torsdag 20 augusti 2015

Capacitive micromachined ultrasonic transducers

https://en.wikipedia.org/wiki/Capacitive_micromachined_ultrasonic_transducers

Capacitive micromachined ultrasonic transducers

From Wikipedia, the free encyclopedia
Capacitive micromachined ultrasonic transducers (CMUT) is a relatively new concept in the field of ultrasonic transducers. Most of the commercial ultrasonic transducers today are based on piezoelectricity. CMUTs are the transducers where the energy transduction is due to change in capacitance. CMUTs are constructed on silicon using micromachining technique. A cavity is formed in a silicon substrate, and a thin layer suspended on the top of the cavity serves as a membrane on which a metallized layer acts anelectrode, together with the silicon substrate which serves as a bottom electrode.
If an AC signal is applied across the biased electrodes, the vibrating membrane will produce ultrasonic waves in the medium of interest. In this way it works as a transmitter. On the other hand, if ultrasonic waves are applied on the membrance of biased CMUT, it will generate alternating signal as the capacitance of the CMUT is varied. In this way, it works as a receiver of ultrasonic waves.[1]
As CMUTs are micromachined devices, it is easier to construct 2D and 3D arrays of transducers using this technology. This means large numbers of CMUTs could be included in a transducer array providing larger bandwidth compared to other transducer technologies. To achieve a high frequency operation using CMUTs is easier due to its smaller dimensions.[2] The frequency of operation depends on the cell size (cavity of membrane), and on the stiffness of the material used as a membrane. As it is built on silicon, the integration of electronics would be easier for the CMUTs compared to other transducer technologies. The properties to use in high frequency with large bandwidth makes it a good choice to use as a transducer in medical imaging, especially in the anintravascular ultrasound (IVUS). Because of its broader bandwidth, it could be used in second-harmonic imaging. Also some experiments have been performed to use CMUTs as hydrophones.

Fabrication methods[edit]

Sacrificial release surface micromachining[edit]

Surface micromachining is the traditional way of manufacturing CMUTs.[3] The major limitations of this method include:
  • complicated manufacturing process for constructing and sealing etch/drainage channels of the sacrificial material;
  • the need for sacrificial-release channels reduces the available space for transducers, thereby reducing the achievable sound generation capability;
  • limited control of layers' thickness during the manufacturing process;
  • limited cavity thickness due to residues of fluid inside the cell cavity, which can cause stiction between the upper and lower parts of the cell, if the cell is not thick enough.[4]

Wafer bonding[edit]

Wafer bonding is the most popular method. In this method, a CMUT is built from two separate wafers, which are later bonded to achieve cells with cavities.

Fusion-bonding[edit]

  1. Fusion-bonding of wafers.[5][6][7][8]
  2. Multi-user MUMPS (polyMUMPS) process. CMUTs manufactured in the multi-user MUMPS were reported to have reduced performance, such as relatively low resonating frequency.[9]

Anodic bonding[edit]

In anodic bonding, wafers are sealed at high temperature and in the presence of electric field.[10]

Top-down process[edit]

In this method the manufacturing is performed in reverse order, compared to the traditional way.[11][12]

Integration with electrical circuits[edit]

As mentioned earlier, one of the significant advantages of CMUTs over piezoelectric transducers is the ability to integrate CMUTs with electrical circuits, using existing manufacturing methods.

Flip-chip[edit]

CMUT on CMOS[edit]

Benchmarking[edit]

CMUT performance is benchmarked using pitch-catch and pulse-echo experiments, and operation uniformity is tested in air and in immersion. In a pitch-catch experiment, the transducer is benchmarked using a hydrophone, and in a pulse-echo experiment, the transducer is used both for transmitting and receiving, while comparing the measured signal to the hydrophone response.

Applications[edit]

The CMUT-on-CMOS technology and the flip-chip process allows tight integration of CMUTs with front-end electronics, which is necessary for miniature medical imaging devices, such as IVUS.

Challenges in CMUT operation[edit]

Cross-talk between array elements[edit]

Dielectric charging

måndag 17 augusti 2015

Cinema Releases 20150817

Cinema Releases 20150817

Movies I've seen at the cinema or think is interesting to see ...

Filmer jag sett på bio eller tycker verkar intressanta att se...

