Boiler loop system
10458662 ยท 2019-10-29
Assignee
Inventors
Cpc classification
Y10T137/87362
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/1015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/87249
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T137/87917
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24D19/088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/8782
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T137/87909
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T137/87523
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F24D3/105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K11/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A boiler loop system including a primary-secondary piping loop interface apparatus including a flow diversion device, and a drain valve, and a drain port in branches from a circumferential sidewall. In an embodiment, supply branch piping and return branch piping connect the primary-secondary piping loop interface apparatus to a boiler and provide attachment points for auxiliary plumbing equipment. In an embodiment, the boiler loop is integrated into the primary loop.
Claims
1. A near boiler piping apparatus, comprising: a primary-secondary loop interface apparatus including, a primary loop portion including a tubular fluid conduit having a circumferential sidewall, a first end and a second end for interfacing with a primary loop in a plumbing system; a secondary loop portion including a first neck portion extending from the circumferential sidewall and a second neck portion extending from the circumferential sidewall, wherein the first neck portion and second neck portion are substantially parallel to each other and substantially perpendicular to the primary loop portion; the secondary loop portion further including a first drain valve portion extending from the first neck portion including a first drain shut-off valve disposed therein and a first drain port, and a second drain valve portion extending from the second neck portion including a second drain shut-off valve disposed therein and a second drain port, wherein the respective drain shut-off valves are arranged to enable or disable flow through the respective drain ports; the secondary loop portion further including a first secondary loop interface port terminating the first neck portion and a first secondary loop shut-off valve disposed in the first neck portion between the first secondary loop interface port and the circumferential sidewall; the secondary loop portion further including a second secondary loop interface port terminating the second neck portion and a second secondary loop shut-off valve disposed in the second neck portion between the second secondary loop interface port and the circumferential sidewall; each of the first secondary loop shut-off valve and second secondary loop shut-off valve includes an open operative position configured to open a main flow-path between the respective secondary loop interface port and the primary loop portion, and a closed operative position configured to close the main flow path between the respective secondary loop interface port and the primary loop portion; a flow diversion device in each of the first and second secondary loop shut-off valves is configured to form a drain flow path between the secondary loop interface port of each respective neck portion and each corresponding respective drain valve portion that is open in both the open operative position and the closed operative position of the secondary loop shutoff valves; a wye strainer; a second flange configured on the wye strainer for mounting the wye strainer to a second flange interface of a circulation pump; and a supply branch pipe section attached to the wye strainer.
2. The piping apparatus of claim 1, further comprising a first flange configured on and rotatable with respect to the first secondary loop interface port.
3. The near boiler piping apparatus of claim 1, further comprising a return branch pipe section attached to the second secondary loop interface port including a return branch boiler attachment tee, wherein the return branch boiler attachment tee includes a return branch boiler attachment fitting and a return branch auxiliary attachment point.
4. The near boiler piping apparatus of claim 2, wherein the first flange is configured to attach the first secondary loop interface port to an arbitrarily rotated first flange interface of a circulation pump.
5. The near boiler piping apparatus of claim 1, wherein the supply branch pipe section includes a supply branch boiler attachment tee, wherein the supply branch boiler attachment tee includes a supply branch boiler attachment fitting and a supply branch auxiliary attachment point.
6. The near boiler piping apparatus of claim 1, wherein the second flange is rotatable with respect to the wye strainer and configured to attach to an arbitrarily rotated second flange interface of the circulation pump.
7. The near boiler piping apparatus of claim 3, comprising: a union fitting connecting the return branch pipe section to the second secondary loop interface port, wherein the union fitting includes a gauge hole configured for connecting a pressure gauge to the union fitting.
8. The near boiler piping apparatus of claim 3, wherein the return branch pipe section includes a knee portion configured to offset the return branch boiler attachment tee from a supply branch boiler attachment tee.
9. The near boiler piping apparatus of claim 2, wherein the flow diversion device in each of the first and second secondary loop shut-off valves includes a through-hole and a blind-hole orthogonally disposed with respect to the through-hole.
