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Active Spatial Sunlight DilutionTM
Increases Areal Productivity of Microalgae
- A Presentation at ISAP Conference 2014, Sydney
Weixing Tan, PhD
Grande Prairie Regional College,
Canada
Key Limitation for Microalgae Industrial
Application
โ€ข Low areal productivity (Benemann 2003)
โ€ข Directly impacts economic bottom line
โ€ข Under 20 g/m2/day for open ponds
โ€ข Recently reported from Algenol in (Photobioreactor) PBR:
10,000 gal (ethanol)/acre/yr (equivalent to 32.5 g/m2/day)
(Spall et al. 2011)
โ€ข Up to 50-70 g/m2/day as reported in PBRs (Spall et al.
2011; Sudhakar & Premalatha 2012)
2
Key Limitation for Microalgae Industrial
Application
โ€ข Inefficient sunlight utilization by microalgae
โ€ข Major contribution to low productivity
โ€ข 50-90% of the energy losses (Zemke et al. 2008; Sudhakar &
Premalatha 2012)
โ€ข Maximum efficiency โ‰ˆ 12% of the total solar input after
reductions of PAR portion (47%), transmission (95%) &
photoconversion (27%)
โ€ข Equivalent to approximately 150-200 g/m2/day
โ€ข Reported productivities were only 10-30% of this
maximum. 3
Analysis of Sunlight Utilization by Microalgae
# Item
Relative
Reduction
Reduction in %
Solar Energy
% of Solar Energy
after Reduction Comments
(1) Maximum 12.0%
(2)
Efficiency of Photon
Utilization due to
Saturation - Bush Equation
35% of the (1)
(50% sunny
days)
-4.2% 7.8%
Saturation PAR =
200 ยตmol/m
2
/s
(3)
Sub-optimal
Environments, Including
Photoinhibition
70-0% of the (2) -5.5-0% 2.3-7.8%
(4)
Respiration &
Maintenance
40% of the (3) -0.9-3.3% 1.4-4.5%
Equivalent to
~10-50 g/m
2
/day
4
What are holding us up from the maximum?
โ€ข The culprits - photosaturation and suboptimal environments
(difficult to reduce respiration/maintenance)
โ€ข Inefficient sunlight utilization is the key limiting factor,
representing 60-100% of the recoverable opportunities โ€“ a
conclusion recognized for over 50 years (e.g. Vonshak & Torzillo 2003).
1. Photosaturation: 4.2 % of the solar input or equivalent 50 g/m2/day
2. Photoinhibition (at 30% of the suboptimal environments) : 0-1.7% or 0-20
g/m2/day
5
Vonshak & Torzillo (2003)
Energy Loss during Photosynthesis
6
Photosaturation Quenching Photoinhibition
What we can do
Three solutions suggested by Vonshak & Torzillo (2003)
1. โ†‘ algae density & mixing rate โ€“ logistics, energy intensive,
sheering stress, scalability
2. Improve light distribution in the culture โ€“ cumbersome,
expensive, scalability
3. Algal strains with small antenna โ€“ to be proved yet, trade-off?
We suggest the 4th:
4. Active Spatial Sunlight DilutionTM โ€“ simple, inexpensive,
scalable & works (patented PCT/CA2014/050450)
7
What is Active Spatial Sunlight DilutionTM?
โ€ข Orienting 2 opposing surfaces ACTIVELY in parallel to the sunray:
1. Reduces or โ€˜DILUTESโ€™ sunlight exposure
2. Allows uniform sunlight on both surfaces, diminishing shading
in Parallelin Perpendicular
vs
When
facing the
sunโ€ฆ
Spatial Sunlight Dilution in Microalgae/Plant Systems
9
Moving the System and Tracking the Sun through a Day
10
(We are
developing a
simpler,
inexpensive
& automated
system.)
System Diagram for This Study
11
(PAR
sensor)
Photobioreactor (PBR) System
(Florescence
light for
hybrid 24/7
operation)
(Computer
Control System)
12
Sunlight Dilution on E-W PBR Surfaces
with Uniform Exposure
East West
When we align the
panel in parallel to
the sunโ€ฆ
13
Description of the PBR System
โ€ข One panel with 24x2=48 round glass tubes (244x2.7 cm), 61 L
โ€ข Glasses staggered at 1 cm spacing on both surfaces, facing E-W
โ€ข 2 curtains (12 cm spacing) on each side to simulate the scale-up
โ€ข Moving at 1โฐ increment in ~10:30-17:30 each day by computer
โ€ข PAR sensors on E-W sides and in perpendicular to Sun
โ€ข One air bubbler in each tube (~500-1000 ยตm)
โ€ข Culture circulation by air-lifting
14
Microalgae Culture
โ€ข Chlorella vulgaris (UTEX 2714) grown auto-trophically
โ€ข 2 cycles of 3 mostly sunny days in September 2012
โ€ข Culture conditions:
โ€ข 3% CO2 flue gas (mixed with air) from natural gas generator
โ€ข Temperature inside solarium: 22-25/22โฐC (day/night)
โ€ข Balanced chemical nutrient solution with initial 413 ppm N
at pH 6.5
โ€ข Starting algae density of ~1.26 g/L and then measured each
day
15
Preliminary Results โ€“ Sunlight Dilution (1st example)
(Some troughs were
from structural beams)
16
Preliminary Results โ€“ Sunlight Dilution (2nd example)
(Some troughs were
from structural beams)
17
Preliminary Results โ€“ Microalgae Productivity
โ€ข Average volumetric productivity =
0.634+0.207 g/L/day
โ€ข Equivalent to 106 g/m2/day when
calculated on a scaled industrial
configuration
(Chlorella vulgaris)
18
Current and Future Research and Development
โ€ข Construction of 5-panel system with a
simpler, inexpensive & automated design
(300 L) for further testing of scalability
โ€ข Nutrient and water recycling
โ€ข Microbe control
โ€ข Development and construction of a pilot
scale system beside a emission source
19
Conclusion
โ€ข Overcoming photosaturation and photoinhibition is the
most promising strategy to significantly increase
microalgae productivity.
