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2016年4月8日星期五

Bluetooth Interface for NDIR Gas Sensors

During the Sensor+Test show in Nuremberg smartGAS Mikrosensorik GmbH (Germany) introduced a new generation of ndir gas sensors, which have an optional Bluetooth interface. The new silarex sensors utilise infrared absorption technology (NDIR) resulting in an extremely high selectivity. Cross sensitivities with other gases are reduced to an absolute minimum.

In the past gas sensors have been integrated directly into an apparatus or have been connected to a PLC based control system. Maintenance has been quite complicated in these kind of applications. The new Bluetooth interface opens the possibility to access the sensors via this wireless standard. The user can transfer data from the sensor to an app, which is installed either on a smartphone or a tablet computer. Maintenance becomes much easier, because the data can be stored in a centralised database. The app also allows calibration and testing of the sensor. In addition service personnel can get assistance from a central help desk.


Metal Oxide Semiconductor Gas Sensors and Neural Networks

Primitive mobile life forms, and the mobile cells of higher animals, derive their motivation and direct their navigation by chemical senses. In the simplest cases these creatures are hard-wired to swim toward nutrient concentration gradients, and to swim against irritant concentration gradients. The vestiges in humans of the sometimes extremely sensitive, selective, and differential chemical senses of primitive forms are taste, our ability to detect and identify four classes of chemicals in water solution on our tongues, and smell or olfaction, our ability to detect and identify many gases, vapors, and complex mixtures in the air passing through our noses.

Primitive "autonomous" mobile robots derive their motivation from human directive, and direct their navigation largely via artificial visual and acoustic senses. Their autonomy is thus in the discretion they are allowed in planning and executing getting from here to there; the heres and the theres generally are dictated more-or-less explicitly by humans. An evolutionary path for sophistication of the navigational abilities of mobile robots looks self-evident, and in fact such evolution is well underway.

On the other hand an evolutionary path along which mobile robots might even begin to progress toward replacing motivation by human fiat with self directed motivation is difficult to conceive, at least if the senses that drive motivation are to remain as complex as vision and hearing.

But self directed motivation of mobile robots based on one or more chemical senses is easy to imagine, and indeed is probably within the capability of existing technology. For example, we could build right now a mobile robot that would meander around a chemical plant, sniffing as it goes for gas leaks (or the vapors of liquid leaks), navigating toward them while avoiding hazards visually, yet always motivated as to overall direction (an undetermined endpoint notwithstanding) by the chemical concentration gradient, with end-point navigation perhaps directed to the offending pipe fissure or open valve by acoustic homing toward the source of the hiss, and effecting simple repairs or summoning human assistance (with appropriate hazard warning) based on the fusion of chemical,visual, and acoustic sensory information in context. Similar scenarios can easily be imagined for firefighting robots, prospecting robots, rescue robots, contraband nterception robots, and others.

Toward this end, my colleagues and I have been studying chemical sensing, not with the traditional goal of inventing alternative or improved instruments for doing precise chemical analysis, but rather from the perspective of exploring alternative approaches to an artificial sense of smell to motivate autonomous activity.

First, I describe the characteristics of metal oxide semiconductor gas sensors used as gas sensors, particularly for combustibles. Response, as a change in resistance, depends on combustible gas identity and concentration, sensor temperature, and also on the concentrations of other gases and vapors present,i.e.,response to a mixture is not a linear superposition of responses to the individual components. These sensors inherently respond to broad classes of compounds, but differential responses conducive to signature identification can be induced by variation of parameters such as temperature and catalyst nature and concentration. I then survey the olfactory system, in contrast with other biological sensory and sensor interpretation systems, in analogy with MOS gas sensors, and in analogy between its neurological organization and the organization of simple artificial neural networks.

I then describe the class of large area thick film MOS resistors that we have constructed with a spatial gradient in relative sensitivity induced by differential heating. Multiple resistance measurements along the temperature gradient yield a multi-feature signature that we analyze and interpret using artificial neural networks. In particular, I contrast the approach that emphasizes binary or nearly binary unit activities, and thus forces every mixture into a class distinct from the classes of its single species components, with an approach that is less rigidly binary, encouraging creation of only enough classes to account for the individual species present, and putting mixtures into multiple classes in proportion to the concentration of the mixture components in each class.




