IP Library Granted Patent US 12,240,682
Granted Patent B2
US 12,240,682 · App. 18/591,985 · Granted Mar 4, 2025

Biotic material apparatus for thermally protecting and/or transporting temperature sensitive products

Inventors: Melissa Germain (Tampa, FL); Jean-Pierre Emond (Tampa, FL)
Assignee: ILLUMINATE CONSULTING, LLC
B65D81/3897B65D65/466B65D81/3823B65D2577/00
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Quick Facts
Patent No.
US 12,240,682
App. No.
18/591,985
Granted
Mar 4, 2025
Kind
B2
Abstract

Embodiments of the subject invention relate to a method and apparatus for shipping products so as to control the temperatures the products are exposed to. Embodiments can increase the amount of time the product and/or portions of the product experience a desired temperature range and/or reduce the amount of time the product and/or portions of the product experience temperatures outside of the desired temperature range and/or experience an undesirable temperature range. Embodiments can incorporate biotic materials, such as wood fibers or moss, positioned around and/or near the product positioned inside a packaging container or around a pallet load, such that the biotic materials restrict heat flow from one or more locations on the exterior of the package to one or more other locations in the interior of the package.

Claims (123)

1. A method of providing a thermal environment to a payload transported and/or stored in a surrounding environment, comprising:

providing a packaging container having an inner surface and an outer surface, wherein the inner surface defines an interior of the packaging container;

providing a biotic material insulation medium comprising biotic material having voids within the biotic material, wherein the voids have a gas or gas mixture therein, and wherein the biotic material insulation medium has a permeance for oxygen of at least 15.6×10 3 LO2 /(m 2 atm d);

providing a mechanical structure;

positioning a payload in the interior of the packaging container;

positioning the biotic material insulation medium with respect to the payload such that the biotic material insulation medium is between at least a portion of the payload and the outer surface of the container;

positioning the mechanical structure with respect to the biotic material insulation medium such that the mechanical structure provides mechanical support to the biotic material insulation medium so that the biotic material insulation medium surrounds at least 50% of the payload; and

positioning the packaging container, with the biotic material insulation medium and mechanical structure, in a surrounding environment,

wherein the surrounding environment has a surrounding temperature that is (i) above, or (ii) below, respectively, a desired temperature range; and

wherein, when the packaging container, with the biotic material insulation medium and mechanical structure, is positioned in the surrounding environment such that the payload has a payload temperature within the desired temperature range, the biotic material insulation medium (i) reduces a rate at which the payload absorbs heat that transfers from the surrounding environment into the interior of the packaging container, or (ii) reduces a rate at which the payload dissipates heat that transfers from into the interior of the packaging container into the surrounding environment.

2. The method according to claim 1 , wherein the biotic material comprises filaments or particles, or both filaments and particles.

3. The method according to claim 2 , wherein a bonding agent is used to adhere the filaments and/or particles to each other.

4. The method according to claim 1 , wherein the biotic material comprises a material selected from woody biotic materials, bryophyte biotic materials, herbaceous biotic materials, and fungi materials.

5. The method according to claim 1 , wherein the biotic material comprises material selected from threadlike wood, fibers or fibrils of a plant material, and portions of a stalk of a plant.

6. The method according to claim 1 ,

wherein biotic material has a density from 96 kg/m 3 to 960 kg/m 3 .

7. The method according to claim 1 ,

wherein biotic material insulation medium is at least 85% compostable.

8. The method according to claim 1 ,

wherein at least 10% of the voids in the biotic material are larger than 0.5 cubic millimeter.

9. The method according to claim 1 ,

wherein the biotic material insulation medium has a thermal conductivity in the range from 0.015 to 0.3 W/m-K.

10. The method according to claim 1 ,

wherein the biotic material insulation medium comprises at least 10% of the filaments are longer than 15 mm.

11. The method according to claim 10 ,

wherein at least 60% of the filaments of the biotic filament insulation medium are longer than 3.0 inches.

