IP Library Granted Patent US 11,566,120
Granted Patent B2
US 11,566,120 · App. 16/743,245 · Granted Jan 31, 2023

Plasticizer improving dynamic fatigue performance in fiber reinforced elastomers

Inventor: Robert Bohmer (Kingwood, TX)
Assignee: Abaco Drilling Technologies, LLC
C08L9/02C08J5/046C08J5/06C08K3/04C08K5/12C08K7/02C08L15/005F04C2/1075F04C29/00C08J2309/02C08J2315/00C08J2477/10C08K2201/011F04C2240/10F04C2250/30F05C2225/02F05C2253/16
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Quick Facts
Patent No.
US 11,566,120
App. No.
16/743,245
Granted
Jan 31, 2023
Kind
B2
Abstract

The dynamic fatigue and hysteresis performances of fiber reinforced rubber compounds are compared using different plasticizers. Fiber reinforced rubber compounds including a non-linear functionalized fatty acid ester, preferably a trimellitate, and more preferably Tris (2-Ethylhexyl) Trimellitate (TOTM) are shown to demonstrate greatly improved dynamic fatigue and hysteretic performance as compared to reference fiber reinforced rubber compounds including conventional reference plasticizers such as Di-isodecyl phthalate (DIDP).

Claims (35)

1. A stator for use in a positive displacement motor or a progressing cavity pump, the stator comprising:

a stator tube having interior helical pathways therein, the helical pathways extending in a longitudinal direction along the stator tube, the stator tube further including a first rubber compound;

the first rubber compound including aramid fiber reinforcement;

the first rubber compound further including a trimellitate acting as a plasticizer;

wherein, when the stator tube receives a rotor to form a positive displacement motor or a progressing cavity pump, rotation of the rotor within the stator tube places a cyclic compressive load on the first rubber compound.

2. The stator of claim 1 , in which, for strains on the first rubber compound in a range between about 5.6% and about 19.4%, the first rubber compound has a tan delta at least 10% lower than a reference tan delta,

herein the reference tan delta is for corresponding strains on a reference rubber compound between about 5.6% and about 19.4%, wherein the reference rubber compound is the first rubber compound modified to include, in place of trimellitate, a reference plasticizer selected from the group consisting of Di-isodecyl phthalate (DIDP), linear fatty acid esters, adipates, sebacates, maleates and phthalates.

3. The stator of claim 1 , in which, for strains on the first rubber compound in a range between about 5.6% and about 19.4%, the first rubber compound has a lower tan delta than a reference tan delta,

wherein the reference tan delta is for corresponding strains on a reference rubber compound between about 5.6% and about 19.4%;

wherein the reference rubber compound is the first rubber compound modified to include, in place of trimellitate, a reference plasticizer selected from the group consisting of Di-isodecyl phthalate (DIDP), linear fatty acid esters, adipates, sebacates, maleates and phthalates; and

wherein the aramid fiber reinforcement in the first rubber compound has a higher aramid fiber content than the aramid fiber reinforcement in the reference rubber compound.

4. The stator of claim 1 , in which the trimellitate has a molecular weight of at least 500 g/mol.

5. The stator of claim 1 , in which the first rubber compound includes at least one rubber selected from the group consisting of NBR, HNBR and NBR-isoprene terpolymer.

6. The stator of claim 1 , in which the first rubber compound includes a carbon nanostructure, wherein the carbon nanostructure is in a range from about 50 phr to about 110 phr based on weight.

7. The stator of claim 1 , in which the aramid fiber reinforcement includes fibrillated aramid fibers.

8. The stator of claim 7 , in which the aramid fiber reinforcement further includes chopped aramid fibers.

9. The stator of claim 8 , in which the fibrillated aramid fibers and chopped aramid fibers are in a ratio of between about 50:1 to about 3:1 of fibrillated aramid fibers to chopped aramid fibers.

10. A stator for use in a positive displacement motor or a progressing cavity pump, the stator comprising:

a stator tube having interior helical pathways therein, the helical pathways extending in a longitudinal direction along the stator tube, the stator tube further including a first rubber compound;

the first rubber compound including aramid fiber reinforcement;

the first rubber compound further including Tris (2-Ethylhexyl) Trimellitate (TOTM) acting as a plasticizer;

wherein, when the stator tube receives a rotor to form a positive displacement motor or a progressing cavity pump, rotation of the rotor within the stator tube places a cyclic compressive load on the first rubber compound.

11. The stator of claim 10 , in which the first rubber compound includes TOTM in a range from about 1 phr to about 25 phr.

12. The stator of claim 10 , in which, for strains on the first rubber compound in a range between about 5.6% and about 19.4%, the first rubber compound has a tan delta at least 10% lower than a reference tan delta,

wherein the reference tan delta is for corresponding strains on a reference rubber compound between about 5.6% and 19.4%, wherein the reference rubber compound is the first rubber compound modified to include, in place of TOTM, a reference plasticizer selected from the group consisting of Di-isodecyl phthalate (DIDP), linear fatty acid esters, adipates, sebacates, maleates and phthalates.

13. The stator of claim 10 , in which, for strains on the first rubber compound in a range between about 5.6% and about 19.4%, the first rubber compound has a lower tan delta than a reference tan delta,

wherein the reference tan delta is for corresponding strains on a reference rubber compound between about 5.6% and about 19.4%;

wherein the reference rubber compound is the first rubber compound modified to include, in place of TOTM, a reference plasticizer selected from the group consisting of Di-isodecyl phthalate (DIDP), linear fatty acid esters, adipates, sebacates, maleates and phthalates; and

wherein the aramid fiber reinforcement in the first rubber compound has a higher aramid fiber content than the aramid fiber reinforcement in the reference rubber compound.

14. The stator of claim 10 , in which the TOTM has a molecular weight of at least 500 g/mol.

15. The stator of claim 10 , in which the first rubber compound includes at least one rubber selected from the group consisting of NBR, HNBR and NBR-isoprene terpolymer.

16. The stator of claim 10 , in which the first rubber compound includes a carbon nanostructure, wherein the carbon nanostructure is in a range from about 50 phr to about 110 phr based on weight.

17. The stator of claim 10 , in which the aramid fiber reinforcement includes fibrillated aramid fibers.

18. The stator of claim 17 , in which the aramid fiber reinforcement further includes chopped aramid fibers.

19. The stator of claim 18 , in which the fibrillated aramid fibers and chopped aramid fibers are in a ratio of between about 50:1 to about 3:1 of fibrillated aramid fibers to chopped aramid fibers.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE THE RECORD BY REMOVING PATENT 10335694 PREVIOUSLY RECORDED ON REEL 74537 FRAME 681. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded May 7, 2026
From: BANK OF AMERICA, N.A.
To: ABACO DRILLING TECHNOLOGIES LLC
Reel/Frame 075561/0630 →
SECURITY INTEREST Recorded Mar 2, 2026
From: ABACO DRILLING TECHNOLOGIES LLC
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 073940/0632 →
SECURITY INTEREST Recorded Mar 2, 2026
From: ABACO DRILLING TECHNOLOGIES LLC
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 073943/0927 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 28, 2020
From: BOHMER, ROBERT
To: ABACO DRILLING TECHNOLOGIES, LLC
Reel/Frame 051641/0353 →
Cited By (1)
US 12,378,371