Đầu ra Full HD1080p qua HDMI
WANIN V500 Hiển thị hình ảnh rõ ràng, sinh động để chia sẻ trải nghiệm học tập chất lượng cao nhất với sinh viên thông qua đầu ra hình ảnh độ phân giải cao 1080p đầy đủ của visualizer. Sử dụng kết nối HDMI chuẩn để phát lại âm thanh và hình ảnh đã ghi cũng như video.
Hệ thống đèn LED chiếu sáng tự động
Máy chiếu vật thể Wanin V500 với thiết kế lên đến 12 bóng đèn LED giúp bạn trình chiếu dữ liệu hiệu quả với ánh sáng tốt, chế độ đèn được điều chỉnh auto hoặc tự động tùy theo nhu cầu ánh sáng của người sử dụng
Ghi hình nhanh 30fps
Tốc độ xử lý hình ảnh nhanh với khung hình 30fps. Cùng với đó là các cổng kết nối trực tiếp vào thẻ SDHC hoặc ổ flash USB. Dễ dàng tải lên từ PC / Mac lên Internet để sinh viên học tập.
Phát trực tuyến hình ảnh full HD tiên tiến qua HDMI
Đầu vào và đầu ra HDMI cho phép giáo viên tạo các bản trình bày đa phương tiện có độ phân giải cao. Khả năng kết nối tiên tiến và linh hoạt, tương thích với tất cả các máy tính cá nhân, máy tính xách tay và máy chiếu hiện tại, đồng thời đảm bảo truyền hình ảnh chất lượng cao nhất - không cần chuyển đổi HDMI sang VGA.
Trình hiển thị hoàn hảo cho các buổi thuyết trình và lớp học kinh doanh
Nó tự hào có chân đế chống trầy xước đa khớp chắc chắn và camera 8.0 mpx mạnh mẽ. V500 sở hữu tính linh hoạt để nắm bắt bất kỳ tài liệu nào cho các bài thuyết trình và các buổi giảng dạy. Máy ảnh hỗ trợ độ phân giải lên tới 3264 x 2448 pixel và hỗ trợ video 1080 HD lên đến 1920 × 1080 pixel với 30 khung hình mỗi giây.
Đa khớp linh hoạt
Năm khớp ở hai cánh tay, tiết lộ hoàn hảo các chi tiết từ chụp cận cảnh đến chụp toàn bộ các vật thể khác nhau. Chụp các vật thể 3d hoặc thậm chí toàn bộ căn phòng từ mọi góc độ bằng các khớp linh hoạt và phóng to kỹ thuật số.
Nút vật lý chức năng
Bố trí hợp lý và tích hợp chức năng của các nút vật lý cho trải nghiệm người dùng thuận tiện hơn. Cung cấp bộ điều khiển từ xa cho người dùng miễn phí trong toàn bộ cuộc biểu tình.
Giao diện chung có sẵn rộng rãi
Bạn có thể sử dụng cổng USB hoặc bộ chuyển đổi VGA tốc độ cao của nó để hiển thị tài liệu trên máy chiếu hoặc máy tính. Bạn không thể cần một máy tính để quét hoặc hiển thị tài liệu. Máy ảnh Wanin V500 này hoàn hảo cho mọi nhu cầu giáo dục và kinh doanh nhờ các tính năng dễ sử dụng.
