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2016年7月29日星期五

Ratiometric optical oxygen sensor based on phosphorescence quenching

Molecular oxygen plays a pivotal role in various biological, chemical and environmental reactions, thus detection of oxygen has attracted much attention. Traditional methods of sensing oxygen including classical Winkler titration, electroanalysis, chemiluminescence and thermoluminescence suffer from limitations such as relatively long response time, oxygen consumption during the sensing process and poor selectivity.

The ground state of oxygen is a triplet state, so oxygen can quench the long-lived triplet phosphorescence of luminophores. Optical oxygen sensors to detect oxygen through phosphorescence have become a very active research field because of their good sensitivity and selectivity, full reversibility, simplicity, suitability for real-time measurements and minimal consumption of oxygen during measurements. Common detection modalities in optical oxygen sensing include phosphorescence intensity, ratiometric and lifetime measurements.

Ratiometric intensity measurements at two different wavelengths allow more reliable detection than at a single wavelength because oxygen responses depend on the ratio of the oxygen sensor and reference luminescent signals. In addition, most ratiometric optical oxygen sensors exhibit a perceivable color change, which is useful for rapid visual sensing. This review focuses on the mechanism of oxygen sensing, material designs for ratiometric sensors and cell imaging. The future development of oxygen sensors is also discussed.


2016年7月27日星期三

Research Report On Global Alcohol Tester Market Expected to Grow at CAGR in % by 2021

MRS Research Group added new research report on “Global Alcohol Tester Market 2015 Market Trends,Growth,Share,Size and Forecast to 2022” to its database.
The ‘Global Alcohol Tester Industry, 2015-2022 Market Research Report’ is the professional and comprehensive in-depth analysis of the global as well as China market. The report provides quantitative forecasting and trends analysis on the Alcohol Tester market status. The report also provides important and manufacturers and key sources includes in the study which guide and direct companies and individuals interest in the industry.
The global and China Alcohol Tester market is affected by many internal and external elements. The report represents synopsis of the industry including definition, types, applications, DROS, technology and others. The report has provides forward-looking insight of the experienced team of analysts and researchers. The report includes major competitors in global and China Alcohol Tester us sources, tool and techniques use to gather information like company profile, product specifications,future trends, value chain analysis and 2015-2022 revenue for each company.
The report helps to clear market picture with suitable schematics diagrams, statistical analysis, company profit, supply-demand and Chinese import–export. The global and China Alcohol Tester market is categorized on the basis of types, application, technology and end-users, geographywhichever is applicable.
The report has studies in-depth analysis and deep segmentation to possible micro levelsand possible segmentation, dominant segments in terms of types, application, end-user, downstream demand, along with current market dynamics. Moreover, includes future projects in the market with most reliable information indispensable for marketplace.
Table of Content Of Alcohol Tester Market (Index) :
Chapter One Introduction of Alcohol Tester Industry
1.1 Brief Introduction of Alcohol Tester
1.2 Development of Alcohol Tester Industry
1.3 Status of Alcohol Tester Industry

Chapter Two Manufacturing Technology of Alcohol Tester
2.1 Development of Alcohol Tester Manufacturing Technology
2.2 Analysis of Alcohol Tester Manufacturing Technology
2.3 Trends of Alcohol Tester Manufacturing Technology

Chapter Three Analysis of Global Key Manufacturers
3.1 Company A
3.1.1 Company Profile
3.1.2 Product Information



Bosch oxygen sensor marks 40 years on market

Robert Bosch LLC is celebrating the 40th anniversary of its invention of the automotive oxygen sensor and is marking the production of its one billionth oxygen sensor.
An integral part of today’s sophisticated vehicles, automotive oxygen sensors are now a standard feature on all gasoline and most diesel engines worldwide. No other vehicle component stands for “clean driving” as much as the automotive oxygen sensor does, keeping the fuel system running efficiently to protect the environment from harmful emissions while helping to save fuel cost, according to Bosch.
“Since pioneering this technology four decades ago, Bosch has continued to lead the way in automotive oxygen sensor design and innovation,” says Eric Yagley, senior product manager oxygen sensors for Robert Bosch LLC, Automotive Aftermarket North America. “Today’s Bosch Wideband oxygen sensor has a more sophisticated sensing element that provides a signal to the vehicle’s ECU that is proportional to the amount of oxygen in the exhaust.”
The automotive oxygen sensor was developed by Bosch as emissions systems were beginning to be established in the 1970s. At that time, a growing need to meet new stringent emission standards resulted in countless rounds of testing and development, and ultimately the first automotive oxygen sensor, the Bosch Lambda Sensor, was created.
As an early adopter of the technology, Volvo was the first manufacturer to equip its vehicles with automotive oxygen sensors, starting with the 1976 Volvo Lambda Sonde. In the years since, automotive oxygen sensors have become an essential part of the modern emissions system which monitors and regulates the combustion process, with many applications utilizing multiple oxygen sensors in the vehicle exhaust system.
The company says one of the best testaments to the quality of Bosch oxygen sensors came in 2012. The NASCAR Sprint Cup Series made the switch from carbureted to fuel-injected engines, and Bosch became the exclusive oxygen sensor of NASCAR. In 2016, Bosch extended its partnership with NASCAR to include fuel pumps and injectors as well.
Bosch offers a full coverage program of aftermarket automotive oxygen sensors, produced on the same manufacturing lines as Bosch OE sensors. These aftermarket sensors feature OE form, fit and function to meet or exceed manufacturer specifications. Bosch Oxygen Sensors are jointly engineered and manufactured in the United States and Germany.

