been recognizable to somebody planting a thousand years earlier. Yeah, the plows look different. The machines were tractors or stuff instead of mules, but the farmer would have understood: this is what the guy's doing, this is why he's doing it, this is where he's going. What really started to change in agriculture is when you started moving from this brute force engineering and chemistry into biology, and that's where you get your productivity increases. And as you do that stuff, here's what happens to productivity.

Basically, you go from 250 hours to produce 100 bushels, to 40, to 15, to five. Agricultural labor productivity increased seven times, 1950 to 2000, whereas the rest of the economy increased about 2.5 times. This is an absolutely massive increase in how much is produced per person. The effect of this, of course, is it's not just amber waves of grain, it is mountains of stuff. And 50 percent of the EU budget is going to subsidize agriculture from mountains of stuff that people have overproduced.
This would be a good outcome for energy. And of course, by now, you're probably saying to yourself, "Self, I thought I came to a talk about energy and here's this guy talking about biology." So where's the link between these two things? One of the ironies of this whole system is we're discussing what to do about a system that we don't understand. We don't even know what oil is. We don't know where oil comes from. I mean, literally, it's still a source of debate what this black river of stuff is and where it comes from. The best assumption, and one of the best guesses in this stuff, is that this stuff comes out of this stuff, that these things absorb sunlight, rot under pressure for millions of years, and you get these black rivers.

Now, the interesting thing about that thesis—if that thesis turns out to be true—is that oil, and all hydrocarbons, turned out to be concentrated sunlight. And if you think of bioenergy, bioenergy isn't ethanol. Bioenergy is taking the sun, concentrating it in amoebas, concentrating it in plants, and maybe that's why you get these rainbows. And as you're looking at this system, if hydrocarbons are concentrated sunlight, then bioenergy works in a different way. And we've got to start thinking of oil and other hydrocarbons as part of these solar panels. Maybe that's one of the reasons why if you fly over west Texas, the types of wells that you're beginning to see don't look unlike those pictures of Kansas and those irrigated plots.

This is how you farm oil. And as you think of farming oil and how oil has evolved, we started with this brute force approach. And then what did we learn? Then we learned we had to go bigger. And then what'd we learn? Then we have to go even bigger. And we are getting really destructive as we're going out and farming this bioenergy. These are the Athabasca tar sands, and there's an enormous amount—first of mining, the largest trucks in the world are working here, and then you've got to pull out this black sludge, which is basically oil that doesn't flow. It's tied to the sand. And then you've got to use a lot of steam to separate it, which only works at today's oil prices.

Coal. Coal turns out to be virtually the same stuff. It is probably plants, except that these have been burned and crushed under pressure. So you take something like this, you burn it, you put it under pressure, and likely as not, you get this. Although, again, I stress: we don't know. Which is curious as we debate all this stuff. But as you think of coal, this is what burned wheat kernels look like. Not entirely unlike coal.

And of course, coalmines are very dangerous places because in some of these coalmines, you get gas. When that gas blows up, people die. So you're producing a biogas out of coal in some mines, but not in others. Any place you see a differential, there're some interesting questions. There's some questions as to what you should be doing with this stuff. But again, coal. Maybe the same stuff, maybe the same system, maybe bioenergy, and you're applying exactly the same technology.

Here's your brute force approach. Once you get through your brute force approach, then you just rip off whole mountaintops. And you end up with the single largest source of carbon emissions, which are coal-fired gas plants. That is probably not the best use of bioenergy. As you think of what are the alternatives to this system—it's important to find alternatives because it turns out that the U.S. is dwindling in its petroleum reserves, but it is not dwindling in its coal reserves, nor is China. There are huge coal reserves that are sitting out there, and we've got to start thinking of them as biological energy, because if we keep treating them as chemical energy, or engineering energy, we're going to be in deep doo-doo.

Gas is a similar issue. Gas is also a biological product. And as you think of gas, well, you're familiar with gas. And here's a different way of mining coal. This is called coal bed methane. Why is this picture interesting? Because if coal turns out to be concentrated plant life, the reason why you may get a differential in gas output between one mine and another—the reason why one mine may blow up and another one may not blow up—may be because there's stuff eating that stuff and producing gas. This is a well-known phenomenon. You eat certain things, you produce a lot of gas. It may turn out that biological processes in coalmines have the same process. If that is true, then one of the ways of getting the energy out of coal may not be to rip whole mountaintops off, and it may not be to burn coal. It may be to have stuff process that coal in a biological fashion as you did in agriculture.
That is what bioenergy is. It is not ethanol. It is not subsidies to a few companies. It is not importing corn into Iowa because you've built so many of these ethanol plants. It is beginning to understand the transition that occurred in agriculture, from brute force into biological force. And in the measure that you can do that, you can clean some stuff, and you can clean it pretty quickly. We already have some indicators of productivity on this stuff. OK, if you put steam into coal fields or petroleum fields that have been running for decades, you can get a really substantial increase, like an eight-fold increase, in your output. This is just the beginning stages of this stuff.