Thông số kỹ thuật
Cảm biến hồng ngoại: 1/4" CMOS
Cảm biến hình ảnh: 8,0 mega pixels (2591 x 1944)
Độ phân giải độ phân giải cực cao lên tới 1080p
Tốc độ khung hình: 15 khung hình / giây @ 1920 × 1080
Quay video trực tiếp: lên đến 30 khung hình / giây (ở chế độ full HD)
Hệ thống quang học:
Ống kính: F=2.8
Zoom kỹ thuật số: 100X
Tiêu điểm: Auto / Bằng tay
Lấy nét hình ảnh: Auto / Bằng tay
Cân bằng trắng: Auto / Bằng tay
Xoay hình ảnh: 90 độ, 180 độ, 270 độ
Vùng chụp: Kích thước A4, 8.3 – 11.7” (210 x 297mm)
Hệ thống đèn: Ánh sáng điểu khiển, đèn LED tuổi thọ cao bao gồm 12 bóng LED
Điều chỉnh độ sáng LED: Auto / Bằng tay
Chế độ âm bản, dương bản: Có
Chế độ màn hình chia nhỏ: Có
Cân bằng trắng: Tự động / ánh sáng ban ngày
Quay hình ảnh theo phương thẳng đứng: Có
Hiệu ứng hình ảnh: Màu sắc (Đen & trắng) Rõ nét/mờ
Màu sắc: màu đen
Cổng tín hiệu : VGA x 1 in, VGA x 1 out, USB x1, thẻ SD x1, HDMI Out x1
Nguồn điện vào: 12V, 1A
Kích thước máy khi mở ra (W x D x H): 185 x 110 x 263mm
Kích thước máy khi gấp lại (W x D x H): 312 x 110 x 85mm
Trọng lượng: 1Kg
Xuất xứ: Trung Quốc
Bảo hành: 12 tháng
Phụ kiện đi kèm: dây nguồn, cáp tín hiệu HDMI, cáp tín hiệu VGA, dây tín hiệu USB, hướng dẫn sử dụng, điều khiển từ xa.
HaroldNam
Manuala metode
Manuala FUE procedura tiek izmantots tikai roku darbs, graftus atdalot ar instrumentu, kura diametrs ir 0.9-1.00 mm. Parstadits tiek viss grafts, kas parasti satur 1-4 matu folikulus, nedalot atseviski pa 1 graftam, tadejadi iegustot kuplu un dabigu rezultatu.
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Dr. Ilze Runce veicot griezienus, strada ar mikroskopu, kas dod iespeju iegut matu biezumu, kas maksimali pietuvinats dabigajam un viena procedura iespejams parstadit lidz pat 4000 graftu. Manuala FUE metode tiek izmantota ari uzacu un bardas parstadisana. Procedura norit vieteja anestezija un ir klientam komfortabla – tas laika pacients visu laiku atrodas sedus stavokli proceduru kresla un var lietot datoru, telefonu, planseti, lasit gramatu vai skatities TV.
Dr. Ilze Runce ir manualas metodes aizsaceja Latvija, ir atseviski apguvusi so metodi Kazahstana 1 gada garuma pie nozares profesionaliem un ieviesusi to Latvija kops 2013.gada, kopuma ir veikusi jau vairak ka 1000 manualas FUE proceduras.
Aprakstu sagatavoja Dr. Ilze Runce
Manualas metodes cena ieklauts viss nepieciesamais:
nepieciesamais graftu daudzums;
visi pecoperacijas medikamenti;
sprejs;
sampuns;
cepurite;
pusdienas proceduras diena;
parsiesana nakamaja diena (pec nepieciesamibas).
MATU IZKRISANA
Pastiprinata matu izkrisana jeb alopecija skar gan viriesus, gan sievietes. Ta var but saistita ar novecosanos, genetiku, hroniskam slimibam, ieilgusu stresu, ka ari specifiskam imunas sistemas reakcijam. Mati klust plani vai pilniba izkrit. Ari retas un apdegumi zonas, kur agrak ir bijis apmatojums, (piemeram, uzacis) var radit estetisku diskomfortu.
Matu parstadisanas procedura ir efektivs risinajums gadijumos, kad medikamenti un arstnieciskas proceduras nepalidz!
