全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
Sensors  2013 

Open-Source Colorimeter

DOI: 10.3390/s130405338

Keywords: open source, open-source hardware, colorimetery, COD, Arduino, RepRap, 3-D printer, open-source sensor, chemical oxygen demand, open-source colorimeter

Full-Text   Cite this paper   Add to My Lib

Abstract:

The high cost of what have historically been sophisticated research-related sensors and tools has limited their adoption to a relatively small group of well-funded researchers. This paper provides a methodology for applying an open-source approach to design and development of a colorimeter. A 3-D printable, open-source colorimeter utilizing only open-source hardware and software solutions and readily available discrete components is discussed and its performance compared to a commercial portable colorimeter. Performance is evaluated with commercial vials prepared for the closed reflux chemical oxygen demand (COD) method. This approach reduced the cost of reliable closed reflux COD by two orders of magnitude making it an economic alternative for the vast majority of potential users. The open-source colorimeter demonstrated good reproducibility and serves as a platform for further development and derivation of the design for other, similar purposes such as nephelometry. This approach promises unprecedented access to sophisticated instrumentation based on low-cost sensors by those most in need of it, under-developed and developing world laboratories.

References

[1]  The Open Source Definition (Annotated). Available online: http://opensource.org/docs/definition.html (accessed on 25 January 2013).
[2]  94 Percent of the World's Top 500 Supercomputers Run Linux. Available online: https://www.linux.com/news/enterprise/high-performance/147-high-performance/666669-94-percent-of-the-worlds-top-500-supercomputers-run-linux (accessed on 25 January 2013).
[3]  75% of Top 10k Websites Served by Open Source Software. Available online: http://royal.pingdom.com/2012/05/22/75-percent-top-10k-websites-served-by-open-source-software/ (accessed on 25 January 2013).
[4]  Survey: 98 Percent of Enterprises Using Open Source Software, Interrupted—CNET News. Available online: http://news.cnet.com/8301-13846_3-20013258-62.html (accessed on 25 January 2013).
[5]  Christian, W.W.; Esquembre, F.; Barbato, L. Open source physics. Science 2011, 334, 1077–1078.
[6]  Pearce, J.M. Appropedia as a tool for service learning in sustainable development. J. Edu. Sustain. Dev. 2009, 3, 47–55.
[7]  Buitenhuis, A.J.; Zelenika, I.; Pearce, J.M. Open Design-Based Strategies to Enhance Appropriate Technology Development. Proceedings of the 14th Annual National Collegiate Inventors and Innovators Alliance Conference, San Francisco, CA, USA, 25–27 March 2010; pp. 1–12.
[8]  Pearce, J.M. The case for open source appropriate technology. Environ. Dev. Sustain. 2012, 14, 425–431.
[9]  Stokstad, E. Open-source ecology takes root across the world. Science 2011, 334, 308–309.
[10]  Bruns, B. Open sourcing nanotechnology research and development: issues and opportunities. Nanotechnology 2001, 12, 198–210.
[11]  Mushtaq, U.; Pearce, J.M. Nanotechnology and Global Sustianability; Maclurcan, D., Radywyl, N., Eds.; CRC Press: Boca Raton, FL, USA, 2012; pp. 191–213.
[12]  Pearce, J.M. Make nanotechnology research open-source. Nature 2012, 491, 519–521.
[13]  Lang, T. Advancing global health research through digital technology and sharing data. Science 2011, 331, 714–717.
[14]  Meister, S. Imaging of plasmodium liver stages to drive next-generation antimalarial drug discovery. Science 2011, 334, 1372–1377.
[15]  Acosta, R. Open Source Hardware. MS.c. Thesis, Massachusetts Institute of Technology, Cambridge, MA, USA, 2009.
[16]  Sells, E.; Bailard, S.; Smith, Z.; Bowyer, A.; Olliver, V. RepRap: The Replicating Rapid Prototyper-Maximizing Customizability by Breeding the Means of Production. In Handbook of Research in Mass Customization and Personalization, Forthcoming; World Scientific: New Jersey, NJ, USA, 2009; pp. 568–580.
[17]  RepRap—RepRapWiki. Available online: http://www.reprap.org/wiki/Main_Page (accessed on 24 January 2013).
[18]  Jones, R.; Haufe, P.; Sells, E.; Iravani, P.; Olliver, V. RepRap—The replicating rapid prototyper. Robotica 2011, 29, 177–191.
