IP Library Granted Patent US 12,259,081
Granted Patent B2
US 12,259,081 · App. 17/484,369 · Granted Mar 25, 2025

Thermal insulating sleeve liner for fluid flow device and fluid flow device incorporating such liner

Inventors: Luc David Vernhes (Hampstead, CA); Fadila Khelfaoui (Montreal, CA); Alfredo Vincenzo Costantini (Laval, CA); Duc Thanh Tran (Montreal, CA)
Assignee: VELAN INC.
F16L59/147F16L59/021F16L59/06F16L59/143F16L59/16
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Quick Facts
Patent No.
US 12,259,081
App. No.
17/484,369
Granted
Mar 25, 2025
Kind
B2
Abstract

A thermal insulating sleeve liner for fluid flow devices such as valves and piping used in severe industrial applications is preferably additively manufactured (e.g., by 3D printing) to fit into the bore of a protected fluid flow device. Internal interstices and/or external ribs provide added thermal insulation. An integrally formed end-lip or a separate end-cap secures and/or locates the sleeve liner within the protected fluid flow device between different diameter distal and proximal portions of the bore. If internal interstices are sealed they can be vacuumed or pressurized to enhance thermal insulating properties. Fitted dimensions are sufficiently small to prevent ingress of thermally conductive particles circulating in use within the flow path of the protected flow device. A pressure equalizing aperture can be provided on or through the sleeve if needed in some applications.

Claims (28)

1. A thermal insulating sleeve liner configured for use in a fluid flow device subjected to cyclic extreme thermal shock, for being installed within a fluid flow bore of the fluid flow device comprising a valve with flanged pipe connectors, and for being installed within at least one of the flanged pipe connectors of the valve, said configured thermal insulating sleeve liner comprising:

an additively manufactured monolithic hollow cylindrical metallic sleeve having an outer diameter sized to slide into a fluid flow path bore of a fluid flow device thereafter accommodating a fluid flow path there-within, said metallic sleeve having two spaced-apart cylindrical shells and an internal infill pattern of integrally formed supporting structure there-between including internal interstices providing increased thermal resistance to heat flowing from inside the sleeve to outside the sleeve.

2. The thermal insulating sleeve liner as in claim 1 further comprising:

an integrally formed securing/locating lip of increased diameter at one end of the cylindrical sleeve.

3. A fluid flow device having the thermal insulating sleeve liner as in claim 2 installed within the fluid flow bore of the fluid flow device, wherein said securing/locating lip at one end is fitted within and affixed to an increased diameter proximal portion of the fluid flow bore, the other end of the sleeve being butted against a smaller diameter distal portion of the fluid flow bore.

4. The thermal insulating sleeve liner as in claim 1 wherein the sleeve was additively manufactured by a 3D printing process which provides a pattern of externally protruding ribs defining its outer diameter.

5. The thermal insulating sleeve liner as in claim 1 wherein the sleeve was additively manufactured by a 3D printing process which provides:

an inner shell,

an outer shell,

a plurality of patterned internally located supporting structures formed within a chamber between said inner and outer shells, said internally located supporting structures being configured to include integrally formed voids.

6. The thermal insulating sleeve liner as in claim 5 wherein ends of said chamber are closed to make said chamber air-tight.

7. The thermal insulating sleeve liner as in claim 6 wherein, before complete closure of said chamber ends, said included voids are vacuumed or pressurized with a thermally insulating fluid.

8. A fluid flow device having the thermal insulating sleeve liner as in claim 1 installed within a fluid flow bore of the fluid flow device.

9. The fluid flow device as in claim 8 comprising a valve with flanged pipe connectors, said thermal insulating sleeve liner being installed within at least one of the flanged pipe connectors of the valve.

10. A fluid flow device having the thermal insulating sleeve liner as in claim 1 installed within the fluid flow bore of the fluid flow device and further comprising a separate securing/locating ring-shaped cap disposed at a proximal end of the sleeve fitted within and affixed to an increased diameter proximal portion of the fluid flow bore, the other end of the sleeve being butted against a smaller diameter distal portion of the fluid flow bore.

11. The thermal insulating sleeve liner as in claim 1 wherein the sleeve has at least one pressure equalizing aperture therein sized to prevent ingress of thermally conductive particles in use.

12. The thermal insulating sleeve liner as in claim 1 , further comprising a wear-resistant coating on an inner surface of the internal shell of the two spaced-apart cylindrical shells.