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2016年7月26日星期二

The Most Incredible CO2 Sensor in the World

Detecting carbon dioxide emissions has always been a little hit and miss when it comes to larger areas: the sensor technology we currently have isn’t well-suited to large areas, and it’s extremely expensive.
This is, of course one of the multitudes of reasons why fossil fuels have been able to hold off the energy lobby for so long. This has left environmentalists searching for a better way to police the pollutant and now they may have found one.
It’s so simple that it is almost confounding that this hasn’t existed all along: the Hemholtz Centre for Environmental Research has designed a simple carbon dioxide sensor (CO2 sensor) based on the principle of diffusion. In case you, like me, chose to skate through your chemistry class in the last term of your senior year perpetually hung over, diffusion is the movement of particles from an area of high concentration to an area of low concentration. This means that certain gases will always move through a membrane faster than others, allowing you to measure concentrations on either side and, using the rate of transfer, establish the concentration in the surrounding atmosphere.
These MeGa (Membrane-based Gas sensors) are presently planned to be used in fields like landfill monitoring, where it was previously prohibitively expensive to use sensors to keep track of emissions. They may be adapted for use in other applications however, such as gas pipelines, sewers, bodies of water, and, most exciting, at least to those of you that believe in carbon sequestration, drilling and capture of carbon dioxide.
This technology of course, has great implications far beyond industrial use. The scientific team that developed it suggests a wide variety of commercial uses will be established and that they will be able to scale down their invention for use in small spaces like private homes and scientific labs. The main victory here however, is that information gathered before this was merely a projection, now the data is far superior; finding the hottest spots on the planet for carbon emissions is the first step to cutting them back.

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2016年7月25日星期一

The Oxygen Sensor and How it Works

An oxygen sensor is also known as an (O2 Sensor) which is a vital component of any vehicle’s emission system.

Some old vehicles have fuel injection systems, while all new vehicles have them, in which a computer will regulate the amount of fuel that is delivered to the engine. The computer will communicate with the sensors throughout the system to determine how much fuel to deliver to the engine and of course, how frequently.

The oxygen sensor is found in the exhaust manifold.
One end of the oxygen sensor will detect the oxygen levels in the exhaust flow. The other end will connect to the wiring that gives all the information to the computer.

The computer will then use the sensor readings to make sure that the engine is getting the right amount of fuel. If there is too much or too little fuel, the readings from the oxygen sensor will change, and this will then make the computer readjust the amount of fuel that is being delivered to the engine.

An oxygen sensor will fail from time to time. Whenever the sensor malfunctions, all the important feedback about the engine performance will then be lost. This will then cause the computer that runs the electronic fuel injection system to have absolutely no idea of how much fuel to deliver to the engine.

An O2 sensor always has a mileage rating. This indicates to us how long the sensor is expected to last. There are a few different ways of finding this information.

A vehicle owner’s manual or a shop manual should state what the lifespan of the oxygen sensor is expected to be. If none of these books are available then the dealership will be able to look up the information for a specific vehicle. Also auto parts stores will have the information. In general the oxygen sensor should last approximately 30,000 miles in older vehicles and 60,000 miles in newer vehicles if not more, but be sure to check your cars manual or techincal service bulletin for the right time to change it.

When you find out the mileage rating for the O2 sensor in your vehicle, it is always a good idea to keep all records of when any mechanical work is done on the vehicle. Therefore if you know at least when the sensor was replaced in the first place you will know when it needs to be replaced again.

If you replace the oxygen sensor regularly it will help:
- Maintain your gas mileage.
- Help prevent other related car troubles.
- Helps prevent failed emission tests due to malfunctioning oxygen sensors
- Help prevent poorly running engines with rich gasoline mixes.




Non-Dispersive Infrared (NDIR) Gas Sensor Utilizing Light-Emitting-Diodes

Gas sensors that are low-power, light-weight, and rugged, while also remaining low-cost, have considerable appeal to areas from automotive to space flight. There are increasing demands for higher efficient vehicles with lower emissions in order meet regulations that are meant to mitigate or lessen the effects of climate change. An affordable, fast response sensor that can measure transient carbon monoxide (CO) and carbon dioxide (CO2) has broad application which can lead to more efficient, fuel flexible engines and regulations of harmful emissions.

With compact, economical, low-power sensors that are able to continually monitor gases that are characteristic of burning materials, a distributed sensor array could be implemented on space vehicles that would allow early detection of fires, gas leaks, or other critical events. With careful selection of targeted gases, it may be possible to identify the material that is burning or smoldering, better informing the crew so that they may respond and prioritize high emergency events.

Further applications may include fuel/ hazardous gas leak detection on space vehicles and atmospheric constituent sensor for portable life support systems (PLSS) used by astronauts in extra vehicular activity (EVA). Non-dispersive infrared NDIR gas sensors are attractive due to their simplicity and low-cost; and by using light-emitting-diodes (LEDs) in this approach, power efficient, lightweight, and stable gas sensors can be developed to meet these needs.

This thesis discusses a sensor that was developed for simultaneous, time resolved measurements of carbon monoxide (CO) and carbon dioxide (CO2). This sensor utilizes low-cost and compact light emitting diodes (LEDs) that emit in the 3-5μm wavelength range. Light emission of LEDs is spectrally broader and more spatially divergent compared to that of lasers, which presented many design challenges. Optical design studies addressed some of the non-ideal characteristics of the LED emissions.

Measurements of CO and CO2 were conducted using their fundamental absorption bands centered at 4.7μm and 4.3μm, respectively, while a 3.6μm reference LED was used to account for scattering losses (e.g., due to soot, window deposits, etc.) common to the three measurement LEDs. Instrument validation and calibration was performed using a laboratory flow cell and bottled-gas mixtures. The sensor was able to detect CO2 and CO concentration changes as small as 30 ppm and 400 ppm, respectively. Because of the many control and monitor species with infra-red absorption features, which can be measured using the strategy described, this work demonstrates proof of concept for a wider range of fast (250Hz) and low cost sensors for gas measurement and process monitoring.

