Ishwar puri (23 risultati)

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  • Lingua: Inglese

    Editore: CRC Press, 2001

    0849325536 / 9780849325533

    Serie: Libro 5 di 21 - Applied and Computational Mechanics

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    Condizione: Usato - Molto buono

    EUR 20,97

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    Hardcover. Condizione: Very Good. No Jacket. Missing dust jacket; May have limited writing in cover pages. Pages are unmarked. ~ ThriftBooks: Read More, Spend Less.

  • Editore: World Institute for the Study of Human Awareness, Minneapolis, MN, 1984

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    Original Wraps. Condizione: Very Good. No Jacket. Black titles on white wraps, 30 staple bound pages. A compilation from taped lectures by Ishwar C. Puri, founder of the World Institute for the Study of Human Awareness and a senior consultant for the Vegetarian Health Society.

  • Editore: Institute for the Study of Human Awareness, Minneapolis, MN, 1985

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    Da: Canal Bookyard, Upper Black Eddy, PA, U.S.A.Canal Bookyard

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    Original Wraps. Condizione: Good. No Jacket. Black titles on white wraps, 54 staple bound pages. This publication is a compilation of taped lectures by Ishwar Puri. Some red underlining and margin notes in the text.

  • Editore: The World Institute for the Study of Human Awareness, U.S.A., 1984

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    Da: Take Five Books, Ashland, OR, U.S.A.Take Five Books

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    Stapled. Condizione: Very Good. Edition Not Stated. Published by VHS.

  • Lingua: Inglese

    Editore: World Institute for the Study of Human Awareness, 1983

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    Da: 3rd St. Books, Lees Summit, MO, U.S.A.3rd St. Books

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    Soft cover. Condizione: Very Good. Very good, clean, tight condition. Softcover. Text free of marks. Professional book dealer since 1999. All orders are processed promptly and carefully packaged.

  • Condizione: Usato - Buono

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    Hardcover. Condizione: Good. Connecting readers with great books since 1972! Used textbooks may not include companion materials such as access codes, etc. May have some wear or writing/highlighting. We ship orders daily and Customer Service is our top priority.

  • Lingua: Inglese

    Editore: CRC Press, 2001

    0849325536 / 9780849325533

    Serie: Libro 5 di 21 - Applied and Computational Mechanics

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    Da: Peak Pearl LLC, Holly Springs, NC, U.S.A.Peak Pearl LLC

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    EUR 85,25

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    Hardcover. Condizione: As New. 1st Edition. Like new, never been used.

  • Lingua: Inglese

    Editore: CRC Press, 2011

    1439805725 / 9781439805725

    Serie: Libro 5 di 21 - Applied and Computational Mechanics

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    Condizione: New. This is a Brand-new US Edition. This Item may be shipped from US or any other country as we have multiple locations worldwide.

  • Lingua: Inglese

    Editore: CRC Press, 2006

    0849320712 / 9780849320712

    Serie: Libro 1 di 21 - Applied and Computational Mechanics

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    Hardcover. Condizione: Good. Connecting readers with great books since 1972! Used textbooks may not include companion materials such as access codes, etc. May have some wear or writing/highlighting. We ship orders daily and Customer Service is our top priority.

  • Lingua: Inglese

    Editore: Iwa Pub, 2011

    1843393360 / 9781843393368

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  • Lingua: Inglese

    Editore: Iwa Pub, 2011

    1843393360 / 9781843393368

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  • Lingua: Inglese

    Editore: Iwa Pub, 2011

    1843393360 / 9781843393368

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  • Lingua: Inglese

    Editore: CRC Press, 2001

    0849325536 / 9780849325533

    Serie: Libro 5 di 21 - Applied and Computational Mechanics

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    Da: Mispah books, Redhill, SURRE, Regno UnitoMispah books

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    Hardcover. Condizione: Very Good. Very Good. Dust Jacket may NOT BE INCLUDED.CDs may be missing. SHIPS FROM MULTIPLE LOCATIONS. book.

