IP Library Granted Patent US 10,309,560
Granted Patent B2
US 10,309,560 · App. 15/148,714 · Granted Jun 4, 2019

Multi-layer pressure actuated extendable hose

Inventors: Gary Dean Ragner (Gainesville, FL); Robert Daniel deRochemont, Jr. (Gainesville, FL)
Assignee: Ragner Technology Corporation
F16L11/118F16L11/11F16L11/111F16L11/112F16L11/115F16L11/24
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Quick Facts
Patent No.
US 10,309,560
App. No.
15/148,714
Granted
Jun 4, 2019
Kind
B2
Abstract

A multi-layer pressure actuated extendable hose for use in transporting fluids between a source location and an output location includes an extendible hose comprising a biasing element, a sealing layer, and a reinforced cover layer. The sealing layer forms a sealed conduit for transporting the fluids, and the reinforced cover layer on the outside provides radial and longitudinal strength for the sealing layer. The hose can be operated by increasing internal pressure within the hose relative to ambient pressure. When the hose is pressurized by a fluid source, the internal pressure of the hose overcomes the retracting force of the biasing element and the hose extends. When the fluid source is turned off or disconnected from the hose, internal pressure is reduced and the biasing element exerts a tension force on the hose causing the hose to retract.

Claims (58)

1. A garden hose comprising:

(a) a flexible outer layer having a first end and a second end;

(b) a linearly extendable inner sealing layer formed of an elastic material and having a first end and a second end, wherein the inner sealing layer is surrounded by the outer layer;

(c) a first connector secured to said first end of said inner sealing layer and said first end of said outer layer;

(d) a second connector secured to said second end of said inner sealing layer and said second end of said outer layer;

(e) said first connector couples said hose to a source of pressurized water allowing the pressurized water to flow into the hose;

(f) said second connector couples said hose to a water flow restrictor, which increases gauge pressure within the hose so that the increased gauge pressure creates an extending force, which causes the hose to extend linearly;

(g) wherein the inner sealing layer provides at least a portion of a retracting force that retracts the hose from an extended length to a retracted length when the retracting force is greater than the extending force; and

(h) wherein the extended length is at least 1.5 times the retracted length.

2. The hose of claim 1 wherein the elastic material comprises a resilient polymer.

3. The hose of claim 1 wherein said first and second connectors are standard garden hose connectors.

4. The hose of claim 1 wherein the increase of gauge pressure automatically extends the hose.

5. The hose of claim 1 wherein said outer layer is made of fabric.

6. The hose of claim 1 wherein said outer layer is non-elastic.

7. The hose of claim 1 further comprising a spring unsecured to the inner sealing layer.

8. The hose of claim 1 wherein the inner sealing layer is secured to a spring.

9. The hose of claim 1 wherein the water flow restrictor is integrated with the second connector.

10. The hose of claim 1 wherein the inner sealing layer provides substantially all of the retracting force.

11. A method for transporting water comprising:

(a) introducing pressurized water into a hose, wherein said hose comprises:

(1) a flexible outer layer having a first end and a second end;

(2) a linearly extendable inner sealing layer formed of an elastic material and having a first end and a second end, wherein the inner sealing layer is surrounded by the outer layer;

(3) a first connector secured to said first end of said inner sealing layer and said first end of said outer layer;

(4) a second connector secured to said second end of said inner sealing layer and said second end of said outer layer; and

(5) a water flow restrictor secured to said second connector;

(b) securing said first connector to a source of pressurized water allowing the pressurized water to flow into the hose;

(c) restricting the water flow to increase gauge pressure within the hose so that the increased gauge pressure creates an extending force which causes the hose to linearly extend to at least 1.5 times a retracted length while transporting the pressurized water away from the source; and

(d) retracting the hose from an extended length to the retracted length when the inner sealing layer provides at least a portion of a retracting force that is greater than the extending force.

12. The method of transporting water according to claim 11 wherein the elastic material comprises a resilient polymer.

13. The method of transporting water according to claim 11 wherein said inner sealing layer is an elastic tube.

14. The method of transporting water according to claim 11 wherein said first and second connectors are standard garden hose connectors.

15. The method of transporting water according to claim 11 wherein the increase of gauge pressure automatically extends the hose.