20150625 Terminator - Genisys - Paramount - Skydance
                    Official - http://www.terminatormovie.com/#home
                    After C:n T1 and T4, expectations are high
20150701 Minioner 3D - Universal - Illumination Entertainment
                    Official - http://www.minionerfilmen.se/showtimes
                    Just be funny ?
20150722 Ant-man 3D - Marvel Studios
                    Official - http://marvel.com/antmanpremiere
                    I had high expectations of X-man and Captain America, is this same grade
20150731 Mission: Impossible - Rogue Nation - Paramount Picture - Skydance
                    Official - http://www.missionimpossible.com/
                    In last MI, they used Chip like RFID, to communicate
20150807  Fantastic 4  - Marvel studios - 20th Century Fox
                    Official - http://www.fantasticfourmovie.com/trailer
                    Marvels oldest superheroteam in a re-imagining.
20150812  Pixels 3D - Columbia Pictures - Sony
                    Official - http://www.pixels-movie.com/site/
                    Pixel in reel, this got to be funny and cool
20150814  The man from U.N.C.L.E - Warner Bros
                    Official - http://www.manfromuncle.com/#home
                    If u think Agent007 is cool, u probely like this 2

söndag 26 juli 2015

http://telepathherosummary.blogspot.se/

http://telepathherosummary.blogspot.se/

for u thats want a summary
http://telepathherosummary.blogspot.se/

lördag 25 juli 2015

Natt med Annelie ?

Idag träffa jag en tjej från vetlanda som påstod att hon heter Annelie eller Pernilla, jag kolla av henne, och så hette hon förståss ej. Hon attackera mig med massa snack. men var eg inte så tuff. vad hon ville var inte klarlagt.

some word about receiver and wireless, with cmos mems loudspeaker

http://www.thefreedictionary.com/receiver

4. (Electronics) the equipment in a telephone, radio, or television that receives incoming electrical signals or modulated radio waves and converts them into the original audio or video signals

6. (Electronics) the equipment in a radar system, radio telescope, etc, that converts incoming radio signals into a useful form, usually displayed on the screen of a cathode-ray oscilloscope

ThesaurusAntonymsRelated WordsSynonymsLegend:

Noun1.receiver - set that receives radio or tv signalsreceiver - set that receives radio or tv signals
antennatransmitting aerialaerial - an electrical device that sends or receives radio or television signals
direction finder - radio; determines the direction of incoming radio waves
radio chassis - a chassis for a radio receiver
radio receiverradio setreceiving settunerradiowireless - an electronic receiver that detects and demodulates and amplifies transmitted signals
satellite receiver - a receiver on a communications satellite
set - any electronic equipment that receives or transmits radio or tv signals; "the early sets ran on storage batteries"
boob tubegoggle boxidiot boxtelevision receivertelevision settellytv settvtelevision - an electronic device that receives television signals and displays them on a screen; "the British call a tv set a telly"




onsdag 22 juli 2015

Remember MEMS Sensor

sunlight - Iridium flare - convert to watt/m3 (work as a rectenna)
tranceiver - satellite modem
RFID - temperated battery - local heater
CMOS MEMS Sensor (ex vibrator) (CMOS MEMS Loudspeaker and CMOS MEMS Microphone)

Mems Sensor - vibration

Mems Sensor - Vibration

system of many tiny microelectromechanical systems (MEMS) such as sensors, robots, or other devices, that can detect, for example, lighttemperaturevibrationmagnetism, or chemicals. They are usually operated on acomputer network wirelessly and are distributed over some area to perform tasks, usually sensing through radio-frequency identification. Without an antenna of much greater size the range of tiny smart dust communication devices is measured in a few millimeters and they may be vulnerable to electromagnetic disablement and destruction by microwave exposure.

https://en.wikipedia.org/wiki/Vibration


Vibration

From Wikipedia, the free encyclopedia
For mechanical oscillations in the machining context, see Machining vibrations.
For other uses, see Vibration (disambiguation).
Vibration is a mechanical phenomenon whereby oscillations occur about an equilibrium point. The oscillations may be periodic such as the motion of a pendulum or random such as the movement of a tire on a gravel road.
Vibration is occasionally "desirable". For example, the motion of a tuning fork, the reed in a woodwind instrument or harmonica, or mobile phones or the cone of a loudspeaker is desirable vibration, necessary for the correct functioning of the various devices.
More often, vibration is undesirable, wasting energy and creating unwanted sound – noise. For example, the vibrational motions of engineselectric motors, or any mechanical device in operation are typically unwanted. Such vibrations can be caused by imbalances in the rotating parts, uneven friction, the meshing of gear teeth, etc. Careful designs usually minimize unwanted vibrations.
The study of sound and vibration are closely related. Sound, or "pressure waves", are generated by vibrating structures (e.g. vocal cords); these pressure waves can also induce the vibration of structures (e.g. ear drum). Hence, when trying to reduce noise it is often a problem in trying to reduce vibration.