12. The method according to claim 1 ,

wherein the biotic material insulation medium has a permeance for water vapor permeance of 1×10 3 g water /(m 2 atm d).

13. The method according to claim 1 ,

wherein the biotic material insulation medium shrinks or expands depending on a humidity level of a portion of the interior of the container the biotic filament insulation medium is exposed to and absorption of water into the filaments of the biotic filament insulation medium, or evaporation of water out of the filaments of the biotic filament insulation medium.

14. The method according to claim 1 ,

wherein the biotic material insulation medium has a thickness in a range of 5 mm to 300 mm.

15. The method according to claim 1 , wherein the biotic material is fully or partially encapsulated by structural materials.

16. The method according to claim 1 , wherein the mechanical structure is rigid, porous, and/or permeable.

17. The method according to claim 1 , wherein the biotic material further comprises imbedded seeds, a fire retardant, fragrance, an anti-bacterial compound, and/or an anti-microbial compound.

18. The method according to claim 1 , wherein the biotic material has a water content of 9% to 35%.

19. A packaging container assembly, comprising:

a packaging container having an inner surface and an outer surface, wherein the inner surface defines an interior of the packaging container;

a biotic material insulation medium, comprising a biotic material having voids in the material wherein the voids have a gas or gas mixture therein, and wherein the biotic material insulation medium has a permeance for oxygen of at least 15.6×10 3 L O2 /(m 2 atm d);

a mechanical structure;

wherein the packaging container assembly is configured to position a payload in the interior of the packaging container;

wherein the biotic material insulation medium is positioned between at least a portion of the payload and the outer surface of the container; and

wherein the mechanical structure is positioned with respect to the biotic material insulation medium such that the mechanical structure provides mechanical support to the biotic material insulation medium so that the biotic material insulation medium surrounds at least 50% of the payload.

20. The packaging container assembly according to claim 19 , wherein the biotic material comprises filaments or particles, or both filaments and particles.

21. The packaging container assembly according to claim 20 , wherein a bonding agent is used to adhere the filaments and/or particles to each other.

22. The packaging container assembly according to claim 19 , wherein the biotic material comprises a material selected from woody biotic materials, bryophyte biotic materials, herbaceous biotic materials, and fungi materials.

23. The packaging container assembly according to claim 19 , wherein the biotic material comprises material selected from threadlike wood, fibers or fibrils of a plant material, and portions of a stalk of a plant.

24. The packaging container assembly according to claim 19 , wherein biotic material has a density from 96 kg/m 3 to 960 kg/m 3 .

25. The packaging container assembly according to claim 19 ,

wherein biotic material insulation medium is at least 85% compostable.

26. The packaging container assembly according to claim 19 ,

wherein at least 10% of the voids in the biotic material are larger than 0.5 cubic millimeter.

27. The packaging container assembly according to claim 19 , wherein the biotic material insulation medium has a thermal conductivity in the range from 0.015 to 0.3 W/m-K.

28. The packaging container assembly according to claim 19 , wherein the biotic material insulation medium comprises at least 10% of the filaments are longer than 15 mm.

29. The packaging container assembly according to claim 19 , wherein at least 60% of the filaments of the biotic filament insulation medium are longer than 3.0 inches.

30. The packaging container assembly according to claim 19 , wherein the biotic material insulation medium has a permeance for water vapor permeance of 1×10 3 g water /(m 2 atm d).

31. The packaging container assembly according to claim 19 , wherein the biotic material insulation medium shrinks or expands depending on a humidity level of a portion of the interior of the container the biotic filament insulation medium is exposed to and absorption of water into the filaments of the biotic filament insulation medium, or evaporation of water out of the filaments of the biotic filament insulation medium.

32. The packaging container assembly according to claim 19 , wherein the biotic material insulation medium has a thickness in a range of 5 mm to 300 mm.

33. The packaging container assembly according to claim 19 , wherein the biotic material is fully or partially encapsulated by structural materials.

34. The packaging container assembly according to claim 19 , wherein the mechanical structure is rigid, porous, and/or permeable.