2016年4月7日星期四

Metal Oxide Semiconductor Gas Sensors in Environmental Monitoring | semiconductor gas sensor

Metal oxide semiconductor gas sensors are utilised in a variety of different roles and industries. They are relatively inexpensive compared to other sensing technologies, robust, lightweight, long lasting and benefit from high material sensitivity and quick response times. They have been used extensively to measure and monitor trace amounts of environmentally important gases such as carbon monoxide and nitrogen dioxide.

In this review the nature of the gas response and how it is fundamentally linked to surface structure is explored. Synthetic routes to metal oxide semiconductor gas sensors are also discussed and related to their affect on surface structure. An overview of important contributions and recent advances are discussed for the use of metal oxide semiconductor sensors for the detection of a variety of gases—CO, NOx, NH3 and the particularly challenging case of CO2. Finally a description of recent advances in work completed at University College London is presented including the use of selective zeolites layers, new perovskite type materials and an innovative chemical vapour deposition approach to film deposition.
 
Since 1962 it has been known that absorption or desorption of a gas on the surface of a metal oxide changes the conductivity of the material, this phenomenon being first demonstrated using zinc oxide thin film layers . The sensitivity of a surface to a gas can be as low as parts per billion (ppb) . It is highly desirable that metal oxide semiconductor sensors have a large surface area, so as to adsorb as much of the target analyte as possible on the surface, giving a stronger and more measurable response (especially at low concentrations). Advances in fabrication methods have enabled the production of low-cost sensors with improved sensitivity and reliability compared to those formed using previous methods. Production costs are kept low due to the simplicity of metal oxide semiconductor gas sensor devices. Their ability to be produced quickly and on a large scale with easily controllable processes makes them a desirable technology to exploit.

This paper aims to: (i) introduce the fundamental reasons for sensing gases, (ii) discuss sensor response mechanisms in metal oxide semiconductor sensors, and (iii) show how non-target gases can interfere with the response of such a sensor. The review will then present a summary of recent advances on sensors that have been developed for specific gases such as carbon dioxide and carbon monoxide, and in the final section discuss new approaches developed in our labs at University College London such as the ways in which zeolites can be used to increase specifity, selectivity and efficiency of sensors.

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2016年3月16日星期三

United States fiber optic sensor heads industry 2016 market research report just published

The report provides a basic overview of the industry including definitions, classifications, applications and industry chain structure. The Fiber Optic Sensor Heads market analysis is provided for the United States markets including development trends, competitive landscape analysis, and key regions development status.
Development policies and plans are discussed as well as manufacturing processes and Bill of Materials cost structures are also analyzed. This report also states import/export consumption, supply and demand Figures, cost, price, revenue and gross margins.
The report focuses on United States major leading industry players providing information such as company profiles, product picture and specification, capacity, production, price, cost, revenue and contact information. Upstream raw materials and equipment and downstream demand analysis is also carried out.
The Fiber Optic Sensor Heads industry development trends and marketing channels are analyzed. Finally the feasibility of new investment projects are assessed and overall research conclusions offered.
With 147 tables and figures the report provides key statistics on the state of the industry and is a valuable source of guidance and direction for companies and individuals interested in the market.

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2016年3月11日星期五

Epsilon Optics Launches Ultra-Compact, Fibre-Optic Sensor Interrogator

Epsilon Optics has just launched a new ultra-compact fibre optic sensor interrogator with 8 channels and data acquisition rates of up to 10kHz.

Epsilon Optics says the interrogator as “probably one of the smallest multi-channel interregatos on the market,” claiming it can interrogate up to 800 sensors, each with a measurement range of 9000 microstrain.

Epsilon Optics supplies fibre optic sensing systems for measuring strain in all kinds of composite structures from yacht masts to tidal energy turbines and helicopter rotor blades. The new instrument has been developed primarily to satisfy an increasing number of applications in aerospace and defence markets for strain sensing in a wide range of composite, aluminium and hybrid structures including fixed and rotary wings, fuselage, and landing gear. However, Epsilon Optics explains, it is also likely to be appropriate for high performance yachts and other applications requiring high acquisition rates for large numbers of sensors and where size and weight must be minimised.

