IP Library Granted Patent US 11,857,924
Granted Patent B2
US 11,857,924 · App. 16/987,386 · Granted Jan 2, 2024

Photocatalytic fluidized bed reactor systems

Inventors: Peter C. Van Buskirk (Newtown, CT); Trevor E. James (Plantsville, CT); Melissa A. Petruska (Newtown, CT); Jeffrey F. Roeder (Brookfield, CT)
Assignee: Sonata Scientific LLC
B01D53/8668B01D53/007B01J35/004B01J35/026B01J35/1014B01J35/1019B01J35/1023B01J35/1061B01D2255/802B01D2255/9202B01D2255/9207B01D2257/708B01D2257/7022C02F1/32C02F1/725C02F2101/322C02F2201/3222C02F2305/10
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Quick Facts
Patent No.
US 11,857,924
App. No.
16/987,386
Granted
Jan 2, 2024
Kind
B2
Abstract

The Invention describes photocatalytic reactor systems that employ fluidization of the photocatalyst. These systems are useful for performing chemical transformations on a chemical containing fluid, including for VOCs. Aspects of the invention include non-imaging optics, abrasion resistant coatings and photoreactor designs.

Claims (24)

1. A photocatalytic reactor system for performing chemical transformations in a fluid, the reactor system comprising: a fluidizable inorganic composite photocatalyst comprising a photoactive catalyst disposed on a non-photoactive material with a N 2 BET surface area in the range from 50 to 600 m 2 /g and with attrition less than 3 wt %/h, the reactor system further comprising a photoreactor that contains the fluidizable inorganic composite photocatalyst, the reactor system further comprising an illumination source in a wavelength range of 250-420 nm that directs-photocatalytic illumination into the photocatalyst, the reactor system further comprising a mechanical means to fluidize the inorganic composite photocatalyst.

2. The fluidizable composite photocatalyst of claim 1 , wherein the photoactive catalyst comprises TiO 2 , and the non-photoactive material comprises Al 2 O 3 .

3. The photocatalytic reactor system of claim 1 , wherein the inorganic composite photocatalyst contains pores with sizes in the 2-50 nm range.

4. The photocatalytic reactor system of claim 1 , wherein the inorganic composite photocatalyst comprises particles having mean diameter from 20-600 μm.

5. The photocatalytic reactor system of claim 1 , wherein the illumination source has output primarily in the wavelength range of 360-390 nm.

6. The photocatalytic reactor system of claim 5 , wherein the illumination source comprises a light emitting diode.

7. The photocatalytic reactor system of claim 5 , further comprising an illumination source that has output in the range of 420-2800 nm, thereby being effective for photocatalyst heating.

8. The photocatalytic reactor system of claim 1 , wherein the illumination source directs photocatalytic illumination primarily in an axial direction relative to a cylindrical photocatalyst bed of the inorganic composite photocatalyst in the photocatalytic reactor system.

9. The photocatalytic reactor system of claim 8 , wherein fluid flow is provided primarily in an axial direction relative to a cylindrical photocatalyst bed of the inorganic composite photocatalyst in the photocatalytic reactor system.

10. The photocatalytic reactor system of claim 1 , wherein the fluidizable inorganic photocatalyst forms a photocatalytic bed with voidage which is greater than 0.36.

11. The photocatalytic reactor system of claim 1 , wherein the interior walls of the reactor system comprise reflective elements to direct photocatalytic illumination onto the fluidized inorganic photocatalyst which forms a photocatalytic bed.

12. The photocatalytic reactor system of claim 11 , wherein the reflective elements have reflectance greater than 90% at the photocatalytic illumination wavelengths of 365 nm or 385 nm.

13. The photocatalytic reactor system of claim 11 , wherein the reflective elements exposed to the fluidized photocatalyst are coated with a transparent abrasion resistant coating.

14. The photocatalytic reactor system of claim 11 , wherein the reflective elements utilize dichroic or reflective coatings.

15. The photocatalytic reactor system of claim 11 , wherein the abrasion resistant coating is selected from the group consisting of a ceramic, diamond, and diamond like carbon material.

16. The photocatalytic reactor system of claim 1 , wherein photocatalyst reflectance is between 40% and 95% at photocatalytic illumination wavelengths of 365 nm or 385 nm.

17. The photocatalytic reactor system of claim 1 , which is operated between 20° C. and 150° C.

18. The photocatalytic reactor system of claim 1 , wherein at least two different inorganic composite photocatalysts differing in at least one property selected from the group consisting of surface area, pore size, photoactive catalyst material, and non-photoactive material comprise the fluidized inorganic photocatalyst which forms a photocatalytic bed in the photocatalytic reactor system.

19. The photocatalytic reactor system of claim 18 , wherein at least two different inorganic composite photocatalysts differing in photoactive catalyst material comprise the fluidized inorganic photocatalyst which forms a photocatalytic bed in the photocatalytic reactor system.

20. The photocatalytic reactor system of claim 18 , wherein the different inorganic composite photocatalysts are provided to mineralize specific different components of a fluid stream used to fluidize the fluidized inorganic photocatalyst which forms a photocatalytic bed.

21. The photocatalytic reactor system of claim 1 , which is used to mineralize a VOC or organic species.

22. The photocatalytic reactor system of claim 21 , which uses the incoming gas stream to be mineralized as the mechanical means to achieve fluidization.

23. The photocatalytic reactor system of claim 1 , which is used to transform a VOC or organic species to a selected product or products.

24. The photocatalytic reactor system of claim 1 , which incorporates a regeneration zone.

Assignments (1)
CONFIRMATORY LICENSE Recorded Nov 29, 2022
From: SONATA SCIENTIFIC LLC
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 062011/0437 →
Continuity (8)
Continuation In Part 16680495 · Nov 12, 2019
Continuation In Part 16212663 · Dec 6, 2018
Continuation In Part 16147536 · Sep 28, 2018
Provisional Application 62883286 · Aug 6, 2019
Provisional Application 62760428 · Nov 13, 2018
Provisional Application 62595261 · Dec 6, 2017
Provisional Application 62564408 · Sep 28, 2017
Related Publication 20200360857A1 · Nov 19, 2020