TOOLING AND METHOD FOR FLEXIBLE THROUGH CONNECTION BETWEEN DOUBLE LINERS OF WATER HEATER
20230358442 · 2023-11-09
Inventors
Cpc classification
F24H1/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A tooling and method for flexible through connection of a double-liner water heater. The tooling includes a transition shaft, a tooling connecting plate and a fastening screw. The method includes: allowing a shaft head of the transition shaft to be in fit with an inner surface of an outer flange of a lower liner for welding; allowing an end hole to be in fit with an outer surface of an inner flange of an upper liner for welding; after welding seams are cooled, removing the tooling, and enameling the upper and liners; forming through-flexible connection between the inner and outer flanges; and firmly fitting the upper and lower liners together with two steel strips to ensure that a gap between the upper and lower liners is not greater than 7 mm.
Claims
1. A tooling for flexible through connection of a double-liner water heater, comprising: a tooling connecting plate; wherein the tooling is configured for connection of an upper liner and a lower liner of the double-liner water heater with a gap there between less than or equal to 7 mm; two ends of the tooling connecting plate are each provided with a through hole; a transition shaft is arranged in the through hole; the transition shaft is in clearance fit with the tooling connecting plate; and the transition shaft is screwedly fastened to the tooling connecting plate; and one end of the transition shaft is provided with an end hole, and the end hole is configured to fit an inner flange of the upper liner; and the other end of the transition shaft is configured as a shaft head fitting an outer flange of the lower liner.
2. The tooling of claim 1, wherein a center distance between two transition shafts is equal to a center distance of water-passing holes of the upper liner and the lower liner.
3. The tooling of claim 1, wherein the shaft head is in centering clearance fit with an inner surface of the outer flange; and the end hole is in centering clearance fit with an outer surface of the inner flange.
4. The tooling of claim 1, wherein the upper liner is provided with a first welding assembly hole, and the lower liner is provided with a second welding assembly hole; a central axis of the first welding assembly hole and a central axis of the second welding assembly hole are located in the same line; the first welding assembly hole is configured for welding assembly of the inner flange; and the second welding assembly hole is configured for welding assembly of the outer flange; and central axes of the transition shaft, the end hole and the shaft head coincide with each other, and coincide with a central axis of the outer flange and a central axis of the inner flange.
5. The tooling of claim 1, wherein a fitting length between the shaft head of the transition shaft and the outer flange and a fitting length between the end hole of the transition shaft and the inner flange are set such that the gap between the lower liner and the upper liner satisfies a welding process requirement.
6. The tooling of claim 4, wherein the inner flange is welded to the upper liner; and the outer flange is welded to the lower liner.
7. The tooling of claim 4, wherein the first welding assembly hole and the inner flange are in clearance fit; the second welding assembly hole and the outer flange are in clearance fit.
8. A method for flexible through connection of a double-liner water heater by using the tooling of claim 1, comprising: (a) allowing the shaft head to be in centering clearance fit with an inner surface of the outer flange; and allowing the end hole to be in centering clearance fit with an outer surface of the inner flange; (b) adjusting a position of the tooling such that the inner flange is aligned with a first welding assembly hole on the upper liner, and the outer flange is aligned with a second welding assembly hole on the lower liner; welding the inner flange with the first welding assembly hole, and welding the outer flange with the second welding assembly hole; wherein a central axis of the first welding assembly hole and a central axis of the second welding assembly hole are kept on the same line; central axes of the transition shaft, the end hole and the shaft head are collinear, and coincide with a central axis of the outer flange and a central axis of the inner flange; a first welding seam formed from the welding of the inner flange with the first welding assembly hole is located at an outer side of the upper liner; and a second welding seam formed from the welding of the outer flange and the second welding assembly hole is located at an outer side of the lower liner; and (c) after the first welding seam and the second welding seam are cooled to room temperature, removing the tooling; enameling the upper liner and the lower liner; placing a first seal ring in a groove at a bottom surface of the inner flange, placing a second seal ring in a groove at a cylindrical surface of the inner flange; inserting the inner flange into the outer flange to realize flexible through connection between the lower liner and the upper liner; and firmly fitting the upper liner and the lower liner together by using two steel strips, wherein the two steel strips offer a pre-tightening force to ensure that the gap between the upper liner and the lower liner is less than or equal to 7 mm.
9. The method of claim 8, wherein the bottom surface of the inner flange is provided with a recess structure.
10. The method of claim 8, wherein the bottom surface of the inner flange is matched with a bottom surface of the outer flange; and the bottom surface of the inner flange is perpendicular to the central axis of the inner flange, and the bottom surface of the outer flange is perpendicular to the central axis of the outer flange.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] In order to explain the technical solutions of the present disclosure more clearly, the accompanying drawings needed in the description of the embodiments of the present disclosure will be briefly described below. Obviously, presented in the accompany drawings are merely some embodiments of the present disclosure, which are not intended to limit the disclosure.
