IP Library Granted Patent US 12,409,476
Granted Patent B2
US 12,409,476 · App. 18/807,437 · Granted Sep 9, 2025

High temperature pressure washing system

Inventors: Todd Shawver (The Woodlands, TX); Tanner Bond (Houston, TX); Timothy Zawinsky (Brookshire, TX)
Assignee: Horizon Industrial Technologies, Inc.
B08B3/026B08B2203/007B08B2203/0241B08B2203/027
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Quick Facts
Patent No.
US 12,409,476
App. No.
18/807,437
Granted
Sep 9, 2025
Kind
B2
Abstract

Low and medium pressure, high temperature, fluid washers for pressure cleaning surfaces, vessels, piping, tubing, and other structures having a tri-plex pump downstream of a fluid heater in which the high pressure pump employs a barrier seal system with circulating fluid.

Claims (48)

1. A method of generating pressurized fluid, comprising:

pressurizing fluid with a first fluid pump to increase a fluid pressure to a first pressure or a first pressure range;

coupling a heat exchanger to the first pump capable of increasing a temperature of the fluid pressurized by the first pump to a second temperature or a second temperature range;

pressurizing fluid from the first pump or from the heat exchanger with a second fluid pump to a second pressure or second pressure range greater than the first pressure or first pressure range;

circulating fluid from the first pump into at least a portion of the second pump without the second pump pressurizing the circulated fluid; and

generating fluid selected from the group: (1) fluid pressurized by the first fluid pump only; (ii) fluid pressurized by the first fluid pump and heated by the heat exchanger but not pressurized by the second pump; (iii) fluid pressurized by the first and second fluid pumps but not heated by the heat exchanger; and (iv) fluid pressurized by the first fluid pump, heated by the heat exchanger, and pressurized by the second pump.

2. The method of claim 1 , comprising providing a heat exchanger bypass having one or more valves to communicate unheated fluid from the first fluid pump to the second fluid pump bypassing the heat exchanger.

3. The method of claim 1 , comprising providing a second pump bypass conduit having one or more valves to communicate fluid from the heat exchanger bypassing the second fluid pump.

4. The method of claim 1 , comprising providing a heat exchanger bypass having one or more valves to selectably communicate unheated fluid from the first fluid pump to the second fluid pump bypassing the heat exchanger, and providing a second pump bypass having one or more valves to selectably communicate unheated fluid from the first fluid pump or heated fluid from the heat exchanger to pressure washing equipment bypassing the second fluid pump.

5. The method of claim 1 , comprising discharging fluid to pressure washing equipment by actuating one or more valves.

6. The method of claim 1 , comprising providing an insert for the second fluid pump that defines a central bore for receiving a reciprocating second fluid pump plunger, and an annular chamber around the plunger for receiving fluid from the first pump.

7. The method of claim 6 , comprising not forming a seal between at least a portion of the insert and an inner surface of the second pump.

8. The method of claim 1 , wherein the second pump comprises a triplex pump with three stuffing boxes in which each stuffing box comprises a reciprocating plunger and a barrier chamber sized such that unheated fluid from the first pump flows through the barrier chamber to cool at least the plunger associated with the stuffing box.

9. The method of claim 1 , comprising providing a controller having a communication component, a memory component, a display component, and processing component.

10. The method of claim 1 , comprising transducing temperature of fluid between the first fluid pump and the heat exchanger, and transducing pressure of fluid between the second fluid pump and pressure washing equipment.

11. The method of claim 9 , comprising the controller receiving data transduced by one or more temperature, pressure or level sensors.

12. The method of claim 11 , comprising the controller communicating one or more control signals based on transduced data received by the controller to the first fluid pump, the heat exchanger, the second fluid pump or a controllable valve.

13. The method of claim 1 , comprising providing washing equipment capable of being held by an operator during use and providing one or more status indicators on the washing equipment visible to the operator.

14. The method of claim 13 , wherein the status indicators comprise light emitting diodes indicating the status of one or more of: fluid level, pressurized fluid temperature, and fluid pressure.

15. The method of claim 1 , comprising providing a fluid tank coupled to the first fluid pump, the tank having a fluid inlet valve, a fluid temperature sensor, and a fluid level sensor.

16. The method of claim 1 , comprising arranging on a trailer a fluid tank, the first fluid pump, the heat exchanger, and the second fluid pump.