Jalali
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Petergorne
An astronaut’s awe-inspiring views from life in space
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Longtime NASA astronaut Don Pettit, who has ventured to space four times, returned to Earth on Saturday night from the International Space Station. Pettit, who turned 70 on Sunday, landed at 9:20 p.m. ET in a Soyuz spacecraft with Roscosmos cosmonauts Alexey Ovchinin and Ivan Vagner near Zhezkazgan, Kazakhstan, after a seven-month stay aboard the orbiting laboratory.
The scientist invented the first object patented in space — called the Capillary Beverage, Space Cup or Zero-G cup, which makes it easier to drink beverages in the absence of gravity, and he is also a celebrated astrophotographer known for capturing unique views of the cosmos.
“One of the things I like to do with my astrophotography is to have a composition and a perspective that’s different than an Earth-centric one, typically showing an Earth horizon with the atmosphere on edge, the limb, and then some kind of astronomy, astrophotography, in relationship to that,” Pettit said from the space station during an April 3 interview with astrophysicist Neil deGrasse Tyson.
“Earth is amazingly beautiful when your feet are firmly planted on the ground, and it’s beautiful from space,” Pettit said. “And it’s hard to say what is more beautiful. I think it’s because space is a unique opportunity we seek to focus on the beauty of being in orbit. If we had people living their whole life in orbit, when they come down to Earth, they would probably think that was the most beautiful perspective they’d ever seen.”
Pettit takes his photos from the cupola on the space station, a favorite of crew members due to its seven windows that overlook Earth.
Here are some of his most unforgettable views of what it’s like to live in space that he captured over the past seven months.
Gordonweinc
‘A whole different mindset’
Accurate clockwork is one matter. But how future astronauts living and working on the lunar surface will experience time is a different question entirely.
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On Earth, our sense of one day is governed by the fact that the planet completes one rotation every 24 hours, giving most locations a consistent cycle of daylight and darkened nights. On the moon, however, the equator receives roughly 14 days of sunlight followed by 14 days of darkness.
“It’s just a very, very different concept” on the moon, Betts said. “And (NASA is) talking about landing astronauts in the very interesting south polar region (of the moon), where you have permanently lit and permanently shadowed areas. So, that’s a whole other set of confusion.”
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“It’ll be challenging” for those astronauts, Betts added. “It’s so different than Earth, and it’s just a whole different mindset.”
That will be true no matter what time is displayed on the astronauts’ watches.
Still, precision timekeeping matters — not just for the sake of scientifically understanding the passage of time on the moon but also for setting up all the infrastructure necessary to carry out missions.
The beauty of creating a time scale from scratch, Gramling said, is that scientists can take everything they have learned about timekeeping on Earth and apply it to a new system on the moon.
And if scientists can get it right on the moon, she added, they can get it right later down the road if NASA fulfills its goal of sending astronauts deeper into the solar system.
“We are very much looking at executing this on the moon, learning what we can learn,” Gramling said, “so that we are prepared to do the same thing on Mars or other future bodies.”
Robertlop
‘A whole different mindset’
Accurate clockwork is one matter. But how future astronauts living and working on the lunar surface will experience time is a different question entirely.
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On Earth, our sense of one day is governed by the fact that the planet completes one rotation every 24 hours, giving most locations a consistent cycle of daylight and darkened nights. On the moon, however, the equator receives roughly 14 days of sunlight followed by 14 days of darkness.
“It’s just a very, very different concept” on the moon, Betts said. “And (NASA is) talking about landing astronauts in the very interesting south polar region (of the moon), where you have permanently lit and permanently shadowed areas. So, that’s a whole other set of confusion.”
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“It’ll be challenging” for those astronauts, Betts added. “It’s so different than Earth, and it’s just a whole different mindset.”
That will be true no matter what time is displayed on the astronauts’ watches.
Still, precision timekeeping matters — not just for the sake of scientifically understanding the passage of time on the moon but also for setting up all the infrastructure necessary to carry out missions.
The beauty of creating a time scale from scratch, Gramling said, is that scientists can take everything they have learned about timekeeping on Earth and apply it to a new system on the moon.