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2016年7月22日星期五

Global Alcohol Tester Market 2016-2021 : Industry Research Trends, Sales, Growth, Demand Review & Forecast

2015-2021 Alcohol Tester Market Research Report analyzed the world's main region market conditions, including the product price, profit, capacity, Production, Sales, Demand, Supply, Analysis and industry growth rate etc.

Industry 2015-2021 survives not only by considering present scenarios but also by forecasting the future and getting ready for it. Alcohol Tester industry 2015-2021 has been growing steadily since few years, but future may reveal dark sides to the market too. To get ready for this and to avoid this and nurture further in future this report study the patterns prevailing in Alcohol Tester market since a long time.

The report is formed on the basis of factual and statistical data which has been analyzed byexperts of the Alcohol Tester industry 2015-2021. This report is a manifestation of probable future of Alcohol Tester industry 2015-2021 considering past, present scenario and anticipated innovations and changes in the market.With the help of this report, companies active in Alcohol Tester industry 2015-2021 can plan their strategies. They can consider this report to decide future activities new product launch, R&D initiatives, acquisitions, financial modeling and so on.

The report takes in to consideration both micro and macro factors of the economy that play key role in influencing Alcohol Tester industry 2015-2021. Companies operating in Alcohol Tester market find this report useful to get an exact idea of their position in the industry 2015-2021.

This competitively priced report consists of an array of charts, statistical data, tables, graphs, and models to pictorially analyze the industry 2015-2021 and deliver easy to understand data in detail. Apart from this, the report tells how attractive the industry 2015-2021 is based on the analyzed information. This helps client to grasp the picture easily and understand which industry 2015-2021 shows the potential for growth.

Table Of Content (Index) On Alcohol Tester Market:

Chapter One Introduction of Alcohol Tester Industry
1.1 Brief Introduction of Alcohol Tester
1.2 Development of Alcohol Tester Industry
1.3 Status of Alcohol Tester Industry

Chapter Two Manufacturing Technology of Alcohol Tester
2.1 Development of Alcohol Tester Manufacturing Technology
2.2 Analysis of Alcohol Tester Manufacturing Technology
2.3 Trends of Alcohol Tester Manufacturing Technology

Chapter Three Analysis of Global Key Manufacturers
3.1 Company A
3.1.1 Company Profile
3.1.2 Product Information
3.1.3 2011-2015 Production Information
3.1.4 Contact Information
3.2 Company B





2016年7月21日星期四

FAU’s I-SENSE, Dioxide Materials to Jointly Develop Low-Power CO2 Sensors for HVAC Applications

Just as the summer is heating up, Florida Atlantic University’s Institute for Sensing and Embedded Network Systems Engineering (I-SENSE) and Dioxide Materials™ have formed a unique partnership to develop and evaluate a novel low-cost, low-power, wireless CO2 sensing system for heating, ventilation and air-conditioning (HVAC) applications. The technology that emerges from this joint project will help to significantly lower the amount of energy businesses and homes use for HVAC.
Located in the Research Park at FAU, Dioxide Materials™, in collaboration with FAU’s I-SENSE, has received a Small Business Technology Transfer (STTR) grant from the U.S. Department of Energy to work on the project. This project builds on a private/public partnership that leverages the complementary skill sets and associated innovations of both organizations.
Dioxide Materials™ has developed low-cost, low-power CO2 sensors for building HVAC applications. Their technology employs electrochemical sensors, similar to those in a household carbon monoxide (CO) alarm, making the sensor sensitive to carbon dioxide rather than carbon monoxide. The sensors can be manufactured much less expensively than the current generation of CO2 sensors and can run on batteries.
Currently, Dioxide Materials™ has working sensors, but needs the electronics and communications systems to connect the sensors to a building’s direct digital control (DDC) systems. I-SENSE is a leader in the design and application of low-cost, low-power telemetry platforms and sensor network systems. Together, the team will develop the electronics and software necessary to interface Dioxide Materials’ sensors to a building’s DDC system. This new technology will help to lower the amount of energy homes and businesses use for HVAC based on whole-building CO2 monitoring without the need for expensive building rewiring.
Most current HVAC systems are designed to supply constant ventilation based on the design occupancy of the space. However, this method often results in significant wastes of energy and energy dollars. Demand control ventilation (DCV), the automated process that adjusts the volume of fresh air or outside air into a building, saves energy and electricity costs by using CO2 sensors to measure the air quality and occupancy in each room, and adjusting the HVAC system accordingly. Although DCV is often seen in the construction of new multisensory LEED buildings, it has been slow to be adopted in commercial retrofits or remodeling projects, small commercial buildings and residential complexes.
“Our project will focus on robust, networked CO2 sensing and HVAC system integration; we are excited to partner with Dioxide Materials™ to help them develop and test these innovative CO2 sensors,” said Jason Hallstrom, Ph.D., director of FAU’s I-SENSE and a professor in the College of Engineering and Computer Science at FAU. “We expect this technology to substantially reduce the costs that are associated with installing DCV systems in commercial and residential buildings.”
According to the U.S. Department of Energy, demand control ventilation using CO2 sensors could reduce the energy costs of heating and cooling a building by 10 to 30 percent.
“By leveraging our expertise with FAU’s I-SENSE scientists and engineers, we can have a tremendous impact on reducing energy waste in buildings,” said Rich Masel, Ph.D., founder and CEO of Dioxide Materials™. “Having CO2 sensors in each room so that cooling and heating are based on the number of people in the room rather than running at a constant temperature, will prevent energy losses from over ventilation, while maintaining indoor air quality.”
FAU’s I-SENSE is a leader in the design and application of low-cost, low-power telemetry platforms and sensor network systems. I-SENSE serves as a clearinghouse for sensing, communication, and data management technologies, providing expertise, engineering support, and project management services through its research, engineering and administrative cores.
Dioxide Materials™ is developing a new generation of low-cost, low-powered CO2 electrochemical sensors for demand controlled ventilation (DCV) of HVAC systems. The devices are microscale versions of the CO2 electrolyzers being developed for CO2 conversion and use the company’s patent pending CO2 conversion catalysts to create an electrical signal that is proportional to the amount of CO2 in the air. Dioxide Materials' low-power CO2 sensors meet the battery operating lifetime requirement, eliminating the need for costly rewiring, and, unlike infrared-based sensors, are compatible with wireless thermostats.

