IP Library Granted Patent US 12,552,503
Granted Patent B2
US 12,552,503 · App. 17/889,080 · Granted Feb 17, 2026

Hybrid pressure vessel

Inventor: Vilmar da Silva do Vale (Sao Paulo, BR)
Assignee: Oceaneering International, Inc.
B63G8/001G01N23/18G01N2223/628
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Quick Facts
Patent No.
US 12,552,503
App. No.
17/889,080
Granted
Feb 17, 2026
Kind
B2
Abstract

The disclosed invention comprises one or more hybrid metal-composite pressure vessels e.g., 1 (FIG. 1 ) or 100,200 (FIG. 2 ), designed for deep water application of radiation sensitive equipment, where the hybrid pressure vessels comprise a combination of metals and non-metals. A source of radiation may be disposed in one of the two hybrid metal-composite pressure vessels and a radiation detector disposes in the other hybrid metal-composite pressure vessel. A radiation beam is less attenuated as it passes through the non-metal parts of the hybrid pressure vessels and the intensity of the radiation reaching a radiation detector is higher than if it were to pass through the metal parts of the housings.

Claims (50)

1 . A hybrid metal-composite pressure vessel, comprising:

a. an enclosed housing, comprising:

i. a first pressure resistant portion of the enclosed housing comprising a metal and a density sufficient to provide pressure resistance to a first predetermined pressure level, the first pressure resistant portion of the enclosed housing configured to maintain an internal pressure at or below a second predetermined pressure level; and

ii. a remaining portion of the enclosed housing comprising a non-metal configured to provide a predetermined level of transparency to radiation in a predetermined bandwidth;

b. an occlusive interface disposed between the first pressure resistant portion and the remaining portion; and

c. an internal radiation component disposed within the housing and oriented to either emit or detect radiation through the occlusive interface.

2 . The hybrid metal-composite pressure vessel of claim 1 , wherein the metal comprises titanium, steel, or aluminum.

3 . The hybrid metal-composite pressure vessel of claim 1 , wherein the housing comprises a cylinder, the first pressure resistant portion comprises a first cap disposed at a first end of the cylinder, and the remaining portion comprises a second cap disposed distally from the first cap.

4 . The hybrid metal-composite pressure vessel of claim 1 , wherein:

a. the radiation comprises ionizing radiation, microwaves, infrared, radio frequency, magnetism, sound, or light; and

b. the non-metal comprises glass, a polymer, a fiber reinforced plastic.

5 . The hybrid metal-composite pressure vessel of claim 4 , wherein:

a. the fiber reinforced plastic comprises a carbon fiber reinforced plastic (CFRP); and

b. the CFRP material comprises a radiation attenuation coefficient lower than that of the metal and a sufficiently low radiation attenuation coefficient sufficient to provide a predetermined set of advantages for deep-water radiology applications since the radiation beam is less attenuated as it passes through the CFRP parts of the hybrid pressure vessels, where the intensity of the radiation reaching a radiation detector is higher than if it were to pass through the metal parts of the housings.

6 . The hybrid metal-composite pressure vessel of claim 1 , wherein:

a. by appropriate selection of material, geometry and dimensions, the hybrid pressure vessel can withstand external pressure of subsea environment at depths of 300 0m or more; and

b. pressure inside the hybrid pressure vessel is kept at or below one (1) ATM.

7 . The hybrid metal-composite pressure vessel of claim 1 , wherein the occlusive interface comprises an O-ring, a gasket, a sealant, or a water tight seal.

8 . The hybrid metal-composite pressure vessel of claim 1 , wherein the hybrid pressure vessel provides a 1 ATM environment.

9 . The hybrid metal-composite pressure vessel of claim 1 , further comprising:

a. an internal non-radiation component; and

b. a radiation shield disposed within the housing to shield the internal non-radiation component from radiation.

10 . The hybrid metal-composite pressure vessel of claim 1 , wherein the internal radiation component comprises:

a. a source of radiation comprising a radiation beam emitter exposed to the occlusive interface; or

b. a radiation detector comprising a radiation beam detector exposed to the occlusive interface.

11 . The hybrid metal-composite pressure vessel of claim 1 , wherein the first pressure resistant portion further comprises a predetermined set of perforations.

12 . The hybrid metal-composite pressure vessel of claim 11 , wherein the predetermined set of perforations comprises:

a. a connector receiver for control and communication; and

b. a lifting point.

13 . A radiation system, comprising:

a. a first hybrid metal-composite pressure vessel designed for deep water application of radiation sensitive equipment, comprising:

i. a first enclosed housing, comprising:

1. a first pressure resistant portion of the first enclosed housing comprising a metal and a density sufficient to provide pressure resistance to a first predetermined pressure level, the first pressure resistant portion of the first enclosed housing configured to maintain an internal pressure at or below a second predetermined pressure level;

2. a remaining portion of the first enclosed housing comprising a non-metal configured to provide a predetermined level of transparency to radiation in a predetermined bandwidth;

3. an occlusive interface disposed between the first pressure resistant portion and the remaining portion; and

ii. a source of radiation disposed within the first enclosed housing comprising a radiation beam emitter exposed to the remaining portion; and

b. a second hybrid metal-composite pressure vessel designed for deep water application of radiation sensitive equipment, comprising:

i. a second enclosed housing, comprising:

1. a first pressure resistant portion of the second enclosed housing comprising a metal and a density sufficient to provide pressure resistance to a first predetermined pressure level, the first pressure resistant portion of the enclosed housing configured to maintain an internal pressure at or below a second predetermined pressure level;

2. a remaining portion of the second enclosed housing comprising a non-metal configured to provide a predetermined level of transparency to radiation in the predetermined bandwidth;

3. an occlusive interface disposed between the first pressure resistant portion and the remaining portion; and

ii. a radiation detector disposed within the second enclosed housing, the radiation detector comprising a radiation beam detector exposed to the remaining portion.

14 . The radiation system of claim 13 , wherein:

a. the source of radiation comprises an ionizing radiation emitter (IRE);

b. the radiation detector comprises an ionizing radiation detector (IRD); and

C. a radiation shield disposed within the second enclosed housing.

15 . The radiation system of claim 14 , wherein:

a. the IRE comprises an X-ray emitter; and

b. the IRD comprises a flat panel digital detector array.

16 . The radiation system of claim 14 , wherein the dimensions of the hybrid pressure vessels are tailored to achieve a predetermined distance between IRE and IRD required by a specific application the hybrid pressure vessel of the IRE.

Continuity (2)
Provisional Application 63233414 · Aug 16, 2021
Related Publication 20230047808A1 · Feb 16, 2023
References Cited (3)
US 20150373822A1 · Churchman · 2015 [cited by examiner]
DE 4417659A1 · 1995 [cited by examiner]
RU 2728888C1 · 2020 [cited by examiner]