17. The method of claim 16 , further comprising on the trailer a Diesel engine for supplying hydraulic, rotational and/or electric power, a Diesel-fired heater, and a Diesel fuel tank.

18. The method of claim 17 , comprising supplying hydraulic power for the first pump, rotational power for the second pump, and electric power.

19. A method of generating pressurized fluid, comprising:

drawing fluid from a source with a first pump;

pressurizing the fluid with the first pump to a first pressure or a first pressure range;

providing a fluid heater capable of increasing a temperature of the fluid pressurized by the first pump to a second temperature or second temperature range;

pressurizing with a second pump fluid from the first pump or fluid from the fluid heater to a second pressure or second pressure range greater than the first pressure or first pressure range;

the second pump comprising a pump plunger and a barrier seal forming an annular chamber around a portion of the plunger;

providing a fluid heater bypass that selectably communicates fluid from the first pump to the second pump bypassing the fluid heater;

providing a second pump bypass that selectably communicates fluid bypassing the second pump;

circulating fluid from the first pump into the annular chamber of the barrier seal and back to the fluid source;

providing a controller operatively coupled to the first pump, the fluid heater, the second pump, the first pump bypass, the second pump bypass, to generate fluid selected from the group: (1) fluid pressurized by the first fluid pump only; (ii) fluid pressurized by the first fluid pump and heated by the heat exchanger but not pressurized by the second pump; (iii) fluid pressurized by the first and second fluid pumps but not heated by the heat exchanger; and (iv) fluid pressurized by the first fluid pump, heated by the heat exchanger, and pressurized by the second pump.

20. The method of claim 19 , comprising providing pressure washing equipment capable of being held by an operator during use and providing one or more status indicators on the washing equipment visible to the operator indicating the status of one or more of: fluid level, fluid temperature, and fluid pressure.

21. A method of generating pressurized fluid, comprising:

pressurizing fluid with a first fluid pump to increase a fluid pressure to a first pressure or a first pressure range;

coupling a heat exchanger to the first pump capable of increasing a temperature of the fluid pressurized by the first pump to a second temperature or a second temperature range;

pressurizing a first portion of unheated fluid from the first pump or heated fluid from the heat exchanger with a second fluid pump to a second pressure or second pressure range greater than the first pressure or first pressure range;

circulating a second portion of unheated fluid from the first pump into at least a portion of the second pump without the second pump pressurizing the second portion of the unheated fluid; and

generating fluid selected from the group: (1) fluid pressurized by the first fluid pump only; (ii) fluid pressurized by the first fluid pump and heated by the heat exchanger but not pressurized by the second pump; (iii) fluid pressurized by the first and second fluid pumps but not heated by the heat exchanger; and (iv) fluid pressurized by the first fluid pump, heated by the heat exchanger, and pressurized by the second pump.

22. A method of generating pressurized fluid, comprising:

pressurizing fluid with a first fluid pump to increase a fluid pressure to a first pressure or a first pressure range;

coupling a heat exchanger to the first pump capable of increasing a temperature of the fluid pressurized by the first pump to a second temperature or a second temperature range;

pressurizing fluid from the first pump or from the heat exchanger with a second fluid pump to a second pressure or second pressure range greater than the first pressure or first pressure range;

providing an insert for the second fluid pump that defines a central bore for receiving a reciprocating second fluid pump plunger, and an annular chamber around the plunger for receiving fluid from the first pump; and

generating fluid selected from the group: (1) fluid pressurized by the first fluid pump only; (ii) fluid pressurized by the first fluid pump and heated by the heat exchanger but not pressurized by the second pump; (iii) fluid pressurized by the first and second fluid pumps but not heated by the heat exchanger; and (iv) fluid pressurized by the first fluid pump, heated by the heat exchanger, and pressurized by the second pump.

23. The method of claim 22 , further comprising circulating unheated fluid from the first fluid pump into the annular chamber.

24. The method of claim 23 , further comprising circulating fluid from the annular chamber to a fluid tank from which fluid is drawn by the first fluid pump.

Assignments (1)
SECURITY INTEREST Recorded Aug 22, 2025
From: HORIZON INDUSTRIAL TECHNOLOGIES, INC.
To: GALTNEY INVESTMENTS, L.P.
Reel/Frame 072097/0644 →
Continuity (3)
Division 18632085 · Apr 10, 2024
Provisional Application 63495285 · Apr 10, 2023
Related Publication 20240399423A1 · Dec 5, 2024
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