10. A piping apparatus, comprising: a primary-secondary loop interface apparatus including, a primary loop portion including a tubular fluid conduit having a circumferential sidewall, a first end and a second end for interfacing with a primary loop in a plumbing system; a secondary loop portion including a first neck portion extending from the circumferential sidewall and a second neck portion extending from the circumferential sidewall, wherein the first neck portion and second neck portion are substantially parallel to each other and substantially perpendicular to the primary loop portion; the secondary loop portion further including a first drain valve portion extending from the first neck portion including a first drain shut-off valve disposed therein and a first drain port, and a second drain valve portion extending from the second neck portion including a second drain shut-off valve disposed therein and a second drain port, wherein the respective drain shut-off valves are arranged to enable or disable flow through the respective drain ports; the secondary loop portion further including a first secondary loop interface port terminating the first neck portion and a first secondary loop shut-off valve disposed in the first neck portion between the first secondary loop interface port and the circumferential sidewall; the secondary loop portion further including a second secondary loop interface port terminating the second neck portion and a second secondary loop shut-off valve disposed in the second neck portion between the second secondary loop interface port and the circumferential sidewall; each of the first secondary loop shut-off valve and second secondary loop shut-off valve includes an open operative position configured to open a main flow-path between the respective secondary loop interface port and the primary loop portion, and a closed operative position configured to close the main flow path between the respective secondary loop interface port and the primary loop portion; a flow diversion device in each of the first and second secondary loop shut-off valves is configured to form a drain flow path between the secondary loop interface port of each respective neck portion and each corresponding respective drain valve portion that is open in both the open operative position and the closed operative position of the secondary loop shutoff valves; a wye strainer; a second flange configured on the wye strainer for mounting the wye strainer to a second flange interface of a circulation pump; and a supply branch pipe section attached to the wye strainer.
11. The near boiler piping apparatus of claim 10, further comprising a first flange configured on and rotatable with respect to the first secondary loop interface port.
12. The near boiler piping apparatus of claim 11, further comprising a return branch pipe section attached to the second secondary loop interface port including a return branch boiler attachment tee, wherein the return branch boiler attachment tee includes a return branch boiler attachment fitting and a return branch auxiliary attachment point.
13. The near boiler piping apparatus of claim 11, wherein the first flange is configured to attach the first secondary loop interface port to an arbitrarily rotated first flange interface of a circulation pump.
14. The near boiler piping apparatus of claim 10, wherein the supply branch pipe section includes a supply branch boiler attachment tee, wherein the supply branch boiler attachment tee includes a supply branch boiler attachment fitting and a supply branch auxiliary attachment point.
15. The near boiler piping apparatus of claim 10, wherein the second flange is rotatable with respect to the wye strainer and configured to attach to an arbitrarily rotated second flange interface of the circulation pump.
16. The near boiler piping apparatus of claim 12, comprising: a union fitting connecting the return branch pipe section to the second secondary loop interface port, wherein the union fitting includes a gauge hole configured for connecting a pressure gauge to the union fitting.
17. The near boiler piping apparatus of claim 12, wherein the return branch pipe section includes a knee portion configured to offset the return branch boiler attachment tee from a supply branch boiler attachment tee.
18. A near boiler piping apparatus, comprising: a primary-secondary loop interface apparatus including, a primary loop portion including a tubular fluid conduit having a circumferential sidewall, a first end and a second end for interfacing with a primary loop in a plumbing system; a secondary loop portion including a first neck portion extending from the circumferential sidewall and a second neck portion extending from the circumferential sidewall, wherein the first neck portion and second neck portion are substantially parallel to each other and substantially perpendicular to the primary loop portion to form a pair of closely spaced tees suitable for hydraulic separation of fluid flow between the primary loop portion and the secondary loop portion; the secondary loop portion further including a first drain valve portion extending from the first neck portion including a first drain shut-off valve disposed therein and a first drain port, and a second neck portion including a second drain shut-off valve disposed therein and a second drain port, wherein the respective drain shut-off valve(s) are arranged to enable or disable flow through the respective drain port(s); the secondary loop portion further including a first secondary loop interface port terminating the first neck portion and a first secondary loop shut-off valve disposed in the first neck portion between the first secondary loop interface port and the circumferential sidewall; the secondary loop portion further including a second secondary loop interface port terminating the second neck portion and a second secondary loop shut-off valve disposed in the second neck portion between the second secondary loop interface port and the circumferential sidewall; wherein each of the first secondary loop shut-off valve and second secondary loop shutoff valve includes an open operative position configured to open a main flow-path between the respective secondary loop interface port and the primary loop portion, and a closed operative position configured to close the main flow path between the respective secondary loop interface port and the primary loop portion, and wherein a drain flow path between the secondary loop interface port of each respective neck portion and each corresponding respective drain valve portion is configured to be open in both the open operative position and the closed operative position of the corresponding secondary loop shut-off valve; the system further comprising: a first rotatable flange configured on the first secondary loop interface port to allow attachment of an arbitrarily rotated first flange interface of a circulation pump to the first secondary loop interface port; a return branch pipe section attached to the second secondary loop interface port; wherein the return branch pipe section includes a return branch boiler attachment tee, wherein the return branch boiler attachment tee includes return branch boiler attachment fitting and a return branch auxiliary attachment point; a wye strainer adapted for mounting to the circulation pump; a second rotatable flange configured on the wye strainer for mounting the wye strainer to an arbitrarily rotated second flange interface of the circulation pump; supply branch pipe section attached to the wye strainer; wherein the supply branch pipe section includes a supply branch boiler attachment tee, wherein the supply branch boiler attachment tee includes a supply branch boiler attachment fitting and a supply branch auxiliary attachment point; wherein the return branch pipe section includes a knee portion configured to offset the return branch boiler attachment tee from a supply branch boiler attachment tee; and a union fitting connecting the return branch pipe section to the second secondary loop interface port, wherein the union fitting includes a gauge hole configured for connecting a pressure gauge to the union fitting.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing and other features and advantages of the present invention will be more fully understood from the following detailed description of illustrative embodiments, taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(26) Detailed embodiments of the present invention are disclosed herein, however, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which may be embodied in various forms. Therefore, specific functional or structural details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed embodiment.
