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Showing posts with label 3d scanner. Show all posts
Showing posts with label 3d scanner. Show all posts

Thursday, January 23, 2014

3D Scanned Cell

 Imaging  
A new 3D imaging technique for live cells uses a conventional microscope to capture image slices throughout the depth of the cell, then computationally renders them into one three-dimensional image. The technique uses no dyes or chemicals, allowing researchers to observe cells in their natural state.




Living cells are ready for their close-ups, thanks to a new imaging technique that needs no dyes or other chemicals, yet renders high-resolution, three-dimensional, quantitative imagery of cells and their internal structures – all with conventional microscopes and white light.

Called white-light diffraction tomography (WDT), the imaging technique opens a window into the life of a cell without disturbing it and could allow cellular biologists unprecedented insight into cellular processes, drug effects and stem cell differentiation.

The team of University of Illinois researchers, led by electrical and computer engineering and bioengineering professor Gabriel Popescu, published their results in the journal Nature Photonics.

“One main focus of imaging cells is trying to understand how they function, or how they respond to treatments, for example, during cancer therapies,” Popescu said. “If you need to add dyes or contrast agents to study them, this preparation affects the cells’ function itself. It interferes with your study. With our technique, we can see processes as they happen and we don’t obstruct their normal behavior.”

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Because it uses white light, WDT can observe cells in their natural state without exposing them to chemicals, ultraviolet radiation, or mechanical forces – the three main methods used in other microscopy techniques. White light also contains a broad spectrum of wavelengths, thus bypassing the interference issues inherent in laser light – speckles, for example.

The 3D images are a composite of many cross-sectional images, much like an MRI or CT image. The microscope shifts its focus through the depth of the cell, capturing images of various focus planes. Then the computer uses the theoretical model and compiles the images into a coherent three-dimensional rendering.

The greatest potential of WDT, according to the researchers, is the ability to study cells in three dimensions over time. Since the cells are not altered, they can be imaged repeatedly, allowing researchers a glimpse into the dynamics of a cell as it goes about its life – or as it is treated with a new drug.

“As a cell grows we can see the change in all three dimensions,” said Taewoo Kim, a graduate student and first author of the paper. “We can see the dynamics of the cell in 3-D, which hasn’t been done in a quantitative manner. For example, we could see, in the span of a minute or over a cell’s lifetime, how it grows and how the things in the cell move around.”

“With this imaging we can tell at what scale things within the cell are transported randomly and at what scale processes are actually organized and deterministic,” Popescu said. “At first glance, the dynamics looks pretty messy, but then you look at it – we stare at movies for hours and hours – and you realize it all makes sense. Everything is organized perfectly at certain scales. That’s what makes a cell alive. Randomness is just nature’s way to try new things.”

WDT uses a component that adds onto a conventional phase contrast microscope, a common piece of equipment in biology labs, without altering the microscope itself. The researchers used conventional microscopes with the intention of making these new optics principles easily accessible for biologists. The researchers hope that this will allow rapid large-scale adoption of WDT, and Popescu founded a startup company, Phi Optics, to help achieve that goal.

In addition to biological applications, the WDT technique has implications in the broader field of optics as the researchers pushed the boundaries of physics by applying scattering theory to imaging optics.

“The physics behind this technique is another thing we were fascinated about,” Kim said. “Light propagation in general is studied with approximations, but we’re using almost no approximation. In a very condensed form, we can perfectly show how the light changes as it passes through the cell.”

“We started on this problem two years ago, trying to formulate mathematically the sectioning effect observed in spatial light interference light microscopy (SLIM),” said Renjie Zhou, a graduate student and co-first author of the paper. “We came up with equations which eventually described WDT. The final equation is beautiful and the theory opens opportunities for solving other optics problems in a new theoretical language.”

Next, the researchers hope to pursue cross-disciplinary collaborations to explore applications of WDT in biology as well as expansions of the imaging optics demonstrated in WDT. For example, they are using WDT to watch stem cells as they differentiate in hopes of better understanding how they turn into different cell types. Since stem cells are so sensitive, only a chemical-free, non-invasive, white-light technique such as WDT could be used to study them without adverse effects.



SOURCE  University of Illinois at Urbana-Champaign

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Wednesday, December 11, 2013


 3D Scanning  
The Structure Sensor is now available for pre-order from Occipital, the creator of the gadget.  The Structure clips onto your iPad and will be bundled with augmented reality and 3D scanning apps.




Startup Occipital has already raised over $1 million on Kickstarter, and now is in the pre-order phase for its Structure 3D sensor.