And if scientists can get it right on the moon, she added, they can get it right later down the road if NASA fulfills its goal of sending astronauts deeper into the solar system.
“We are very much looking at executing this on the moon, learning what we can learn,” Gramling said, “so that we are prepared to do the same thing on Mars or other future bodies.”
AndreSaf
Lunar clockwork
What scientists know for certain is that they need to get precision timekeeping instruments to the moon.
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Exactly who pays for lunar clocks, which type of clocks will go, and where they’ll be positioned are all questions that remain up in the air, Gramling said.
“We have to work all of this out,” she said. “I don’t think we know yet. I think it will be an amalgamation of several different things.”
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Atomic clocks, Gramling noted, are great for long-term stability, and crystal oscillators have an advantage for short-term stability.
“You never trust one clock,” Gramling added. “And you never trust two clocks.”
Clocks of various types could be placed inside satellites that orbit the moon or perhaps at the precise locations on the lunar surface that astronauts will one day visit.
As for price, an atomic clock worthy of space travel could cost around a few million dollars, according Gramling, with crystal oscillators coming in substantially cheaper.
But, Patla said, you get what you pay for.
“The very cheap oscillators may be off by milliseconds or even 10s of milliseconds,” he added. “And that is important because for navigation purposes — we need to have the clocks synchronized to 10s of nanoseconds.”
A network of clocks on the moon could work in concert to inform the new lunar time scale, just as atomic clocks do for UTC on Earth.
(There will not, Gramling added, be different time zones on the moon. “There have been conversations about creating different zones, with the answer: ‘No,’” she said. “But that could change in the future.”)
DarnellGew
Space, time: The continual question
If time moves differently on the peaks of mountains than the shores of the ocean, you can imagine that things get even more bizarre the farther away from Earth you travel.
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To add more complication: Time also passes slower the faster a person or spacecraft is moving, according to Einstein’s theory of special relativity.
Astronauts on the International Space Station, for example, are lucky, said Dr. Bijunath Patla, a theoretical physicist with the US National Institute of Standards and Technology, in a phone interview. Though the space station orbits about 200 miles (322 kilometers) above Earth’s surface, it also travels at high speeds — looping the planet 16 times per day — so the effects of relativity somewhat cancel each other out, Patla said. For that reason, astronauts on the orbiting laboratory can easily use Earth time to stay on schedule.
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For other missions — it’s not so simple.
Fortunately, scientists already have decades of experience contending with the complexities.
Spacecraft, for example, are equipped with their own clocks called oscillators, Gramling said.
“They maintain their own time,” Gramling said. “And most of our operations for spacecraft — even spacecraft that are all the way out at Pluto, or the Kuiper Belt, like New Horizons — (rely on) ground stations that are back on Earth. So everything they’re doing has to correlate with UTC.”
But those spacecraft also rely on their own kept time, Gramling said. Vehicles exploring deep into the solar system, for example, have to know — based on their own time scale — when they are approaching a planet in case the spacecraft needs to use that planetary body for navigational purposes, she added.
For 50 years, scientists have also been able to observe atomic clocks that are tucked aboard GPS satellites, which orbit Earth about 12,550 miles (20,200 kilometers) away — or about one-nineteenth the distance between our planet and the moon.
Studying those clocks has given scientists a great starting point to begin extrapolating further as they set out to establish a new time scale for the moon, Patla said.
“We can easily compare (GPS) clocks to clocks on the ground,” Patla said, adding that scientists have found a way to gently slow GPS clocks down, making them tick more in-line with Earth-bound clocks. “Obviously, it’s not as easy as it sounds, but it’s easier than making a mess.”
Alonzounaro
Lunar clockwork
What scientists know for certain is that they need to get precision timekeeping instruments to the moon.