โ€ข The โ€˜Active Spatial Sunlight DilutionTMโ€™ concept is a simple
and scalable solution.
โ€ข It increases areal productivity by:
1. Distributing a diluted and desirable fraction of sunlight to more
compacted PBR surface areas
2. Diminishing mutual shading on opposite PBR surfaces
3. Significantly reducing photosaturation and photoinhibition
20
Acknowledgements
โ€ข Major Sponsors/Partners
โ€ข Natural Science and Engineering Research Council
(NSERC), Canada
โ€ข ConocoPhillips Canada Ltd., Canada
โ€ข EnEco Systems Inc, Canada, Europe, South America
โ€ข Woodmere Nursery Ltd., Canada
โ€ข Rheaume Engineering Inc., Canada
21
Acknowledgements
โ€ข Research Team
โ€ข Weixing Tan, PhD, Principal Investigator (plant
ecophysiology)
โ€ข Abigail Adebusuyi, PhD (microbiology and biotechnology)
โ€ข Melissa Day, PhD (microbiology, 2011-13)
โ€ข Ali Al-Asadi, PhD (astronomy and physics)
โ€ข Bruce Rutley, PhD PAg (agricultural production systems)
โ€ข Laurie Lin (mechanical engineering)
โ€ข Jordan Pickup (computing)
โ€ข Aurele Lemay (electrical)
22
Thanks!
Comments & Questions
Weixing Tan
wtan@gprc.ab.ca
23

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W Tan presentation Sydney ISAP Conference 2014

  • 1. Active Spatial Sunlight DilutionTM Increases Areal Productivity of Microalgae - A Presentation at ISAP Conference 2014, Sydney Weixing Tan, PhD Grande Prairie Regional College, Canada
  • 2. Key Limitation for Microalgae Industrial Application โ€ข Low areal productivity (Benemann 2003) โ€ข Directly impacts economic bottom line โ€ข Under 20 g/m2/day for open ponds โ€ข Recently reported from Algenol in (Photobioreactor) PBR: 10,000 gal (ethanol)/acre/yr (equivalent to 32.5 g/m2/day) (Spall et al. 2011) โ€ข Up to 50-70 g/m2/day as reported in PBRs (Spall et al. 2011; Sudhakar & Premalatha 2012) 2
  • 3. Key Limitation for Microalgae Industrial Application โ€ข Inefficient sunlight utilization by microalgae โ€ข Major contribution to low productivity โ€ข 50-90% of the energy losses (Zemke et al. 2008; Sudhakar & Premalatha 2012) โ€ข Maximum efficiency โ‰ˆ 12% of the total solar input after reductions of PAR portion (47%), transmission (95%) & photoconversion (27%) โ€ข Equivalent to approximately 150-200 g/m2/day โ€ข Reported productivities were only 10-30% of this maximum. 3
  • 4. Analysis of Sunlight Utilization by Microalgae # Item Relative Reduction Reduction in % Solar Energy % of Solar Energy after Reduction Comments (1) Maximum 12.0% (2) Efficiency of Photon Utilization due to Saturation - Bush Equation 35% of the (1) (50% sunny days) -4.2% 7.8% Saturation PAR = 200 ยตmol/m 2 /s (3) Sub-optimal Environments, Including Photoinhibition 70-0% of the (2) -5.5-0% 2.3-7.8% (4) Respiration & Maintenance 40% of the (3) -0.9-3.3% 1.4-4.5% Equivalent to ~10-50 g/m 2 /day 4
  • 5. What are holding us up from the maximum? โ€ข The culprits - photosaturation and suboptimal environments (difficult to reduce respiration/maintenance) โ€ข Inefficient sunlight utilization is the key limiting factor, representing 60-100% of the recoverable opportunities โ€“ a conclusion recognized for over 50 years (e.g. Vonshak & Torzillo 2003). 1. Photosaturation: 4.2 % of the solar input or equivalent 50 g/m2/day 2. Photoinhibition (at 30% of the suboptimal environments) : 0-1.7% or 0-20 g/m2/day 5
  • 6. Vonshak & Torzillo (2003) Energy Loss during Photosynthesis 6 Photosaturation Quenching Photoinhibition
  • 7. What we can do Three solutions suggested by Vonshak & Torzillo (2003) 1. โ†‘ algae density & mixing rate โ€“ logistics, energy intensive, sheering stress, scalability 2. Improve light distribution in the culture โ€“ cumbersome, expensive, scalability 3. Algal strains with small antenna โ€“ to be proved yet, trade-off? We suggest the 4th: 4. Active Spatial Sunlight DilutionTM โ€“ simple, inexpensive, scalable & works (patented PCT/CA2014/050450) 7