  • Lingua: Inglese

    Editore: CRC Press, 2006

    0849320712 / 9780849320712

    Serie: Libro 1 di 21 - Applied and Computational Mechanics

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  • Lingua: Inglese

    Editore: IWA Publishing, GB, 2010

    1843393360 / 9781843393368

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    Paperback. Condizione: New. Wastewater treatment is an energy intensive process that removes contaminants and protects the environment. While some wastewater treatment plants (WWTPs) recover a small portion of their energy demand through sludge handling processes, most of the useful energy available from wastewater remains unrecovered. Efforts are underway to harness energy from wastewater by developing microbial fuel cells (MiFCs) that generate electricity. Key challenges to the development of microbial fuel cells include inefficiencies inherent in recovering energy from microbial metabolism (particularly carbon metabolism) and ineffective electron transfer processes between the bacteria and the anode. We explored the prospects for constructing microaerobic nitrifying MiFCs which could exhibit key advantages over carbon-based metabolism in particular applications (e.g., potential use in ammonia-rich recycle streams). In addition, we evaluated nanostructure-enhanced anodes which have the potential to facilitate more efficient electron transfer for MiFCs because carbon nanostructures, such as nanofibers, possess outstanding conducting properties and increase the available surface area for cellular attachment. In the initial phase of this project, we investigated the performance of a novel nitrifying MiFC that contains a nanostructure-enhanced anode and that demonstrated power generation during preliminary batch testing. Subsequent batch runs were performed with pure cultures of Nitrosomonas europaea which demonstrated very low power generation. After validating our fuel cell hardware using abiotic experiments, we proceeded to test the MiFC using a mixed culture from a local wastewater treatment plant, which was enriched for nitrifying bacteria.  Again, the power generation was very low though noticeably higher on the nanostructured anodes.  After establishing and monitoring the growth of another enriched nitrifying culture, we repeated the experiment a third time, again observing very low power generation. In the absence of appreciable and repeatable power production from pure and mixed nitrifying cultures, we focused on the second major objective of the work which was the fabrication and characterization of carbon nanostructured anodes. The second research objective evaluated whether or not addition of carbon nanostructures to stainless steel anodes in anaerobic microbial fuel cells enhanced electricity generation.  The results from the studies focused on this element were very promising and demonstrated that CNS-coated anodes produced up to two orders of magnitude more power in anaerobic microbial fuel cells than in MiFCs with uncoated stainless steel anodes. The largest power density achieved in this study was 506 mW m-2, and the average maximum power density of the CNS-enhanced MiFCs using anaerobic sludge was 300 mW m-2.  In comparison, the average maximum power density of the MiFCs with uncoated anodes in the same experiments was only 13.7 mW m-2, an almost 22-fold red.

  • Lingua: Inglese

    Editore: Iwa Pub, 2011

    1843393360 / 9781843393368

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    Condizione: As New. Unread book in perfect condition.

  • Lingua: Inglese

    Editore: IWA Publishing, GB, 2010

    1843393360 / 9781843393368

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    Paperback. Condizione: New. Wastewater treatment is an energy intensive process that removes contaminants and protects the environment. While some wastewater treatment plants (WWTPs) recover a small portion of their energy demand through sludge handling processes, most of the useful energy available from wastewater remains unrecovered. Efforts are underway to harness energy from wastewater by developing microbial fuel cells (MiFCs) that generate electricity. Key challenges to the development of microbial fuel cells include inefficiencies inherent in recovering energy from microbial metabolism (particularly carbon metabolism) and ineffective electron transfer processes between the bacteria and the anode. We explored the prospects for constructing microaerobic nitrifying MiFCs which could exhibit key advantages over carbon-based metabolism in particular applications (e.g., potential use in ammonia-rich recycle streams). In addition, we evaluated nanostructure-enhanced anodes which have the potential to facilitate more efficient electron transfer for MiFCs because carbon nanostructures, such as nanofibers, possess outstanding conducting properties and increase the available surface area for cellular attachment. In the initial phase of this project, we investigated the performance of a novel nitrifying MiFC that contains a nanostructure-enhanced anode and that demonstrated power generation during preliminary batch testing. Subsequent batch runs were performed with pure cultures of Nitrosomonas europaea which demonstrated very low power generation. After validating our fuel cell hardware using abiotic experiments, we proceeded to test the MiFC using a mixed culture from a local wastewater treatment plant, which was enriched for nitrifying bacteria.  Again, the power generation was very low though noticeably higher on the nanostructured anodes.  After establishing and monitoring the growth of another enriched nitrifying culture, we repeated the experiment a third time, again observing very low power generation. In the absence of appreciable and repeatable power production from pure and mixed nitrifying cultures, we focused on the second major objective of the work which was the fabrication and characterization of carbon nanostructured anodes. The second research objective evaluated whether or not addition of carbon nanostructures to stainless steel anodes in anaerobic microbial fuel cells enhanced electricity generation.  The results from the studies focused on this element were very promising and demonstrated that CNS-coated anodes produced up to two orders of magnitude more power in anaerobic microbial fuel cells than in MiFCs with uncoated stainless steel anodes. The largest power density achieved in this study was 506 mW m-2, and the average maximum power density of the CNS-enhanced MiFCs using anaerobic sludge was 300 mW m-2.  In comparison, the average maximum power density of the MiFCs with uncoated anodes in the same experiments was only 13.7 mW m-2, an almost 22-fold red.