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039] In the drawings: 1, hexagon socket set screw with cone point; 2, inner flange; 3, first welding seam (the seam between first welding assembly hole in upper liner and inner flange); 4, transition shaft; 5, tooling connecting plate; 6, outer flange; 7, second welding seam (the seam between second welding assembly hole in lower liner and outer flange); 8, upper liner; 9, lower liner; 10, first seal ring; 11, second seal ring; 12, steel strip; 13, end hole; 14, shaft head; B, fitting length between the shaft head of the transition shaft and the outer flange; A, fitting length between the end hole of the transition shaft and the inner flange; C, a center distance of water-passing holes; ϕD, the first welding assembly hole; and ϕE, the second welding assembly hole.
DETAILED DESCRIPTION OF EMBODIMENTS
[0040] Described below are merely illustrative of the disclosure, and are not intended to limit the disclosure. Unless otherwise specified, terms used herein have the same meaning as commonly understood by those skilled in the art.
[0041] It should be noted that terms used herein are only illustrative, but not to limit the scope of the present invention. Unless specified, a singular form also includes a plural form. In addition, it should also be understood that when the terms “comprise” and/or “include” are used in the description, one or combinations of features, steps, operations, devices, components are contained.
[0042] For ease of description, terms “up”, “down”, “left” and “right” refer to orientational or positional relationship shown in the drawings, which are merely for better description of the present disclosure instead of indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, these terms should not be construed as a limitation to the present disclosure.
[0043] In order to clearly illustrate the objects and technical solutions of the present invention, the present disclosure will be described below in detail with reference to the embodiments and
[0044] Referring to
[0045] Specifically, centers of two end surfaces of the tooling connecting plate 5 are each provided with a screw hole along a length direction of the tooling connecting plate 5. The hexagon socket set screw with cone point 1 passes through a corresponding screw hole to fix the transition shaft 4 along a direction perpendicular to an axis of the transition shaft 4.
[0046] Referring to
[0047] The inner flange 2 of the double-liner electric water heater is shown in
[0048] The outer flange 6 of the double-liner electric water heater is shown in
[0049] In an embodiment, two flange assemblies between the upper liner and the lower liner adopt a flexible through connection, shown as
[0050]
[0051] Provided is a method for flexible through connection of the double-liner water heater, which is performed by using the above-mentioned tooling. A gap between the upper liner and the lower liner is less than or equal to 7 mm. The method includes the following steps.
[0052] (S1) The inner flange 2 to be weld with the upper liner 8 is aligned with the outer flange 6 to be welded with the lower liner 9 by adjusting a position of the tooling shown in
[0053] (S2) The inner flange 2 is aligned with the first welding assembly hole ϕD of the upper liner 8 and welded, which forms the first welding seam 3 at an outer side of the upper liner 8. The outer flange 6 is aligned with the second welding assembly hole ϕE of the lower liner 9 and welded, which forms the second welding seam 7 at an outer side of the lower liner 9.
[0054] (S3) After the first welding seam 3 and the second welding seam 7 are cooled to room temperature, the tooling is removed. The upper liner 8 and the lower liner 9 are enameled. Then, the outer surface of each inner flange 2 is in flexible connection with the inner surface of each outer flange 6. During assembling the inner flange 2 and the outer flange 6, the first seal ring 10 is placed on the bottom surface of the inner flange 2, and the second seal ring 11 is placed on the cylindrical surface of the inner flange 2, which enhances the flexibility and reliability of the connection to prevent water leakage and seepage. The bottom surface of the inner flange 2 is provided with a recess structure to reduce the force-bearing area and increase a pressure, which improves the tightness to prevent water leakage and seepage.
[0055] (S4) The upper liner 8 and the lower liner 9 are firmly fitted together by using two steel strips 12. Each steel strip 12 provides a pre-tightening force of 350-500 kg, and the gap between the upper liner and the lower liner is less than or equal to 7 mm.
[0056] After the assembly, the double-liner water heater can avoid water leakage and water seepage after 300,000 tests under a pulsating cyclic load of 10 atmospheres.
[0057] Described above are merely illustrative of the disclosure, and are not intended to limit the disclosure. Although the disclosure has been illustrated and described in detail above, it should be understood that those skilled in the art could still make changes and modifications content to the embodiments content of the disclosure. Those changes, replacements and modifications content made by those skilled in the art based on the content disclosed herein without departing from the scope of the disclosure shall fall within the scope of the present disclosure defined by the appended claims.