[19]  Pearce, J.M. Building research equipment with free, open-source hardware. Science 2012, 337, 1303–1304.
[20]  Deek, F.P.; McHugh, J.A.M. Open Source: Technology and Policy; Cambridge University Press: Cambridge, UK, 2007.
[21]  Settle, F.A. Chemical instrumentation, evolution of instrumentation for uv-visible spectrophotometry. J. Chem. Edu. 1986, doi:10.1021/ed063pA216.
[22]  Popov-Ralji?, J.V.; Mastilovi?, J.S.; Lali?i?;-Petronijevi?, J.G.; Popov, V.S. Investigations of bread production with postponed staling applying instrumental measurements of bread crumb color. Sensors 2009, 9, 8613–8623.
[23]  Popov-Ralji?, J.V.; Lali?i?;-Petronijevi?, J.G. Sensory properties and color measurements of dietary chocolates with different compositions during storage for up to 360 days. Sensors 2009, 9, 1996–2016.
[24]  Popov-Ralji?, J.V.; Laki?, N.S.; Lali?i?;-Petronijevi?, J.G.; Bara?, M.B.; Sikimi?, V.M. Color changes of UHT milk during storage. Sensors 2008, 8, 5961–5974.
[25]  Bogue, R. Optical chemical sensors for industrial applications. Sens. Rev. 2007, 27, 86–90.
[26]  Terry, P.A. Application of ozone and oxygen to reduce chemical oxygen demand and hydrogen sulfide from recovered paper processing plant. Int. J. Chem. Eng. 2010, doi:10.1155/2010/250235.
[27]  Elliot, A.M. A photoelectric colorimeter for estimating protozoan population densities. Trans. Amer. Microsc. Soc. 1949, 68, 228–233.
[28]  Eckhardt, L.; Mayer, J.A.; Creech, L.; Johnston, M.R. Assessing children's ultraviolet radiation exposure: The potential usefulness of a colorimeter. Amer. J. Pub. Health 1996, 86, 1802–1804.
[29]  Trujillo, O.; Vanezis, P.; Cermignani, M. Photometric assessment of skin colour and lightness using a tristimulus colorimeter: Reliability of inter and intra-investigator observations in healthy adult volunteers. Foren. Sci. Int. 1996, 81, 1–10.
[30]  Pesce, S. Use of water quality indices to verify the impact of Córdoba City (Argentina) on Suquía River. Water Res. 2000, 34, 2915–2926.
[31]  Hur, J.; Lee, B.M.; Lee, T.H.; Park, D.H. Estimation of biological oxygen demand and chemical oxygen demand for combined sewer systems using synchronous fluorescence spectra. Sensors 2010, 10, 2460–2471.
[32]  Hur, J.; Cho, J. Prediction of BOD, COD, and total nitrogen concentrations in a typical urban river using a fluorescence excitation-emission matrix with PARAFAC and UV absorption indices. Sensors 2012, 12, 972–986.
[33]  OpenSCAD—The Programmers Solid 3D CAD Modeller. Available online: http://www.openscad.org/ (accessed on 24 January 2013).
[34]  Slic3r-G-Code Generator for 3D Printers. Available online: http://slic3r.org/ (accessed on 24 January 2013).
[35]  Arduino-HomePage. Available online: http://www.arduino.cc/ (Accessed on 24 January 2013).
[36]  Adafruit Industries Unique and Fun DIY Electronics and Kits. Available online: https://www.adafruit.com/ (accessed on 24 January 2013).
[37]  United States Environmental Protection Agency. Methods for Chemical Analysis of Water and Wastes; EPA: Cincinnati, OH, USA, 1983.
[38]  Gonzales, J. Wastewater Treatment in the Fishery Industry; Food and Agriculture Organization of the United Nations: Mar del Plata, Argentina, 1995.
[39]  Hach Company. Oxygen Demand, Chemical, Method 8000 for Water, Wastewater and Seawater. Available online: http://www.hach.com/asset-get.download.jsa?id=7639983640 (accessed on 30 January 2013).
[40]  Colorimeter V0.0. Available online: http://www.thingiverse.com/thing:45443 (accessed on 30 January 2013).
[41]  Open-Source Colorimeter. Available online: http://www.appropedia.org/Open-source_colorimeter (accessed on 30 January 2013).
[42]  Arduino and the Taos TSL230R Light Sensor: Getting Started—Drone Colony. Available online: http://dronecolony.com/2008/11/13/arduino-and-the-taos-tsl230r-light-sensor-getting-started/ (accessed on 25 January 2013).
[43]  Smart Lab Technology. Available online: http://www.iorodeo.com/ (accessed on 25 January 2013).
[44]  Educational Colorimeter Kit. Available online: http://www.iorodeo.com/colorimeter (accessed on 11 April 2013).
[45]  Zhang, C.; Anzalone, N.C.; Faria, R.P.; Pearce, J.M. Open-Source 3D-Printable Optics Equipment. PLoS ONE 2013, doi:10.1371/journal.pone.0059840.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133