13. A thermal insulating sleeve liner configured for use in a fluid flow device within a serviced application and subjected to cyclic extreme thermal shock, for being installed within a fluid flow bore of the fluid flow device comprising a valve with flanged pipe connectors, and for being installed within at least one of the flanged pipe connectors of the valve, said configured thermal insulating sleeve liner comprising:

an additively manufactured monolithic thermal insulating sleeve liner constructed of a metallic material suitable for the serviced application with two spaced apart cylindrical shells and an internal infill structural pattern of integrally formed supporting structure there-between creating internal voids which increase thermal insulation properties while yet remaining structurally adequate to serve as a thermal insulating flow device liner for the serviced application.

14. The thermal insulating sleeve liner as in claim 13 comprising a nickel-chromium alloy.

15. The thermal insulating sleeve liner as in claim 13 further comprising an integrally formed securing/locating lip of increased dimension at one end of the sleeve.

16. The thermal insulating sleeve liner as in claim 15 further comprising an integrally formed pattern of externally protruding ribs.

17. A fluid flow device having the thermal insulating sleeve liner as in claim 15 installed within the fluid flow bore of the fluid flow device, wherein said securing/locating lip at one end is fitted within and affixed to an increased diameter proximal portion of the fluid flow bore, another end of the sleeve being butted against a smaller diameter distal portion of the fluid flow bore.

18. A fluid flow device having the thermal insulating sleeve liner as in claim 13 installed within the fluid flow bore of the fluid flow device, wherein one end of the sleeve is butted against a smaller diameter distal portion of the fluid flow bore and another end of the sleeve is abutting a securing/locating ring-shaped cap welded to a larger diameter proximal portion of the fluid flow bore.

19. A fluid flow device having a thermal insulating sleeve liner installed within a fluid flow bore of the fluid flow device and comprising a valve with flanged pipe connectors, said thermal insulating sleeve liner being installed within at least one of the flanged pipe connectors of the valve, wherein

said thermal insulating sleeve liner comprises:

a monolithic hollow cylindrical metallic sleeve having an outer diameter sized to slide into a fluid flow path bore of a fluid flow device thereafter accommodating a fluid flow path there-within, said metallic sleeve having two spaced-apart cylindrical shells and an internal infill pattern of integrally formed supporting structure there-between including internal interstices providing increased thermal resistance to heat flowing from inside the sleeve to outside the sleeve.

20. The fluid flow device as in claim 19 , wherein the thermal insulating sleeve liner further comprises a wear-resistant coating on the inner surface of an internal shell of the two spaced-apart cylindrical shells.