  • 8. What is Active Spatial Sunlight DilutionTM? โ€ข Orienting 2 opposing surfaces ACTIVELY in parallel to the sunray: 1. Reduces or โ€˜DILUTESโ€™ sunlight exposure 2. Allows uniform sunlight on both surfaces, diminishing shading in Parallelin Perpendicular vs When facing the sunโ€ฆ
  • 9. Spatial Sunlight Dilution in Microalgae/Plant Systems 9
  • 10. Moving the System and Tracking the Sun through a Day 10
  • 11. (We are developing a simpler, inexpensive & automated system.) System Diagram for This Study 11
  • 12. (PAR sensor) Photobioreactor (PBR) System (Florescence light for hybrid 24/7 operation) (Computer Control System) 12
  • 13. Sunlight Dilution on E-W PBR Surfaces with Uniform Exposure East West When we align the panel in parallel to the sunโ€ฆ 13
  • 14. Description of the PBR System โ€ข One panel with 24x2=48 round glass tubes (244x2.7 cm), 61 L โ€ข Glasses staggered at 1 cm spacing on both surfaces, facing E-W โ€ข 2 curtains (12 cm spacing) on each side to simulate the scale-up โ€ข Moving at 1โฐ increment in ~10:30-17:30 each day by computer โ€ข PAR sensors on E-W sides and in perpendicular to Sun โ€ข One air bubbler in each tube (~500-1000 ยตm) โ€ข Culture circulation by air-lifting 14
  • 15. Microalgae Culture โ€ข Chlorella vulgaris (UTEX 2714) grown auto-trophically โ€ข 2 cycles of 3 mostly sunny days in September 2012 โ€ข Culture conditions: โ€ข 3% CO2 flue gas (mixed with air) from natural gas generator โ€ข Temperature inside solarium: 22-25/22โฐC (day/night) โ€ข Balanced chemical nutrient solution with initial 413 ppm N at pH 6.5 โ€ข Starting algae density of ~1.26 g/L and then measured each day 15
  • 16. Preliminary Results โ€“ Sunlight Dilution (1st example) (Some troughs were from structural beams) 16
  • 17. Preliminary Results โ€“ Sunlight Dilution (2nd example) (Some troughs were from structural beams) 17
  • 18. Preliminary Results โ€“ Microalgae Productivity โ€ข Average volumetric productivity = 0.634+0.207 g/L/day โ€ข Equivalent to 106 g/m2/day when calculated on a scaled industrial configuration (Chlorella vulgaris) 18
  • 19. Current and Future Research and Development โ€ข Construction of 5-panel system with a simpler, inexpensive & automated design (300 L) for further testing of scalability โ€ข Nutrient and water recycling โ€ข Microbe control โ€ข Development and construction of a pilot scale system beside a emission source 19
  • 20. Conclusion โ€ข Overcoming photosaturation and photoinhibition is the most promising strategy to significantly increase microalgae productivity. โ€ข The โ€˜Active Spatial Sunlight DilutionTMโ€™ concept is a simple and scalable solution. โ€ข It increases areal productivity by: 1. Distributing a diluted and desirable fraction of sunlight to more compacted PBR surface areas 2. Diminishing mutual shading on opposite PBR surfaces 3. Significantly reducing photosaturation and photoinhibition 20
  • 21. Acknowledgements โ€ข Major Sponsors/Partners โ€ข Natural Science and Engineering Research Council (NSERC), Canada โ€ข ConocoPhillips Canada Ltd., Canada โ€ข EnEco Systems Inc, Canada, Europe, South America โ€ข Woodmere Nursery Ltd., Canada โ€ข Rheaume Engineering Inc., Canada 21
  • 22. Acknowledgements โ€ข Research Team โ€ข Weixing Tan, PhD, Principal Investigator (plant ecophysiology) โ€ข Abigail Adebusuyi, PhD (microbiology and biotechnology) โ€ข Melissa Day, PhD (microbiology, 2011-13) โ€ข Ali Al-Asadi, PhD (astronomy and physics) โ€ข Bruce Rutley, PhD PAg (agricultural production systems) โ€ข Laurie Lin (mechanical engineering) โ€ข Jordan Pickup (computing) โ€ข Aurele Lemay (electrical) 22
  • 23. Thanks! Comments & Questions Weixing Tan wtan@gprc.ab.ca 23