And as you think of biomaterials, this guy—who did part of the sequencing of the human genome, who just doubled the databases of genes and proteins known on earth by sailing around the world—has been thinking about how you structure this. And there's a series of smart people thinking about this. And they've been putting together companies like Synthetic Genomics, like, a Cambria, like Codon, and what those companies are trying to do is to think of, how do you apply biological principles to avoid brute force? Think of it in the following terms. Think of it as beginning to program stuff for specific purposes. Think of the cell as a hardware. Think of the genes as a software. And in the measure that you begin to think of life as code that is interchangeable, that can become energy, that can become food, that can become fiber, that can become human beings, that can become a whole series of things, then you've got to shift your approach as to how you're going to structure and deal and think about energy in a very different way.

What are the first principles of this stuff and where are we heading? This is one of the gentle giants on the planet. He's one of the nicest human beings you've ever met. His name is Hamilton Smith. He won the Nobel for figuring out how to cut genes—something called restriction enzymes. He was at Hopkins when he did this, and he's such a modest guy that the day he won, his mother called him and said, "I didn't realize there was another Ham Smith at Hopkins. Do you know he just won the Nobel?" I mean, that was Mom, but anyway, this guy is just a class act. You find him at the bench every single day, working on a pipette and building stuff. And one of the things this guy just built are these things.

What is this? This is the first transplant of naked DNA, where you take an entire DNA operating system out of one cell, insert it into a different cell, and have that cell boot up as a separate species. That's one month old. You will see stuff in the next month that will be just as important as this stuff. And as you think about this stuff and what the implications of this are, we're going to start not just converting ethanol from corn with very high subsidies. We're going to start thinking about biology entering energy. It is very expensive to process this stuff, both in economic terms and in energy terms.

This is what accumulates in the tar sands of Alberta. These are sulfur blocks. Because as you separate that petroleum from the sand, and use an enormous amount of energy inside that vapor—steam to separate this stuff—you also have to separate out the sulfur. The difference between light crude and heavy crude—well, it's about 14 bucks a barrel. That's why you're building these pyramids of sulfur blocks. And by the way, the scale on these things is pretty large.

Now, if you can take part of the energy content out of doing this, you reduce the system, and you really do start applying biological principles to energy. This has to be a bridge to the point where you can get to wind, to the point where you can get to solar, to the point where you can get to nuclear—and hopefully you won't build the next nuclear plant on a beautiful seashore next to an earthquake fault. Just a thought.

But in the meantime, for the next decade at least, the name of the game is hydrocarbons. And be that oil, be that gas, be that coal, this is what we're dealing with. And before I make this talk too long, here's what's happening in the current energy system. 86 percent of the energy we consume are hydrocarbons. That means 86 percent of the stuff we're consuming are probably processed plants and amoebas and the rest of the stuff. And there's a role in here for conservation. There's a role in here for alternative stuff, but we've also got to get that other portion right. How we deal with that other portion is our bridge to the future. And as we think of this bridge to the future, one of the things you should ponder is: we are leaving about two-thirds of the oil today inside those wells. So we're spending an enormous amount of money and leaving most of the energy down there. Which, of course, requires more energy to go out and get energy. The ratios become idiotic by the time you get to ethanol. It may even be a one-to-one ratio on the energy input and the energy output. That is a stupid way of managing this system.

Last point, last graph. One of the things that we've got to do is to stabilize oil prices. This is what oil prices look like, OK? This is a very bad system because what happens is your hurdle rate gets set very low. People come up with really smart ideas for solar panels, or for wind, or for something else, and then guess what? The oil price goes through the floor. That company goes out of business, and then you can bring the oil price back up.

So if I had one closing and modest suggestion, let's set a stable oil price in Europe and the United States. How do you do that? Well, let's put a tax on oil that is a non-revenue tax, and it basically says for the next 20 years, the price of oil will be—whatever you want, 35 bucks, 40 bucks. If the OPEC price falls below that, we tax it. If the OPEC price goes above that, the tax goes away. What does that do for entrepreneurs? What does it do for companies? It tells people, if you can produce energy for less than 35 bucks a barrel, or less than 40 bucks a barrel, or less than 50 bucks a barrel—let's debate it—you will have a business. But let's not put people through this cycle where it doesn't pay to research because your company will go out of business as OPEC drives alternatives and keeps bioenergy from happening. Thank you.

播放本句

登入使用學習功能

使用Email登入

HOPE English 播放器使用小提示

  • 功能簡介

    單句重覆、重複上一句、重複下一句:以句子為單位重覆播放,單句重覆鍵顯示綠色時為重覆播放狀態;顯示白色時為正常播放狀態。按重複上一句、重複下一句時就會自動重覆播放該句。
    收錄佳句:點擊可增減想收藏的句子。

    中、英文字幕開關:中、英文字幕按鍵為綠色為開啟,灰色為關閉。鼓勵大家搞懂每一句的內容以後,關上字幕聽聽看,會發現自己好像在聽中文說故事一樣,會很有成就感喔!
    收錄單字:框選英文單字可以收藏不會的單字。
  • 分享
    如果您有收錄很優秀的句子時,可以分享佳句給大家,一同看佳句學英文!