  • Lingua: Inglese

    Editore: WERF, 2010

    1843393360 / 9781843393368

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    Condizione: New. KlappentextrnrnWastewater treatment is an energy intensive process that removes contaminants and protects the environment. While some wastewater treatment plants (WWTPs) recover a small portion of their energy demand through sludge handling proc.

  • Lingua: Inglese

    Editore: IWA Publishing, GB, 2010

    1843393360 / 9781843393368

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    Paperback. Condizione: New. Wastewater treatment is an energy intensive process that removes contaminants and protects the environment. While some wastewater treatment plants (WWTPs) recover a small portion of their energy demand through sludge handling processes, most of the useful energy available from wastewater remains unrecovered. Efforts are underway to harness energy from wastewater by developing microbial fuel cells (MiFCs) that generate electricity. Key challenges to the development of microbial fuel cells include inefficiencies inherent in recovering energy from microbial metabolism (particularly carbon metabolism) and ineffective electron transfer processes between the bacteria and the anode. We explored the prospects for constructing microaerobic nitrifying MiFCs which could exhibit key advantages over carbon-based metabolism in particular applications (e.g., potential use in ammonia-rich recycle streams). In addition, we evaluated nanostructure-enhanced anodes which have the potential to facilitate more efficient electron transfer for MiFCs because carbon nanostructures, such as nanofibers, possess outstanding conducting properties and increase the available surface area for cellular attachment. In the initial phase of this project, we investigated the performance of a novel nitrifying MiFC that contains a nanostructure-enhanced anode and that demonstrated power generation during preliminary batch testing. Subsequent batch runs were performed with pure cultures of Nitrosomonas europaea which demonstrated very low power generation. After validating our fuel cell hardware using abiotic experiments, we proceeded to test the MiFC using a mixed culture from a local wastewater treatment plant, which was enriched for nitrifying bacteria.  Again, the power generation was very low though noticeably higher on the nanostructured anodes.  After establishing and monitoring the growth of another enriched nitrifying culture, we repeated the experiment a third time, again observing very low power generation. In the absence of appreciable and repeatable power production from pure and mixed nitrifying cultures, we focused on the second major objective of the work which was the fabrication and characterization of carbon nanostructured anodes. The second research objective evaluated whether or not addition of carbon nanostructures to stainless steel anodes in anaerobic microbial fuel cells enhanced electricity generation.  The results from the studies focused on this element were very promising and demonstrated that CNS-coated anodes produced up to two orders of magnitude more power in anaerobic microbial fuel cells than in MiFCs with uncoated stainless steel anodes. The largest power density achieved in this study was 506 mW m-2, and the average maximum power density of the CNS-enhanced MiFCs using anaerobic sludge was 300 mW m-2.  In comparison, the average maximum power density of the MiFCs with uncoated anodes in the same experiments was only 13.7 mW m-2, an almost 22-fold red.