Assignments (3)
INTELLECTUAL PROPERTY CONFIRMATORY SECURITY AGREEMENT Recorded Jun 19, 2026
From: VELAN INC.
To: CANADIAN IMPERIAL BANK OF COMMERCE, AS ADMINISTRATIVE AGENT
Reel/Frame 075857/0332 →
SECURITY INTEREST Recorded Jun 26, 2025
From: VELAN INC.
To: NATIONAL BANK OF CANADA
Reel/Frame 071533/0188 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 1, 2021
From: VERNHES, LUC DAVID; KHELFAOUI, FADILA; COSTANTINI, ALFREDO; TRAN, DUC THANH
To: VELAN INC.
Reel/Frame 057671/0850 →
Continuity (2)
Provisional Application 62823357 · Mar 25, 2019
Related Publication 20220252206A1 · Aug 11, 2022
References Cited (45)
US 2078606A · Le Grand · 1937 [cited by applicant]
US 2361383A · Coffman · 1944 [cited by applicant]
US 2613166A · Gronemeyer · 1952 [cited by applicant]
US 3945215A · Johnson et al. · 1976 [cited by applicant]
US 4621838A · Kneidel et al. · 1986 [cited by applicant]
US 4791953A · Berchem · 1988 [cited by applicant]
US 5350011A · Sylvester · 1994 [cited by applicant]
US 6220079B1 · Taylor · 2001 [cited by applicant]
US 6575197B2 · Esser · 2003 [cited by applicant]
US 6634388B1 · Taylor et al. · 2003 [cited by applicant]
US 6959916B2 · Chigasaki et al. · 2005 [cited by applicant]
US 7017604B2 · Newberg · 2006 [cited by applicant]
US 8783279B2 · Williams, Jr. et al. · 2014 [cited by applicant]
US 20100071798A1 · Tsapatsaris et al. · 2010 [cited by applicant]
US 20170129052A1 · Buller et al. · 2017 [cited by applicant]
US 20180051834A1 · Hofmann · 2018 [cited by applicant]
US 20180209322A1 · Zhu et al. · 2018 [cited by applicant]
CN 1978970 · 2007 [cited by applicant]
CN 105202294 · 2015 [cited by applicant]
CN 209943625 · 2020 [cited by applicant]
DE 3214918 · 1983 [cited by applicant]
EP 1046423 · 2000 [cited by applicant]
AXENS Ebullated Bed Hydrocracking Process, printed on Jan. 13, 2020 from https://www.axens.net/product/process-licensing/10092/h-oil-rc.html, 3 pp. [cited by applicant]
Clarke, David R. et al., “Thermal Barrier Coating Materials,” Materialstoday, vol. 8, No. 6, Jun. 2005, pp. 22-29. [cited by applicant]
Dorf Ketal, Raising the Standard: Crude Preheat System Fouling Control, https://www.dorfketal.com/industry-solutions/refining/atmospheric-and-vacuum-distillation-units/pre-heat-exchanger-train, Accessed Sep. 23, 2020, 2… [cited by applicant]
Frazier, William E., “Metal Additive Manufacturing: A Review,” Journal of Materials Engineering and Performance, vol. 23, No. 6, Jun. 2014, pp. 1917-1928. [cited by applicant]
Herzog, Dirk et al, “Additive Manufacturing of Metals,” Acta Materialia, vol. 117, 2016, pp. 371-392. [cited by applicant]
“Inconel,” ChemEurope, [Online]. Available: http://www.chemeurope.com/en/encyclopedia/Inconel.html. [Accessed Aug. 22, 2018], 2 pp. [cited by applicant]
International Search Report dated Jun. 18, 2020 issued in PCT International Patent Application No. PCT/IB/2020/052256, 12 pp. [cited by applicant]
Jia, Qingbo et al., “Selective Laser Melting Additive Manufacturing of Inconel 718 Superalloy Parts: Densification, Microstructure and Properties,” Journal of Alloys and Compounds, vol. 585, 2014, pp. 713-721. [cited by applicant]
Jones, R. L., “Thermal barrier coatings,” Metallurgical and Ceramic Protective Coatings, 1996, pp. 194-235. [cited by applicant]
LC-Fining/LC-Max, LC-FINING / LM-MAX-CLG (Chevron Lummus Global)—MDR, Bottom of the Barrel Upgrading, printed on Jan. 13, 2020 from https://www.mcdermott.com/CLG/Bottom-C-FINING, 2 pp. [cited by applicant]
MOGAS Patents Thermal Sleeve, Solves Premature Stress Cracking, MOGAS Industries | Severe Service Ball Valves | Houston, Texas. [Online]. Available: https://www.mogas.com/es-mx/company/news/2016/mogas-patents-thermal-sl… [cited by applicant]
Motyka, Elaine, Protective Coatings Extend Valve Life in Sever Service Conditions, Materials & Manufacturing, www.valve-world.net, Sep. 2014, 3 pp. [cited by applicant]
“Overview of Thermal Fatigue,” Inspectioneering, [Online]. Available from https://inspectioneering.com/tag/thermalfatigue. Accessed Aug. 22, 2018, 1 page. [cited by applicant]
Pontarollo, Alberto et al., Characterisation of Inconel 625 Coatings Deposted by Cold Spray, Conference Paper, ResearchGate, vol. 1, No. 1, Sep. 2011, Uploaded from https://www.researchgate.net/ publication/289522915 on… [cited by applicant]
The Benefits of Finite Element Analysis in Manufacturing, Manor Tool & Manufacturing Company, [Online]. Available: https://www.manortool.com/finite-element-analysis. [Accessed Aug. 22, 2018], 5 pp. [cited by applicant]
Velan, Ebullated Bed Valve Solutions, 2019, 8 pp. [cited by applicant]
Velan, “Our heritage,” Velan. [Online]. Available: https TW our Accessed: Aug. 27, 2018, 4 pp. [cited by applicant]
Why Choosing Inconel 718 for Aerospace Additive Manufacturing?, Farinia Group, [Online]. Available: https://www.farinia.com/additive-manufacturing/3d-materials/inconel-718-aerospace-additive-manufacturing. [Accessed Aug… [cited by applicant]
Coatings for High-Temperature Structural Materials: Trends and Opportunities, 1996. Book. [cited by applicant]
“Fighting the Causes of Pavement Cracks,” Du Pont, [Online]. Available: http://www.dupont.com/products-and-services/construction-materials/asphalt-paving-systems/articles/pavement-cracks.html. [Accessed Aug. 22, 2018].N… [cited by applicant]
Lee, W. E., “Thermal Shock Resistance of Laminated Ceramic Matrix Composites,” Composites, vol. 23, No. 4, p. 282, 1992. https://www.dorfketal.com/industry-solutions/refining/atmospheric-and-vacuum-distillation-units/pr… [cited by applicant]
The American Society of Mechanical Engineers, “ASME Boiler and Pressure Vessel Code, Section II, Part D,” ASME, New York, 2015. Standards. [cited by applicant]
Qianfan, “Durability and Reliability in Diesel Engine System Design,” Diesel Engine System Design Book, 2013, pp. 113-202. [cited by applicant]