According to Epsilon Optics, the new high-speed 8 channel interrogator uses Moog Insensys Time Division Multiplexing (TDM) to enable up to 100 sensors to be multiplexed on a single optical fibre whilst every sensor retains the full measurement range of the instrument. The 8 optical channels are implemented by means of a high speed, solid-state optical switch to ensure a very high level of ruggedness and reliability. Consuming under 4W of power makes it suitable for battery operation and other low power applications. The unit represents a significant development of the very successful 3 channel high-speed interrogator which was tested to aerospace standard DO106E and also successfully operated whilst mounted on a helicopter rotor-head.

Epsilon Optics explains that fibre optic sensing is now firmly established as the most appropriate and reliable technology for monitoring strains, loads, and structural health of composite structures, effectively providing the structure with its own embedded nervous system.

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2016年3月7日星期一

CO2 Sensor SKU:SEN0159

Introduction
Greenhouse Effect is melting the iceberg every minute,. By knowing the exact concentration of CO2, we can do something to reduce the CO2 and to protect our earth. For that reason, a HQ CO2 sensor is designed by DFRobot engineer . This is the first CO2 sensor in OSHW market. The output voltage of the module falls as the concentration of the CO2 increases. The potentiometer onboard is designed to set the threshold of voltage. As long as the CO2 concentration is high enough (voltage is lower than threshold), a digital signal (ON/OFF) will be released.


• Features:
o It has MG-811 sensor module onboard which is highly sensitive to CO2 and less sensitive to alcohol and CO, Low humidity & temperature dependency.
o Onboard heating circuit brings the best temperature for sensor to function. 5V power input will be boosted to 6V for heating.
o This sensor has an onboard conditioning circuit for amplifying output signal.

Specification
• Operating voltage: 5V
• Interface: Analog
• One digital output (Once the CO2 concentration is over the set threshold value, it will output digital HIGH, 5V)
• Onboard heating circuit
o Heating Current: 200mA
o Heating Power: 1200mW
• Size: 32x42mm

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2016年3月3日星期四

New composite material as CO2 sensor

Material scientists at ETH Zurich and the Max Planck Institute of Colloids and Interfaces in Potsdam have developed a new type of sensor that can measure carbon dioxide (CO2). Compared with existing sensors, it is much smaller, has a simpler construction, requires considerably less energy and has an entirely different functional principle. The new sensor consists of a recently developed composite material that interacts with CO2 molecules and changes its conductivity depending on the concentration of CO2 in the environment. ETH scientists have created a sensor chip with this material that enables them to determine CO2 concentration with a simple measurement of electrical resistance.
The basis of the composite material is a chain-like macromolecule (polymer) made up of salts called ionic liquids, which are liquid and conductive at room temperature. The name of the polymers is slightly misleading as they are called «poly(ionic liquid)s» (PIL), although they are solid rather than liquid.
Unexpected properties
Scientists worldwide are currently investigating these PIL for use in different applications, such as batteries and CO2 storage. From their work it is known that PIL can adsorb CO2. “We asked ourselves if we could exploit this property to obtain information on the concentration of CO2 in the air and thereby develop a new type of gas sensor,” says Christoph Willa, doctoral student at the Laboratory for Multifunctional Materials.
Willa and Dorota Koziej, a team leader in the laboratory, eventually succeeded by mixing the polymers with specific inorganic nanoparticles that also interact with CO2. By experimenting with these materials, the scientists were able to produce the composite. “Separately, neither the polymer nor the nanoparticles conduct electricity,” says Willa. “But when we combined them in a certain ratio, their conductivity increased rapidly.”
Chemical changes in the material
It was not only this that astonished the scientists. They were also surprised that the conductivity of the composite material at room temperature is CO2-dependent. “Until now, chemoresistive materials have displayed these properties only at a temperature of several hundred degrees Celsius,” explains Koziej. Thus, existing CO2 sensors made from chemoresistive materials had to be heated to a high operating temperature. With the new composite material, this is not necessary, which facilitates its application significantly.
Exactly how the CO2-dependant changes in conductivity were produced is not yet clear; however, the scientists have found indications that a chemical change induced by the presence of CO2 occurs foremost at the interface between the nanoparticles and the polymers at the nanometre scale. “We think that CO2 effects the mobility of the charged particles in the material,” says Koziej.
Breathing gauges for scuba divers
With the new sensor, scientists are able to measure CO2 concentration over a wide range – from a concentration of 0.04 volume percent in the earth’s atmosphere to 0.25 volume percent.
Existing devices that can detect CO2 measure the optical signal and capitalise on the fact that CO2 absorbs infrared light. In comparison, researchers believe that with the new material much smaller, portable devices can be developed that will require less energy. According to Koziej, “portable devices to measure breathing air for scuba diving, extreme altitude mountaineering or medical applications are now conceivable”.