35. The packaging container assembly according to claim 19 , wherein the biotic material further comprises imbedded seeds, a fire retardant, fragrance, an anti-bacterial compound, and/or an anti-microbial compound.

36. The packaging container assembly according to claim 19 , wherein the biotic material has a water content of 9% to 35%.

37. A method of providing a thermal environment to a payload transported and/or stored in a surrounding environment, comprising:

providing a packaging container having an inner surface and an outer surface, wherein the inner surface defines an interior of the packaging container;

providing a biotic material insulation medium comprising biotic material having voids within the biotic material, wherein the voids have a gas or gas mixture therein, and wherein the biotic material insulation medium has a permeance for water vapor permeance of 1×10 3 g water /(m 2 atm d);

providing a mechanical structure;

positioning a payload in the interior of the packaging container;

positioning the biotic material insulation medium with respect to the payload such that the biotic material insulation medium is between at least a portion of the payload and the outer surface of the container;

positioning the mechanical structure with respect to the biotic material insulation medium such that the mechanical structure provides mechanical support to the biotic material insulation medium so that the biotic material insulation medium surrounds at least 50% of the payload; and

positioning the packaging container, with the biotic material insulation medium and mechanical structure, in a surrounding environment,

wherein the surrounding environment has a surrounding temperature that is (i) above, or (ii) below, respectively, a desired temperature range; and

wherein, when the packaging container, with the biotic material insulation medium and mechanical structure, is positioned in the surrounding environment such that the payload has a payload temperature within the desired temperature range, the biotic material insulation medium (i) reduces a rate at which the payload absorbs heat that transfers from the surrounding environment into the interior of the packaging container, or (ii) reduces a rate at which the payload dissipates heat that transfers from into the interior of the packaging container into the surrounding environment.

38. The method according to claim 37 , wherein the biotic material comprises filaments or particles, or both filaments and particles.

39. The method according to claim 38 , wherein a bonding agent is used to adhere the filaments and/or particles to each other.

40. The method according to claim 37 , wherein the biotic material comprises a material selected from woody biotic materials, bryophyte biotic materials, herbaceous biotic materials, and fungi materials.

41. The method according to claim 37 , wherein the biotic material comprises material selected from threadlike wood, fibers or fibrils of a plant material, and portions of a stalk of a plant.

42. The method according to claim 37 ,

wherein biotic material has a density from 96 kg/m 3 to 960 kg/m 3 .

43. The method according to claim 37 ,

wherein biotic material insulation medium is at least 85% compostable.

44. The method according to claim 37 ,

wherein at least 10% of the voids in the biotic material are larger than 0.5 cubic millimeter.

45. The method according to claim 37 ,

wherein the biotic material insulation medium has a thermal conductivity in the range from 0.015 to 0.3 W/m-K.

46. The method according to claim 37 ,

wherein the biotic material insulation medium comprises at least 10% of the filaments are longer than 15 mm.

47. The method according to claim 37 ,

wherein at least 60% of the filaments of the biotic filament insulation medium are longer than 3.0 inches.

48. The method according to claim 37 ,

wherein the biotic material insulation medium has a permeance for oxygen of at least 15.6×10 3 L O2 /(m 2 atm d).

49. The method according to claim 37 ,

wherein the biotic material insulation medium shrinks or expands depending on a humidity level of a portion of the interior of the container the biotic filament insulation medium is exposed to and absorption of water into the filaments of the biotic filament insulation medium, or evaporation of water out of the filaments of the biotic filament insulation medium.

50. The method according to claim 37 ,

wherein the biotic material insulation medium has a thickness in a range of 5 mm to 300 mm.

51. The method according to claim 37 , wherein the biotic material is fully or partially encapsulated by structural materials.

52. The method according to claim 37 , wherein the mechanical structure is rigid, porous, and/or permeable.

53. The method according to claim 37 , wherein the biotic material further comprises imbedded seeds, a fire retardant, fragrance, an anti-bacterial compound, and/or an anti-microbial compound.