ISweek(http://www.isweek.com/)- Industry sourcing & Wholesale industrial products

2016年7月20日星期三

Some Technologies Introduces an Automatic Calibration, Gas Management and Record Keeping Station for Portable Breath Alcohol Testers

Some Technologies - a leading manufacturer of evidential breath alcohol testers and passive alcohol screening devices, is pleased to announce an Automatic Calibration, Gas Management and Record Keeping Station for Portable Breath Alcohol Testers.
For the first time in portable breath alcohol testing, the easycal station automates routine breathalyzer calibration and compliance based verification checks and record keeping. Users realize time and cost savings from the elimination of manual calibration sequences, from reduced gas usage, and from automated record keeping. Easycal eliminates the possibility of accidental calibration errors from careless, inattentive or inexperienced calibration technicians.
Easycal also simplifies calibration gas management by keeping track of gas usage, cylinder expiry date, altitude correction factors and gas standards so you don't have to. All instrument calibration and cal-check events are securely retained and can be printed or exported according to DOT evidential breath testing regulations or state law enforcement requirements.


2016年7月19日星期二

Self-commissioning NDIR gas sensors

Two detectors of the same kind, each having an identical neutral band-pass filter to the target gas, are installed next to Signal channel and Reference channel detectors as pairs in an AB designed NDIR gas sensor layout, which are called Standard Signal channel detector and Standard Reference channel detector. “Standard” GAMMA is the ratio of Standard signal channel detector output over that of Standard Reference channel detector. “Standard” GAMMA is independent of the measurement Physics of NDIR gas sensors, is dependent only upon the performance characteristics of the sensor component and is also independent of the presence of any amount of target gas in the sample chamber. Consequently, “Standard” GAMMA can be used to proportionally correct and update GAMMA of the sensor as its components age over time thereby rendering such an AB designed NDIR gas sensor self-commissioning or staying accurate over time after initial calibration.
Description
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part application of U.S. patent application Ser. No. 13/149,738, the disclosure of which is specifically incorporated herein by reference.
FIELD OF THE INVENTION
The present invention is in the field of measuring instruments, and specifically relates to a configuration design and method for an NDIR gas sensor.
BACKGROUND OF THE INVENTION
Output instability or drift over time leading to measurement inaccuracies has long been a major deficiency for gas sensors irrespective of what technology or methodology is used for their conception or realization. Output software correction may alleviate the problem somewhat but it is in many instances inaccurate and not even always applicable. It has long been the objective of many researchers in this field to overcome this problem fundamentally and for good.
Recently the present author in U.S. Pat. No. 8,143,581, the disclosure of which is specifically incorporated by reference herein, advanced the teaching of an Absorption Biased NDIR Gas Sensing Methodology which is capable of eliminating substantially all the NDIR gas sensor output drifts over time without the need for re-calibration. As it turns out, the solution to solving this output drift problems for gas sensors actually lies deeper than the availability of superior NDIR gas sensor types even though they can indeed be designed to be capable of maintaining measurement accuracy over time. The fact of the matter is that people have experienced gas sensor output instability for such a long time in the past that when output stable sensors really come along nobody believes it. Until such time that stable gas sensors become widely available and users begin to consider their performance as trustworthy and truly believable, the real need today must be viewed from a completely different perspective, which is to be able to come up with a fast, inexpensive and simple methodology that can easily check the accuracy of gas sensors and inexpensively re-calibrate them when they are found to be inaccurate.
In U.S. application Ser. No. 13/149,738, filed May 31, 2011, of which this application is a continuation-in-part application, the present author advanced the teaching of a novel Re-calibration Methodology for simply and easily re-calibrating Absorption Biased (AB) designed NDIR gas sensors without the need of standard gases. With the recent advent of the Absorption Biased (AB) gas sensing methodology for realizing NDIR gas sensors whose outputs are significantly drift-free over time and also the advent of a complementing methodology that can check and re-calibrate AB designed NDIR gas sensors simply and easily without the need of standard gases, one would think that the gas sensor industry at large, particularly the HVAC industry, would be relatively satisfied and happily go forward in growing its business. But, unfortunately, this is not the case at all. While the HVAC industry is still trying to deal with their old and on-going problem of sensor inaccuracies over time, already the industry is pushing forward in finding new and better solutions for optimizing energy expenditure and achieving superior comfort level for occupants in buildings. One rather obvious approach widely being investigated and considered everywhere today is the grouping of all sensors in a building together into a computer network. These sensors can actually interact and work with one another in an efficient manner with self-commissioning, self-tuning, self-diagnostic and correction, and even self-configuring features. By so doing the energy requirement for buildings can be reduced to an absolute minimum while the comfort level and safety for occupants in the buildings can also be greatly increased.