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2016年2月25日星期四

Fiber optic sensor

A fiber optic sensor is a sensor that uses optical fiber either as the sensing element ("intrinsic sensors"), or as a means of relaying signals from a remote sensor to the electronics that process the signals ("extrinsic sensors"). Fibers have many uses in remote sensing.

Depending on the application, fiber may be used because of its small size, or because no electrical power is needed at the remote location, or because many sensors can be multiplexed along the length of a fiber by using light wavelength shift for each sensor, or by sensing the time delay as light passes along the fiber through each sensor.

Time delay can be determined using a device such as an optical time-domain reflectometer and wavelength shift can be calculated using an instrument implementing optical frequency domain reflectometry.

Fiber optic sensors are also immune to electromagnetic interference, and do not conduct electricity so they can be used in places where there is high voltage electricity or flammable material such as jet fuel. Fiber optic sensors can be designed to withstand high temperatures as well.

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2016年2月24日星期三

Brief Introduction about CO2 Gas Sensor

 The Carbon Dioxide Gas Sensor - Ultra 1000-IR is a microprocessor based sensor specializing in the detection of CO2 gas using Infrared sensor technology. The self-contained sensor features user friendly interface and menu driven calibration procedure and configuration.

The CO2 gas sensor uses Non Dispersive Infrared (NDIR),a technique to monitor the CO2 vapors. The detection principle is based on measuring the absorption of infrared radiation using dual wavelength infrared detectors. The IR detectors measure the intensity of two wavelengths, one absorbed by the target gases and other unaffected by the target gases (the gas concentration is determined by comparing the detector signals).

The complete CO2 sensor comes with a stainless steel sensor head assembly, a user connection board and a transmitter board assembly - all of the sensor's electronics are enclosed in an explosion proof instrument box. Ultra 1000-IR provides a 4-20mA signal proportional to 0-100% LEL gas at the sensor. In addition the sensor may be addressed via MODBUS RTU interface. The MODBUS output provides sensor status, alarm & fault conditions.

Ultra 1000-IR CO2 Gas Sensor Features:
• Low Maintenance.
• 4-20mA Analog Output
• Optional RS485 MODBUS RTU Serial Communication
• 12-28 VDC Operation
• Automated Non-Intrusive Calibration
• Optional Adjustable Alarm Relay Contacts
• Liquid Crystal display with back light

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2016年2月17日星期三

Fiber Optic Pressure Sensing Systems for Life Science Researchers

The new FISO-LS fiber optic pressure sensor system, specifically designed for life-science research and available from Harvard Apparatus in the United States and many other regions, is the first FISO pressure sensing system designed for multi-use, non-disposable applications.

The small sensors, at 300-, 640- and 1000-micron diameters and pressure ranges of +/- 300 mmHg and 0-10 bar, are designed to be used in any pre-clinical physiological pressure measurement application. Whether the researcher is measuring intracranial, gastro-intestinal, uro-genital, respiratory, spinal, intraocular, left ventricular pressure and more, the system is designed for accuracy.

As signal transduction does not rely on fluid-filled catheters, there is no need to be concerned with hydrostatic pressure columns, dampening by air bubbles or the natural dampening of signal in fluid transduction.

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