54. The method according to claim 37 , wherein the biotic material has a water content of 9% to 35%.

55. A packaging container assembly, comprising:

a packaging container having an inner surface and an outer surface, wherein the inner surface defines an interior of the packaging container;

a biotic material insulation medium, comprising a biotic material having voids in the material wherein the voids have a gas or gas mixture therein, and wherein the biotic material insulation medium has a permeance for water vapor permeance of 1×10 3 g water /(m 2 atm d);

a mechanical structure;

wherein the packaging container assembly is configured to position a payload in the interior of the packaging container;

wherein the biotic material insulation medium is positioned between at least a portion of the payload and the outer surface of the container; and

wherein the mechanical structure is positioned with respect to the biotic material insulation medium such that the mechanical structure provides mechanical support to the biotic material insulation medium so that the biotic material insulation medium surrounds at least 50% of the payload.

56. The packaging container assembly according to claim 55 , wherein the biotic material comprises filaments or particles, or both filaments and particles.

57. The packaging container assembly according to claim 55 , wherein the biotic material comprises a material selected from woody biotic materials, bryophyte biotic materials, herbaceous biotic materials, and fungi materials.

58. The packaging container assembly according to claim 55 , wherein the biotic material comprises material selected from threadlike wood, fibers or fibrils of a plant material, and portions of a stalk of a plant.

59. The packaging container assembly according to claim 55 , wherein biotic material has a density from 96 kg/m 3 to 960 kg/m 3 .

60. The method according to claim 55 ,

wherein biotic material insulation medium is at least 85% compostable.

61. The packaging container assembly according to claim 55 , wherein at least 10% of the voids in the biotic material are larger than 0.5 cubic millimeter.

62. The packaging container assembly according to claim 55 , wherein the biotic material insulation medium has a thermal conductivity in the range from 0.015 to 0.3 W/m-K.

63. The packaging container assembly according to claim 55 , wherein the biotic material insulation medium comprises at least 10% of the filaments are longer than 15 mm.

64. The packaging container assembly according to claim 55 , wherein at least 60% of the filaments of the biotic filament insulation medium are longer than 3.0 inches.

65. The packaging container assembly according to claim 55 , wherein the biotic material insulation medium has a permeance for oxygen of at least 15.6×10 3 L O2 /(m 2 atm d).

66. The packaging container assembly according to claim 55 , wherein the biotic material insulation medium shrinks or expands depending on a humidity level of a portion of the interior of the container the biotic filament insulation medium is exposed to and absorption of water into the filaments of the biotic filament insulation medium, or evaporation of water out of the filaments of the biotic filament insulation medium.

67. The packaging container assembly according to claim 55 , wherein the biotic material insulation medium has a thickness in a range of 5 mm to 300 mm.

68. The packaging container assembly according to claim 55 , wherein a bonding agent is used to adhere the filaments and/or particles to each other.

69. The packaging container assembly according to claim 55 , wherein the biotic material is fully or partially encapsulated by structural materials.

70. The packaging container assembly according to claim 55 , wherein the mechanical structure is rigid, porous, and/or permeable.

71. The packaging container assembly according to claim 55 , wherein the biotic material further comprises imbedded seeds, a fire retardant, fragrance, an anti-bacterial compound, and/or an anti-microbial compound.

72. The packaging container assembly according to claim 55 , wherein the biotic material has a water content of 9% to 35%.

Assignments (2)
SECURITY INTEREST Recorded Dec 2, 2025
From: ILLUMINATE CONSULTING, LLC
To: UMB BANK, N.A.
Reel/Frame 073088/0662 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2024
From: GERMAIN, MELISSA; EMOND, JEAN-PIERRE
To: ILLUMINATE CONSULTING, LLC
Reel/Frame 066632/0455 →
Continuity (3)
Continuation 17256462
Provisional Application 62691378 · Jun 28, 2018
Related Publication 20240262602A1 · Aug 8, 2024
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