No doubt from the standpoint of computer networking hardware and smart software availability today, this approach is clearly workable. However, when all the sensors are to be left alone by themselves to interact with one another over time in buildings, the obvious question to ask is whether these sensors are indeed ready to take on this self-policing task of always staying accurate. In other words, who is there to check whether the outputs of some of these sensors are actually staying accurate over time and if not, what are the consequences for the maintenance status of the buildings and the comfort level and safety of their occupants? Thus, while computer hardware and system networking software may be ready for this futuristic approach to building controls, it is very clear that not all the sensors needed to perform perfectly in this approach are here today to meet the challenge. In particular, gas sensors such as CO2 and dew point might be relatively accurate over time but for how long before they become inaccurate? But would there be anybody or any mechanism scheduled in the networking controls system to perform the checking or re-calibrating tasks for them? To put it bluntly, until such time that all the required sensors in the networking controls system can be self-commissioning or in other words can render themselves capable of automatically staying accurate all the time, the futuristic building controls approach with the use of computer networking and relevant software to connect all the sensors in the system together working interactively simply will not work.
It is the object of the present invention to advance a configuration design and methodology for AB designed NDIR gas sensors such that they can become self-commissioning or in other words capable of automatically maintaining their measurement accuracy indefinitely over time after initial calibration. This invention is achieved via extending the previously disclosed Absorption Biased methodology of U.S. Pat. No. 8,143,581 and Re-calibration methodology without the need of standard gases (U.S. Ser. No. 13/149,738, Wong) for NDIR gas sensors.
SUMMARY OF THE INVENTION
The present invention is generally directed to a self-calibrating NDIR gas sensor and its use in which an infrared source illuminates a signal channel that is longer than a reference channel while electronics are used to calculate a chosen gas concentration in a sample chamber containing the two channels. The difference in length between the two channels creates an absorption bias between outputs of a signal detector and a reference detector, each of the two detectors having an identical narrow band pass filter with the same Center Wavelength (“CWL”), Full Width Half Maximum (FWHM) and transmittance efficiency at the CWL. A second pair of detectors, called standard detectors, are placed in the two channels, and both of these standard detectors have an identical standard narrow band pass filter with the same Center Wavelength (“CWL”), Full Width Half Maximum (FWHM) and transmittance efficiency at the CWL and the CWL of the standard narrow band pass filter is a neutral wavelength. The electronics of the sensor is calibrated by use of a calibration curve generated by using a normalized ratio of the signal channel output to the reference channel output that starts at unity when there is zero concentration of the chosen gas. The calibration curve is self-calibrated by using a stored standard gamma ratio obtained at a first period of time and a measured standard gamma ratio obtained at a second period of time after the first period of time, the standard gamma ratio being the ratio of a standard signal output from a standard signal detector to a standard reference output from a standard reference detector.
Such an NDIR gas sensor can be made to detect a second gas by including a second signal detector and a second reference detector that function similarly to the signal and reference detector, except that they are designed to detect a different gas. This additional pair of detectors will each have an identical second chosen gas narrow band pass filter with the same Center Wavelength (“CWL”), Full Width Half Maximum (FWHM) and transmittance efficiency at the CWL and will have its own calibration curve generated by using a second chosen gas normalized ratio of the second chosen gas signal output to the second chosen gas reference output that starts at unity when there is zero concentration of the second chosen gas. As was the case with a single gas detection sensor, the second gas calibration curve is self-calibrated by using the stored standard gamma ratio and the measured standard gamma ratio.
The NDIR gas sensor can also be recalibrated by comparing the sample concentration of a gas it is detecting to a second gas measurement of such gas determined by a secondary gas standard and then adjusting the normalized ratio of the signal output to the reference output for the gas based upon a reversed calibration curve algorithm that is a non-linear equation if a difference between the sample concentration of the gas and the second gas measurement exceeds a preselected threshold.
Accordingly, it is a primary object of the present invention to provide an NDIR gas sensor that self-calibrates itself.
This and further objects and advantages of the present invention will be apparent to those skilled in the art in connection with the drawings and the detailed description of the invention set forth below.