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Exactly who pays for lunar clocks, which type of clocks will go, and where they’ll be positioned are all questions that remain up in the air, Gramling said.
“We have to work all of this out,” she said. “I don’t think we know yet. I think it will be an amalgamation of several different things.”
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Atomic clocks, Gramling noted, are great for long-term stability, and crystal oscillators have an advantage for short-term stability.
“You never trust one clock,” Gramling added. “And you never trust two clocks.”
Clocks of various types could be placed inside satellites that orbit the moon or perhaps at the precise locations on the lunar surface that astronauts will one day visit.
As for price, an atomic clock worthy of space travel could cost around a few million dollars, according Gramling, with crystal oscillators coming in substantially cheaper.
But, Patla said, you get what you pay for.
“The very cheap oscillators may be off by milliseconds or even 10s of milliseconds,” he added. “And that is important because for navigation purposes — we need to have the clocks synchronized to 10s of nanoseconds.”
A network of clocks on the moon could work in concert to inform the new lunar time scale, just as atomic clocks do for UTC on Earth.
(There will not, Gramling added, be different time zones on the moon. “There have been conversations about creating different zones, with the answer: ‘No,’” she said. “But that could change in the future.”)
Franklox
Lunar clockwork
What scientists know for certain is that they need to get precision timekeeping instruments to the moon.
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Exactly who pays for lunar clocks, which type of clocks will go, and where they’ll be positioned are all questions that remain up in the air, Gramling said.
“We have to work all of this out,” she said. “I don’t think we know yet. I think it will be an amalgamation of several different things.”
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kraken ссылка
Atomic clocks, Gramling noted, are great for long-term stability, and crystal oscillators have an advantage for short-term stability.
“You never trust one clock,” Gramling added. “And you never trust two clocks.”
Clocks of various types could be placed inside satellites that orbit the moon or perhaps at the precise locations on the lunar surface that astronauts will one day visit.
As for price, an atomic clock worthy of space travel could cost around a few million dollars, according Gramling, with crystal oscillators coming in substantially cheaper.
But, Patla said, you get what you pay for.
“The very cheap oscillators may be off by milliseconds or even 10s of milliseconds,” he added. “And that is important because for navigation purposes — we need to have the clocks synchronized to 10s of nanoseconds.”
A network of clocks on the moon could work in concert to inform the new lunar time scale, just as atomic clocks do for UTC on Earth.
(There will not, Gramling added, be different time zones on the moon. “There have been conversations about creating different zones, with the answer: ‘No,’” she said. “But that could change in the future.”)
Gordonweinc
‘A whole different mindset’
Accurate clockwork is one matter. But how future astronauts living and working on the lunar surface will experience time is a different question entirely.
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On Earth, our sense of one day is governed by the fact that the planet completes one rotation every 24 hours, giving most locations a consistent cycle of daylight and darkened nights. On the moon, however, the equator receives roughly 14 days of sunlight followed by 14 days of darkness.
“It’s just a very, very different concept” on the moon, Betts said. “And (NASA is) talking about landing astronauts in the very interesting south polar region (of the moon), where you have permanently lit and permanently shadowed areas. So, that’s a whole other set of confusion.”
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“It’ll be challenging” for those astronauts, Betts added. “It’s so different than Earth, and it’s just a whole different mindset.”
That will be true no matter what time is displayed on the astronauts’ watches.
Still, precision timekeeping matters — not just for the sake of scientifically understanding the passage of time on the moon but also for setting up all the infrastructure necessary to carry out missions.
The beauty of creating a time scale from scratch, Gramling said, is that scientists can take everything they have learned about timekeeping on Earth and apply it to a new system on the moon.
And if scientists can get it right on the moon, she added, they can get it right later down the road if NASA fulfills its goal of sending astronauts deeper into the solar system.
“We are very much looking at executing this on the moon, learning what we can learn,” Gramling said, “so that we are prepared to do the same thing on Mars or other future bodies.”