16. The method of transporting water according to claim 11 wherein the hose further comprises a spring unsecured to the inner sealing layer.

17. The method of transporting water according to claim 11 wherein the inner sealing layer is secured to a spring.

18. The method of transporting water according to claim 11 wherein the water flow restrictor is integrated with the second connector.

19. The method of transporting water according to claim 11 wherein the inner sealing layer provides substantially all of the retracting force.

20. A hose for transporting water at a pressure substantially greater than ambient pressure, the hose comprising:

a) a flexible elongated body formed of an elastic material and defining an interior channel, the flexible elongated body providing at least a portion of a retracting force tending to retract the hose longitudinally from an extended length to a retracted length;

b) a first end adapted to attach to a source of pressurized water, and a second end adapted to attach to a water flow restrictor which restricts flow of water transported by the hose during use, wherein restricting flow of water results in a higher pressure within the interior channel of the hose, wherein the higher pressure generates an extending force tending to extend the hose longitudinally along its length to a length at least 1.5 times the retracted length and toward the extended length; and

c) a flexible woven fiber cover, wherein the flexible woven fiber cover provides structural support against fluid pressure within the interior channel of the hose.

21. The hose of claim 20 , wherein the retracting force is of sufficient strength to retract said hose from an extended length to a retracted length when said extending force is substantially zero.

22. The hose of claim 21 , wherein the extended length is greater than one and one half times the retracted length.

23. The hose of claim 22 , wherein the flexible elongated body is disposed on the interior of the flexible woven fiber cover.

24. The hose of claim 23 , wherein the flexible elongated body and the flexible woven fiber cover are attached to each other at the first end and the second end of the hose.

25. The hose of claim 20 , wherein the elastic material comprises a resilient polymer.

26. A method of transporting pressurized water, the method comprising:

a) inputting pressurized water into a hose, wherein;

i) said hose comprises a flexible elongated body having a first end, a second end, and an interior channel defined along its length for transporting the pressurized water from the first end to the second end;

ii) inputting the pressurized water into the hose comprises inputting the pressurized water into the first end such that the pressurized water is introduced into the interior channel; and

iii) the flexible elongated body is formed of an elastic material and generates at least a portion of a retracting force tending to retract the flexible elongated body longitudinally along its length;

b) restricting a flow of pressurized water out of the interior channel, wherein:

i) the restriction of the flow causes a pressure increase of the water in said interior channel above ambient pressure outside said interior channel; and

ii) the pressure increase of the water in the interior channel generates an extending force directed longitudinally along said flexible elongated body, wherein said extending force is opposed to said first force and tends to extend the flexible elongated body longitudinally to at least 1.5 times a retracted length.

27. The method of claim 26 , wherein the extending force magnitude is adjustable between a force greater than the retracting force and a force less than the retracting force by adjusting the pressure increase of the water in the interior channel and/or causing the flexible elongated body to longitudinally change length.

28. The method of claim 26 , wherein the flexible elongated body is sufficiently flexible to extend and retract longitudinally along its length in response to a net force, wherein the net force is the sum of the extending force and the retracting force.

29. The method of claim 26 , wherein the flexible elongated body extends when the extending force is greater than the retracting force.

30. The method of claim 26 , wherein the flexible elongated body retracts when the extending force is less than the retracting force.

31. The method of claim 26 , wherein the elastic material comprises a resilient polymer.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2023
From: RAGNER TECHNOLOGY CORP.
To: TELEBRANDS CORP.
Reel/Frame 065040/0754 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2016
From: RAGNER, GARY DEAN; DE ROCHEMONT, ROBERT DANIEL
To: RAGNER TECHNOLOGY CORPORATION
Reel/Frame 038549/0046 →
Continuity (9)
Continuation 14698382 · Apr 28, 2015
Continuation 14262108 · Apr 25, 2014
Continuation 11343602 · Jan 30, 2006
Continuation In Part 11234944 · Sep 26, 2005
Division 10303941 · Nov 25, 2002
Provisional Application 60335497 · Nov 24, 2001
Provisional Application 60648638 · Jan 29, 2005
Provisional Application 60739323 · Nov 23, 2005
Related Publication 20160252199A1 · Sep 1, 2016
Cited By (1)
US 12,416,374