2016年7月14日星期四

Automatic Carbon Dioxide-Methane Gas Sensor Based on the Solubility of Gases in Water

Biogas methane content is a relevant variable in anaerobic digestion processing where knowledge of process kinetics or an early indicator of digester failure is needed. The contribution of this work is the development of a novel, simple and low cost automatic carbon dioxide-methane gas sensor based on the solubility of gases in water as the precursor of a sensor for biogas quality monitoring. The device described in this work was used for determining the composition of binary mixtures, such as carbon dioxide-methane, in the range of 0–100%. The design and implementation of a digital signal processor and control system into a low-cost Field Programmable Gate Array (FPGA) platform has permitted the successful application of data acquisition, data distribution and digital data processing, making the construction of a standalone carbon dioxide-methane gas sensor possible.
Low-cost chemical analysis sensors can have a great impact in fields such as environmental preservation and energy efficiency. There is a growing market for this kind of sensor, especially for low-cost and reliable sensors focused on carbon dioxide (CO2)-methane (CH4) mixtures in biogas quality monitoring applications. Currently, the most studied method to transform waste into energy is anaerobic digestion, which can convert a variety of wastes, such as agricultural waste from animals and plants and municipal waste, into a full energy product such as biogas. The preferred technology for the analysis of single components in raw biogas, specifically to determine the CH4 and CO2 content, is optical sensors, which detect infrared absorption in the characteristic wavelengths for these molecules. In the literature, biogas composition has been measured with gas infrared analyzers, such as those used by Sedlačík and Dvořáčková, who utilized a GASCARD II infrared gas sensor from Edinburgh Instruments; Nordberg et al., who used a Model 6500 visible/near-infrared scanning monochromator from FOSS NIRSystems and Steyer et al. , who used a Siemens Ultramat 22P, which works on the principle of the nondispersive absorption of infrared light. Additionally, semiconductor diode lasers for use in the mid-infrared spectral region based upon lead-salt operating near 7.8 μm have also been used for methane measurements. However, there are two main drawbacks to the sensors outlined above: high cost and difficulty of installation at all biogas production sites. For comparison, the cost of a commercial FTIR spectrophotometer is near $20,000 USD, while the estimated cost of the gas sensor described here is approximately $5,000 USD. The described sensor is also easy to build and operate.
Methods for the acquisition of biogas methane content based in a variety of measurement principles have been reported in the literature. For example, Mandal et al. determined biogas quality using flame temperature as the measurement principle. In this case, the steady-state flame temperature was measured using a system consisting of a thermocouple probe and an analog temperature indicator. In addition, Rego and Mendes  and Rego et al. described a permselective gas sensor for determining the composition of carbon dioxide-methane mixtures in the 0–100% range. The sensor consisted of a permselective membrane, a pressure transducer for measuring the permeate pressure and a needle valve for controlling the permeate outlet to the atmosphere. Furthermore, Rozzi et al. used a thermostatically controlled cell containing 0.1 mol · L−1 sodium bicarbonate in which the pH was monitored by an Orion combination glass electrode and an Orion Model 601A specific ion meter. When the pH reading had stabilized, gas samples were taken using a syringe and analyzed for CO2 and CH4 content using gas-solid chromatography on molecular sieves with nitrogen as the carrier gas and a katharometer for the detector.
Carlson and Martisson presented a technique to quantify variations in ultrasound pulse shape caused by interactions between the constituents of a two-component gas mixture as an alternative method to extract information concerning the molar fraction of a gas in a binary mixture. Additionally, Tardy et al. developed a dynamic thermal conductivity sensor for gas detection based on the transient thermal response of a SiC micro-plate slightly heated by a screen-printed Pt resistance. This device was intended for specific application in the determination of the specific gases in a mixture.
Gonzalez et al. used a device that passed the produced biogas through an Erlenmeyer flask filled with a 20% NaOH solution followed by a tube filled with soda lime pellets. The gas then passed through a Mariotte flask system containing water for the quantification of methane production. The displaced water was collected in a plastic container on a pressure sensor (QB 745, DS-Europe) for continuous monitoring of CH4 production.
A Field Programmable Gate Array (FPGA) is an array of basic logic blocks where the user can define its interconnectivity, making it programmable in a fully open architecture. Therefore, an FPGA provides the advantages of a general-purpose processor and a specialized circuit that can be reconfigured as many times as necessary until the required functionality is achieved. The speed and size of the FPGA are comparable with the Application Specific Integrated Circuit (ASIC), but the FPGA is more versatile and its design cycle is shorter because of its reconfigurability. FPGA applications go beyond the simple implementation of digital logic; they can be used for the implementation of specific architectures for speeding up some algorithms. A specific structure for an algorithm implemented into an FPGA could have 10–100 times higher performance than its implementation on a Digital Signal Processor (DSP) or microprocessor.
Due to the sequential processing data flow on commercially available DSPs and microprocessors, the increase in sampling rate, mathematical processing, or versatility can impose severe restrictions on processor performance. Therefore, other alternatives for signal processing must be considered to achieve real-time data acquisition and data pre-processing. Moreover, FPGA devices have been gaining market share in system on chip (SOC) applications because they can integrate processing units defined by the user and related peripheral logic in the hardware, combining open architectures that do not depend on the manufacturer or specific platforms. However, DSPs and microprocessors have a fixed sequential construction for computation, which can easily be overloaded when the processing time between samples is significantly reduced, as in high-speed control, while FPGAs have a natural parallel architecture for high-speed computation. Along with the advantages previously cited, FPGA development is performed under Hardware Description Language (HDL), making the design portable and platform independent, which is not the case for commercially available DSPs or microprocessors.
In this paper, the development of a low-cost automatic carbon dioxide-methane gas sensor based on the principle of the solubility of gaseous species in water is reported. The novelty of this work is two-fold. First, a physical principle, never used before, is applied for binary mixture quantification, drastically reducing the cost and complexity of the equipment and facilitating on-line monitoring. Second, the hardware implemented in the FPGA has the capacity for data acquisition, data distribution, data processing, data communication and control, adding functionality and autonomy to the automatic carbon dioxide-methane gas sensor and allowing it to be deployed in the field.





2016年7月13日星期三

Alcohol Tester For Watered Down Booze

You sit down at the bar and order a double Scotch and soda. But the drink tastes more like water than Speyside malt. No worries, just whip out this trusty alcohol tester and catch that 250 lb. bartender red-handed. You hold up your multicolored testing device and shout: you, sir, are a cheat! What happens next is anyone's guess, but I hope you are wearing running shoes.

Of course this is also ideal for any serious bartender or drinking business. The principle is based on the different weight of alcohol and water. The position of the rings and the colors show the percentage of alcohol to water. It comes in various materials and with different numbers of rings for measuring.


New report: Global electrochemical gas sensors industry consumption forecast to 2021

