Thursday, December 3, 2015

Video of Heated Water Flowing from the Outlet Tubing

Water leaving the system was found to be reaching temperatures over 120 degrees Fahrenheit; this alone proved the system to be functional and effective for heating water in a sustainable manner.

Testing and Tube Connection Photos

Visual of the temperature prob used take measurements of the system. The hottest areas of the pile were found to be reaching temperatures of over 130 degrees Fahrenheit




Measurements of temperature through ought the system were taken. The data shows that outsides of the pile were warmer than the middle, while vertical location showed now correlations. We believe the outside was warmer due to easier access to oxygen through convective forces. 



Brad taking temperature measurements on different locations of the compost pile. 

Laying the insulted tubing into the trench that leads to the greenhouse.Insulation from the tubing as well as the Earth will stop the water from losing heat on its way back to the greenhouse. 



The compost pile next to the shed where the tubing will go to and from. You can see the unconnected tube on the top of the pile.
Some of the guys hard at work digging the trench. This trench will provide more insulation to the already insulated tubing carrying the water to and from the greenhouse.

Pumping Systems

Pump to move water through the compost and water storage tank system. 


Pump that will be able to measure temperature of water going into the fish tank.

Monday, November 30, 2015

More Construction Pictures


Laying the preliminary tubing that will allow oxygen to enter the system, then rise. Heat producing bacterial processes use oxygen as an electron acceptor.


Layering the bottom of the compost pile


 Inserting water tubing to the system. 3 100ft coils were placed 18'' apart for a total of 300ft. This would allow for plenty of time for the water to become heated. Hay can also be observed on the outside to help preserve the overall shape and insulatioTubing was spaced 6in apart with the use of stakes. This separation would allow for better insulation and a more successful heating process. 





ompleted pile. The system was hosed the entire time to provide an ideal moisture content. Moisture is ideal for living organisms...too dry of a system would slow or stop the composting process. 





Monday, November 23, 2015

Construction pics

Here are some pictures of the construction site:






Laying the preliminary tubing that will allow oxygen to enter the system, then rise. Heat producing bacterial processes use oxygen as an electron acceptor.




 Inserting water tubing to the system. 3 100ft coils were placed 18'' apart for a total of 300ft. This would allow for plenty of time for the water to become heated. Hay can also be observed on the outside to help preserve the overall shape and insulation.



Tubing was spaced 6in apart with the use of stakes. This separation would allow for better insulation and a more successful heating process. 


Building the second layer at night. Bark mulch was chosen due to its ideal surface area. Manure was mixed in (10%). The materials were chosen not only for their surface area, but also for there Carbon and Nitrogen contents. 



Completed pile. The system was hosed the entire time to provide an ideal moisture content. Moisture is ideal for living organisms...too dry of a system would slow or stop the composting process. 

Thursday, November 19, 2015

More Sources

Scholar Article:

Scholarly Articles 

        - 1.S.H.Lin. A heat transfer model for biological waste water treatment system. 

        - Cai Longjun, Feng Zhejun. Calculation and test of heat-transfer coefficient of heating pipe of water heating system in gutter-connected greenhouse 

  • http://lib.dr.iastate.edu/cgi/viewcontent.cgiarticle=1233&context=abe_eng_pubs                                                                                                                                                                                                                                           3.John A.Nienaber, James A. DeShazer, Hongwei Xin, Peter E. Hillman, Jong-Tseng Yen. Measuring Energetics of Biological Process. 

Monday, October 19, 2015

Sources

Good Sources
  • http://www.compostpower.org/sites/default/files/Design%20Guide%203.pdf

    - Describes process of constructing the compost heating system.


  • http://compost.css.cornell.edu/science.html

     - Goes over many engineering aspects of compost heating system.


Scholarly Articles 
  • http://www.hindawi.com/journals/ijce/2010/627930/abs/

        - Energy from waste: Reuse of compost heat as a source of renewable energy


  • http://aem.asm.org/content/41/6/1321.full.pdf+html

        - Composting process control based on intersection between microbial heat output and temp.


  • http://www.nswaienvis.nic.in/Waste_Portal/Research_papers/pdf/A_survey_of_bacteria_and_fungi_during_composting.pdf                                                                                                                                                                                                                                                                   - Survery of bacteria and fungi occurring during composting and self-heating processes.
  • Irvine, G., E. R. Lamont, and B. Antizar-Ladislao. "Energy from Waste: Reuse of Compost Heat as a Source of Renewable Energy." International Journal of Chemical Engineering 2010 (2010): 1-10. Proquest. Web. 2 Nov. 2015.                                                                                                                                                                                                                                               - * Talks about heat exchange calculations. Investigation of the potential for the collection and      reuse of compost head as a source of renewable energy. Cost analyzed among other                  sustainable technologies to evaluate efficiency. 
  • Insam, Heribert. "Molecular Analysis of Bacterial Community Succession during Prolonged Compost Curing. FEMS Microbiol Ecol." ResearchGate. N.p., 04 June 2008. Web. 02 Nov. 2015. <http://www.researchgate.net/publication/5319395_Molecular_analysis_of_bacterial_community_succession_during_prolonged_compost_curing._FEMS_Microbiol_Ecol>.

         - * Microbiology of composting