The Structure is small 3D sensor that clips onto the back of your iPad, and hooks into the Lighting Connector.  With the sensor users can scan objects for other applications or 3D printing, and for augmented reality applications.  With an independent battery, the device won't eat up your devices battery life either.

The company is now opening up its platform to developers, so no one really knows what future applications may make use of the scanner.

Structure 3D Sensor

Richard Darell at Bit Rebels says, "It’s not always that you stumble over technology that you know is going to fundamentally change the way we do things. The Structure Sensor is not only a device that will capture real life objects and create them into virtualized 3D representation of them, it is way more than that."

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The Structure Sensor has been designed from the ground up to be mobile. Occipital put a lot of thought into making the Structure Sensor work perfectly with the iPad and other mobile devices. The goal was to make a device that enabled incredible 3D scanning applications, was easy to use, had great battery life, was compact, and looked like beautiful, precision hardware.

The Structure Sensor chassis is machined out of a single piece of aluminum that serves as both an aesthetic exterior and as a thermal core that keeps the precision optics inside at an optimal temperature.  It’s also anodized for an appealing finish.  At its top, the Structure Sensor has a chemically hardened glass surface that optimizes the depth image quality, while also protecting the infrared emitter and camera inside.

Turn Your iPad into a 3D Scanner

Out of the box the Structure will come with the following functions:
1. Room Capture: Easily capture a 3D model of a room by simply spinning around with your Structure Sensor and iPad. Then, tap any two points to retrieve distances. 
2. Fetch: A virtual pet to play fetch with in the physical world around you. 
3. Ball Physics: An augmented reality demo where virtual balls interact with the dense geometry of the world. 
4. Object Scanner:  Capture models of objects and export them to CAD software or for 3D printing.  You can also upload models directly to Shapeways.com for 3D printing.
Structure 3D Scanner for iPad

Length x Width x Height 119.2mm x 27.9mm x 29mm
Weight 99.2 grams
Minimum Distance 40 centimeters
Maximum Distance 3.5+ meters
Precision 1% of measured distance (typical)
Resolution VGA (640 x 480) / QVGA (320x240)
Framerate 30 / 60 frames per second
Battery Life 3-4 hours of active sensing, 1000+ hours of standby
Illumination Infrared structured light projector, Uniform infrared LEDs
Field of View Horizontal: 58 degrees, Vertical: 45 degrees

The Structure Sensor is now available for pre-order here. The price is only $349 - much less than other 3D scanners.





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Thursday, August 22, 2013

Makerbot 3D Digitizer

 3D Scanning  
3D Printing company Makerbot has released their Digitizer, a 3D scanner that will allow you to scan in real objects and use them for 3D printing or digital modification.  Priced below competitive products, the Digitizer could be a game-changer.




S ince March, the team at MakerBot have been teasing their Digitizer desktop 3D scanner. Now they’re just about ready release it.

Priced at $1,400, you too can scan all the little knick-knacks in your life and turn them into 3D schematics to print or share with others.

To use the Digitizer, you place an object on its central turntable and initiate the device.  The system uses a pair of lasers that will scan the object’s surface geometry and turn that cloud of data points into a 3D model.

MakerBot says the whole process takes about 12 minutes, after which you’re able to recreate the item a 3D printer or modify the data using software such as Pixologic's ZBrush.

3d scanning workflow

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MakerBot is easily one of the best known proponents of the 3D printing movement, and a device like Digitizer may just be what the movement needs to make 3D printing more mainstream.

CEO Bre Pettis referred to the Digitizer as a “game changer” for the 3D printing movement and it’s not hard to see why. For the past two years now, MakerBot’s efforts have largely been about making the process of 3D printing as accessible as possible. 3D printing novices can get a feel for turning the contents of pre-produced files into actual physical objects.

The turntable can only support objects that are 3kg (or about 6.5lbs) or lighter, and you should ideally use the thing a very well-lit room. The Digitizer promises to be fast and easy, and at $1,400 it is priced well below competitive products such as the NextEngine 3D scanner or the new high resolution FROGScan system from Streamline Automation.

According to Makerbot, the Digitizer captures enough points to create about 200,000 triangles for each new 3D model. It can capture details as small as 0.5 mm, and surface depth as shallow as 0.5 mm. The dimensional accuracy of the MakerBot Digitizer’s is ± 2 mm, meaning that when you scan an object, the dimensions of your 3D model will be within 2 mm of your original object.


SOURCE  Makerbot, TechCrunch

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