New report examines the with key companies profile, supply, import, export, manufacturing process and cost structure analysis. Electrochemical Gas Sensors Industry 2016 Research Report includes market size (volume and value), Global Sale Price Analysis, Growth Rate, Segments by Types & Applications and project investment
The Global Electrochemical Gas Sensors Consumption 2016 Market Research Report is a professional and in-depth study on the current state of the Electrochemical Gas Sensors market. This report provides a basic overview of the Electrochemical Gas Sensors industry including definitions, classifications, applications and industry chain structure.
And development policies and plans are discussed as well as manufacturing processes and cost structures.
Key Companies profiled in this research report are Dynament, CityTechnology Ltd, HEIMANN, Emerson, Alphasense, GE, DRAEGER, Figaro, Edinburgh Sensors, Dart, Winsenand more are profiled in the terms of product picture, specification, capacity, production, price, cost, gross, revenue, and contact information.
This report states the global Electrochemical Gas Sensors market size (volume and value), and the segment markets by regions, types, applications and companies are also discussed. The Electrochemical Gas Sensors market analysis is provided for major regions including USA, Europe, China and Japan, and other regions can be added.
For each region, market size and end users are analyzed as well as segment markets by types, applications and companies.
Later, the report focuses on global major leading industry players with information such as company profiles, product picture and specifications, sales, market share and contact information. What’s more, the Electrochemical Gas Sensors industry development trends and marketing channels are analyzed.
Finally, the feasibility of new investment projects is assessed, and overall research conclusions are offered. In a word, the report provides major statistics on the state of the industry and is a valuable source of guidance and direction for companies and individuals interested in the market.
Table of Contents:
1 Industry Overview of Electrochemical Gas Sensors
2 Manufacturing Cost Structure Analysis of Electrochemical Gas Sensors
3 Global Market Size (Volume and Value), Sales and Sale Price Analysis of Electrochemical Gas Sensors
4 USA Market Size (Volume and Value), Sales, Sale Price and End Users Analysis of Electrochemical Gas Sensors
5 Europe Market Size (Volume and Value), Sales, Sale Price and End Users Analysis of Electrochemical Gas Sensors
6 China Market Size (Volume and Value), Sales, Sale Price and End Users Analysis of Electrochemical Gas Sensors
7 Japan Market Size (Volume and Value), Sales, Sale Price and End Users Analysis of Electrochemical Gas Sensors
8 Major Companies Analysis of Electrochemical Gas Sensors
9 Global Production Analysis of Electrochemical Gas Sensors by Regions
10 Global and Major Regions Market Size (Volume and Value) Forecast of Electrochemical Gas Sensors
11 Marketing Trader or Distributor Analysis of Electrochemical Gas Sensors
12 New Project Investment Feasibility Analysis of Electrochemical Gas Sensors
13 Conclusion of the Global Electrochemical Gas Sensors Consumption 2016 Market Research Report





2016年7月12日星期二

Grand Island police receive six breath alcohol testers

The Grand Island Police Department has received six handheld  breath alcohol tester units through a traffic safety grant award from the Nebraska Office of Highway Safety.
The units, worth $285 each, were provided as part of the state’s ongoing effort to prevent underage drinking and alcohol-related traffic crashes, injuries and fatalities.
The Police Department was awarded the new instruments to assist their personnel in identifying potential minors in possession, minors driving with a blood alcohol content of .02 percent, and driving under the influence violators, said Highway Safety Administrator Fred Zwonechek.
The portable units display a digital reading of the blood alcohol level from a suspect’s breath sample. “These instruments provide the latest technology in preliminary breath testing,” Zwonechek said in news release.

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Design of an NDIR gas sensor with two non-symmetric Fabry-Perot absorber-structures

Every gas (e.g. CO2) absorbs IR-radiation at individual gas specific IR-wavelengths. Non-dispersive infrared NDIR gas sensors exploit this property for gas monitoring. Such sensors are used in various applications, e.g. for control of air quality in office buildings or cars. This is a big market for low cost sensors.

A NDIR sensor consists basically of three components: an IR-emitter, a chamber containing the sample gas, and an IR-detector with a filter for the observed wavelength. Commercially available systems use broadband IR-emitters (e.g.: micro-lamps) in combination with thermopile or pyroelectric detectors fabricated with a narrowband gas-specific IR-filter, e.g., an interference filter.

We devised a concept for a simple and cost-effective NDIR gas sensor based on two non-symmetric Fabry-Perot absorberstructures as IR-emitter and as IR-detector where no additional interference filter is needed. The presented sensor combines thin layer technology with optical sensing techniques. The system was first analyzed using ray tracing models based on a Monte Carlo method in order to model the response function of the system's sample chamber. For our results, the sample gas is CO2 where the major absorption is centered around 4.26μm.

ISweek(http://www.isweek.com/)- Industry sourcing & Wholesale industrial products

2016年7月11日星期一

Nanostart's ItN Nanovation receives European patent for CO2 sensor technology

Nanotechnology investor Nanostart's (ETR:NNS) portfolio company ItN Nanovation announced today it has received a European patent for its carbon dioxide sensor technology.

ItN, which develops ceramic filtration systems and coatings for industrial customers, said that the receipt of the patent is a step forward for the company in terms of developing CO2 sensors for the commercial market.

The European patent covers the company's nanostructured material and the CO2-sensitive sensor coatings it is used to produce. ItN's coating products are used in a number of ways as protective coatings, from baking ovens to coal-fired power plants.

CO2 detection is crucial in many industrial processes including energy production and the control of ventilation and climate control equipment.

ItN said it plans to work with industry partners to develop these CO2 sensors for the market, and is currently involved in initial discussions with third parties.

Frankfurt-based Nanostart provides venture capital financing for nanotechnology companies in various growth phases with a focus on industries such as cleantech, life sciences, and IT/electronics.


2016年7月8日星期五

New composite material works as CO2 Sensor (carbon dioxide sensor)

A new type of sensor that can measure carbon dioxide (CO2) consists of a recently developed composite material. It interacts with CO2 molecules and changes its conductivity depending on the concentration of CO2 in the environment. Material scientists at ETH Zurich in Switzerland and the Max Planck Institute of Colloids and Interfaces in Potsdam, Germany developed the sensor and say that compared with existing sensors, it is much smaller, has a simpler construction, requires considerably less energy and has an entirely different functional principle. ETH scientists have created a sensor chip with this material that enables them to determine CO2 concentration with a simple measurement of electrical resistance, according to a news release from ETH.
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 researchers say that the name of the polymers is slightly misleading as they are called polyionic liquids (PIL), although they are solid rather than liquid).
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,” said 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,” Willa said. “But when we combined them in a certain ratio, their conductivity increased rapidly.”
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,” said 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.
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 capitalize 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. Koziej believes that portable devices to measure breathing air for scuba diving, extreme altitude mountaineering or medical applications are now feasible.




