IP Library Granted Patent US 12,723,494
Granted Patent B2
US 12,723,494 · App. 19/217,407 · Granted Sep 1, 2026

Perforating gun assembly with performance optimized shaped charge load

Inventors: Christian Eitschberger (Munich, DE); Liam McNelis (Bonn, DE); Thilo Scharf (Letterkenny, IE)
Assignee: DynaEnergetics Europe GmbH
E21B43/117E21B43/1185E21B43/26
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Quick Facts
Patent No.
US 12,723,494
App. No.
19/217,407
Granted
Sep 1, 2026
Kind
B2
Abstract

A perforating gun assembly is configured for use in unconventional wells, for example in rock formations with low permeability. The perforating gun assembly includes a perforating gun housing and a shaped charge positioned in the perforating gun housing. The shaped charge and the perforating gun housing are configured to improve total target penetration in unconventional wells by 20-100%.

Claims (37)

1 . A perforating gun assembly comprising:

a perforating gun housing comprising steel and having an outer diameter from 3.35 inches to 3.75 inches; and

at least one shaped charge positioned in the perforating gun housing, each shaped charge of the at least one shaped charge comprising an explosive load having a weight greater than 22.7 grams;

wherein the shaped charge is open ended.

2 . The perforating gun assembly of claim 1 , wherein the perforating gun housing has a length of 8.5 inches.

3 . The perforating gun assembly of claim 1 , wherein the perforating gun housing has at least one of:

a minimum steel hardness of 250 HBW or 25 HRC (Rockwell);

a minimum yield strength of 650 MPa;

a minimum tensile strength of 900 MPa; or

a minimum impact strength of 70 Joule.

4 . The perforating gun assembly of claim 1 , wherein the perforating gun housing has an inner diameter from 2.6 inches to 2.9 inches and a wall thickness from 0.3375 inches to 0.4125 inches.

5 . The perforating gun assembly of claim 4 , wherein the explosive load has a weight of 28 grams to 32 grams.

6 . The perforating gun assembly of claim 4 , further comprising a shaped charge loading tube positioned in the perforating gun housing, the shaped charge loading tube defining a shaped charge receptacle for receiving the shaped charge.

7 . A perforating gun assembly, comprising:

a perforating gun housing comprising steel and having an inner diameter from 2.6 inches to 2.9 inches and a wall thickness from 0.3375 inches to 0.4125 inches; and

a shaped charge positioned in the perforating gun housing and including an explosive load having a weight greater than 22.7 grams;

wherein the shaped charge case has an open end that faces a wall of the perforating gun housing.

8 . The perforating gun assembly of claim 7 , further comprising a shaped charge loading tube positioned in the perforating gun housing, the shaped charge loading tube defining a shaped charge receptacle, the shaped charge being received in the shaped charge receptacle.

9 . The perforating gun assembly of claim 7 , wherein the shaped charge includes

a shaped charge case defining a hollow cavity, the explosive load being positioned in the hollow cavity.

10 . The perforating gun assembly of claim 9 , wherein the shaped charge includes a liner disposed adjacent the explosive load and configured to retain the explosive load in the hollow cavity of the shaped charge case.

11 . The perforating gun assembly of claim 10 , further comprising a shaped charge inlay disposed over a portion of the liner such that the portion of the liner is positioned between the inlay and the explosive load.

12 . The perforating gun assembly of claim 7 , wherein the perforating gun housing has a length of 8.5 inches.

13 . The perforating gun assembly of claim 7 , wherein the perforating gun housing has at least one of:

a minimum steel hardness of 250 HBW or 25 HRC (Rockwell);

a minimum yield strength of 650 MPa;

a minimum tensile strength of 900 MPa; or

a minimum impact strength of 70 Joule.

14 . A method of perforating a wellbore, the method comprising:

positioning a perforating gun assembly in a section of a wellbore, the perforating gun assembly comprising:

a perforating gun housing comprising steel and having an outer diameter from 3.35 inches to 3.75 inches, and

a shaped charge positioned in the perforating gun housing, the shaped charge including an explosive load having a weight greater than 22.7 grams; and

detonating the shaped charge to form a perforation tunnel in the wellbore;

wherein the shaped charge is open ended.

15 . The method of claim 14 , wherein the wellbore is a steel casing and the perforation tunnel has an entry hole diameter from 0.30 inches to 0.85 inches.

16 . The method of claim 14 , wherein the perforating gun housing has wherein the perforating gun housing has an inner diameter from 2.6 inches to 2.9 inches and a wall thickness from 0.3375 inches to 0.4125 inches.

17 . The method of claim 14 , wherein upon detonating the shaped charge, the shaped charge expands an outer diameter of the perforating gun housing to a swell diameter of up to 3.78 inches by an explosive force generated by the shaped charge.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2026
From: EITSCHBERGER, CHRISTIAN; MCNELIS, LIAM; SCHARF, THILO
To: DYNAENERGETICS EUROPE GMBH
Reel/Frame 075293/0974 →
Continuity (5)
Continuation 18466112 · Sep 13, 2023
Continuation 17896172 · Aug 26, 2022
Continuation 17383816 · Jul 23, 2021
Provisional Application 63145843 · Feb 4, 2021
Related Publication 20250382859A1 · Dec 18, 2025
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