  • Lingua: Inglese

    Editore: IWA Publishing, GB, 2010

    1843393360 / 9781843393368

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    Da: Rarewaves.com UK, London, Regno UnitoRarewaves.com UK

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    EUR 182,36

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    Paperback. Condizione: New. Wastewater treatment is an energy intensive process that removes contaminants and protects the environment. While some wastewater treatment plants (WWTPs) recover a small portion of their energy demand through sludge handling processes, most of the useful energy available from wastewater remains unrecovered. Efforts are underway to harness energy from wastewater by developing microbial fuel cells (MiFCs) that generate electricity. Key challenges to the development of microbial fuel cells include inefficiencies inherent in recovering energy from microbial metabolism (particularly carbon metabolism) and ineffective electron transfer processes between the bacteria and the anode. We explored the prospects for constructing microaerobic nitrifying MiFCs which could exhibit key advantages over carbon-based metabolism in particular applications (e.g., potential use in ammonia-rich recycle streams). In addition, we evaluated nanostructure-enhanced anodes which have the potential to facilitate more efficient electron transfer for MiFCs because carbon nanostructures, such as nanofibers, possess outstanding conducting properties and increase the available surface area for cellular attachment. In the initial phase of this project, we investigated the performance of a novel nitrifying MiFC that contains a nanostructure-enhanced anode and that demonstrated power generation during preliminary batch testing. Subsequent batch runs were performed with pure cultures of Nitrosomonas europaea which demonstrated very low power generation. After validating our fuel cell hardware using abiotic experiments, we proceeded to test the MiFC using a mixed culture from a local wastewater treatment plant, which was enriched for nitrifying bacteria.  Again, the power generation was very low though noticeably higher on the nanostructured anodes.  After establishing and monitoring the growth of another enriched nitrifying culture, we repeated the experiment a third time, again observing very low power generation. In the absence of appreciable and repeatable power production from pure and mixed nitrifying cultures, we focused on the second major objective of the work which was the fabrication and characterization of carbon nanostructured anodes. The second research objective evaluated whether or not addition of carbon nanostructures to stainless steel anodes in anaerobic microbial fuel cells enhanced electricity generation.  The results from the studies focused on this element were very promising and demonstrated that CNS-coated anodes produced up to two orders of magnitude more power in anaerobic microbial fuel cells than in MiFCs with uncoated stainless steel anodes. The largest power density achieved in this study was 506 mW m-2, and the average maximum power density of the CNS-enhanced MiFCs using anaerobic sludge was 300 mW m-2.  In comparison, the average maximum power density of the MiFCs with uncoated anodes in the same experiments was only 13.7 mW m-2, an almost 22-fold red.

  • Lingua: Inglese

    Editore: CRC Press, 1993

    0849344239 / 9780849344237

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    Da: Miranda Books & Ephemera, Easthampton, MA, U.S.A.Miranda Books & Ephemera

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    Condizione: Usato - Ottimo

    EUR 269,20

    EUR 3,91 spedizione 
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    Quantità: 1 disponibili

    Hardcover. Condizione: Fine. First Edition. FINE. FIRST edition, first printing. No dust jacket as issued. ***Bookstore Fresh*** Cover color bright and clean all around, corners crisp. Interior bright and clean, appears unread. Unmarked on inspection, except for small embossed stamp on inside free flyleaf.

  • Lingua: Inglese

    Editore: CRC Press LLC, 1993

    0849344239 / 9780849344237

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    Da: Better World Books, Mishawaka, IN, U.S.A.Better World Books

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    Condizione: Usato - Molto buono

    EUR 287,71

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    Condizione: Very Good. Former library copy. Pages intact with possible writing/highlighting. Binding strong with minor wear. Dust jackets/supplements may not be included. Includes library markings. Stock photo provided. Product includes identifying sticker. Better World Books: Buy Books. Do Good.

  • Editore: Institute for the study of human Awareness

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    unknown_binding. Condizione: Good. Grade 2 out 5 points. Used books with this grade may have any of the following: Moderate wear on cover and pages, personalized notes/names, stickers/labels, markings on pages, bends/creases on cover/spine, ex-library markings. May not include extra materials such as dust jackets, access codes, CDs, accessories, etc. All orders ship by next business day! We are a small company and very thankful for your business.