2016年7月7日星期四

Global Advanced CO2 Sensor Market 2016 – Digital Control Systems, Siemens Industry, SenseAir, Veris Industries, Vaisala Inc., Hans Turck, Honeywell

The market report, titled Advanced CO2 Sensor Market 2016, is an analytical research done by QY Market Research study based on the Advanced CO2 Sensor market, which analyzes the competitive framework of the Advanced CO2 Sensor industry worldwide. This report “Worldwide Advanced CO2 Sensor Market 2016” build by the usage of efficient methodical tools such SWOT analysis, the Advanced CO2 Sensor industrial 2016 study offers a comprehensive evaluation worldwide Advanced CO2 Sensor market.
Major Manufacturers Analysis of Advanced CO2 Sensor : Balluff, Siemens Industry, SenseAir, Veris Industries, Vaisala Inc., Hans Turck, Honeywell, AirTest Technologies, Johnson Controls, Digital Control Systems
Global Advanced CO2 Sensor Market 2016 report has Forecasted Compound Annual Growth Rate (CAGR) in % value for particular period, that will help user to take decision based on futuristic chart. Report also includes key players in global Advanced CO2 Sensor market.
The Advanced CO2 Sensor market size is estimated in terms of revenue (US$) and production volume in this report. Whereas the Advanced CO2 Sensor market key segments and the geographical distribution across the globe is also deeply analyzed. Various Advanced CO2 Sensor market dynamics such as growth drivers, restrictions, and the future prospects of each segment have been discussed in detail. Based on that, the Advanced CO2 Sensor market report determines the future status of the market globally.
This report covers every aspect of the global market for Advanced CO2 Sensor , starting from the basic market information and advancing further to various significant criteria, based on which, the Advanced CO2 Sensor market is segmented. Key application areas of Advanced CO2 Sensor are also assessed on the basis of their performance.
The Advanced CO2 Sensor industrial chain, existing policies,and rules and regulations are studied in this Advanced CO2 Sensor Market report. Key manufacturers, their manufacturing chain, products, Advanced CO2 Sensor market price structures as well as the revenue.
The report also evaluates the production capacity, dynamics of demand and supply, logistics, and the historical performance of the Advanced CO2 Sensor market worldwide.


New report examines the alcohol tester market analysis of key manufacturers in global and Chinese region 2016

The 'Global and Chinese Alcohol Tester Industry, 2016 Market Research Report' is a professional and in-depth study on the current state of the global Alcohol Tester industry with a focus on the Chinese market. Then, the report explores the international and Chinese major industry players in detail. In this part, the report presents the company profile, product specifications, capacity, production value, and 2011-2016 market shares for each company. Through the statistical analysis, the report depicts the global and Chinese total market of Alcohol Tester industry including capacity, production, production value, cost/profit, supply/demand and Chinese import/export.
The total market is further divided by company, by country, and by application/type for the competitive landscape analysis. The report then estimates 2016-2021 market development trends of Alcohol Tester industry.
Analysis of upstream raw materials, downstream demand, and current market dynamics is also carried out. In the end, the report makes some important proposals for a new project of Alcohol Tester Industry before evaluating its feasibility.
Overall, the report provides an in-depth insight of 2011-2021 global and Chinese Alcohol Tester industry covering all important parameters.
Table of Content
Chapter One Introduction of Alcohol Tester Industry
1.1 Brief Introduction of Alcohol Tester
1.2 Development of Alcohol Tester Industry
1.3 Status of Alcohol Tester Industry

Chapter Two Manufacturing Technology of Alcohol Tester
2.1 Development of Alcohol Tester Manufacturing Technology
2.2 Analysis of Alcohol Tester Manufacturing Technology
2.3 Trends of Alcohol Tester Manufacturing Technology

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2016年7月6日星期三

Officers train in Augusta on new breath alcohol testers

About 90 officers from across the state trained this week in Augusta for the new, advanced breath alcohol testers, which will replace current models Georgia police have used since the mid-1990s.
“We have recently decided to transition from the other system to the new one for sustainability purposes,” said Chris Tilson, the manager of the implied consent section of the Georgia Bureau of Investigation’s Division of Forensic Sciences.
The Intoxilyzer 5000 has been used in Georgia since 1995, but the machine will be decommissioned Dec. 31, 2015 as agencies make the switch to the Intoxilyzer 9000.
Tilson said the current machine is still a good piece of equipment, but replacement parts are becoming an issue. After evaluating three options, Georgia Bureau of Investigation officials chose the 9000-model, which had the highest composite test score.
The three-year gap between the initial decision and systems’ decommissioning allows the 8,500 Georgia officers to obtain updated permits and gives departments time to purchase the equipment – which costs about $8,000each.
At this point, the GBI is on schedule to complete training before the end of 2015. Tilson said he hopes to see another 3,000 officers trained in the next 12 months.
About 40 of the 90 officers who trained with the new system during the four-hour class on Monday and Tuesday were Richmond County officers.
Tilson, who taught the class, said most officers breeze through the course.
“All the major functions are the same,” he said. “It’s just getting through the screens, reading the reports and (understanding) the error messages.”
Other changes include a touchscreen, a faster computer with the ability to store more information and test results, and a feature that allows officers to assess how well the person is providing a breath sample. Tilson said the new systems have not been installed yet, but should begin appearing in October.
Richmond County sheriff’s Lt. Lewis Blanchard said the county has used grant money to help purchase three Intoxilyzer 9000s. The department hopes to have them in use by early 2014. They will replace existing machines at the 401 Walton Way booking area, the Phinizy Road jail and in the DUI van.

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