(27) Turning to
(28) Turning now to
(29) An alternative embodiment of the present invention is described with reference to
(30) In a still further alternative embodiment illustrated in
(31) The present invention also provides a method of purging a primary loop in a primary/secondary plumbing system using the inventive loop purge valve by connecting the first secondary loop port to a flushing fluid source and actuating the primary flow diversion device to configure the primary flow diversion device in its second position to close the flow path between the first primary loop port and second primary loop port. The first secondary flow diversion device is configured in the second position to allow the flushing fluid to flow into the first secondary loop port and the second secondary flow diversion device is configured in the second position to allow the flushing fluid to flow out from the second secondary loop port after flowing through the secondary loop (complete loop not shown). Upon completion of the purging procedure, each of the flow diversion devices can be configured to their respective first positions.
(32) Although one illustrative embodiment described herein includes diversion devices in both of the secondary loop ports and in the primary loop path, one skilled in the art should appreciate that other configurations of diversion devices can be implemented, such as a diversion device in each of the first and second primary loop ports, or in other combinations, such as a diversion device at inputs and/or outputs of the loop ports (primary and/or secondary).
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(34) A main actuator 85 extends from the valve body 60 enabling a first and second position of the main valve portion 78. A main flow diversion device (not shown here) is connected to a main handle 87 via the main actuator 85. The main handle 87 is retained to the main actuator with a nut 89. A purge valve handle 91 is connected to a purge valve flow diversion device (not shown here) via a purge valve actuator (not shown here). The purge valve handle 91 is retained to the purge valve actuator by a screw 93.
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(36) The main valve portion 78 is shown in the normal operation position in which fluid in the primary fluid flow path 82 can flow from secondary loop portion 70 through the main valve portion 78 to the primary loop port 64. The main flow diversion device 79 in the main valve portion 78 is shown in a first position to enable flow in the primary flow path between tee 76 and the second primary loop port 64 while preventing flow to the drain/venting valve portion 80. In this illustrative embodiment, the main flow diversion device 79 is a first ball having a through hole 95 extending through its center and a blind hole 97 extending orthogonal to the through hole to its center. The first ball is rotatable on an axis of the main actuator 85 (
(37) The purge valve flow diversion device 103 in the drain/venting valve portion 80 is shown in its normally closed position in which fluid in the primary flow path 82 is prevented from flowing between the main valve portion 78 and the drain port 83. In this illustrative embodiment, the purge valve flow diversion device 103 is a second ball having a through hole extending through its center. The second ball is rotatable on an axis of the purge valve actuator (not shown) which extends through its center and normal to the plane of drawing in
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(40) Again, it should be understood that labeling of primary flow path and secondary flow path is for illustration purposes and can be reversed without changing the scope of the present invention. For example, the primary flow path could be called the secondary flow path and vice versa. In a typical hydronic system, the primary loop is usually, but not always, associated with a boiler. The closely spaced tees hydraulically separates the primary flow path from the secondary flow path. That is, flow in the primary flow path does not affect flow in the secondary flow path and flow in the secondary flow path does not affect flow in the primary flow path.
(41) In normal operating position of valve body 60, the effect of closely spaced tees 74, 76 and main valve portion 78 in the normal operating position is to hydraulically separate the primary flow path 82 from the secondary flow path 84.
(42) In a second configuration, the main valve portion 78 closes off the primary flow path 82 and the drain/venting valve portion 80 is opened. The flow from the primary flow path 82 goes into a flow passageway, secondary loop portion 70, that is shared with the secondary flow path 84, then back to the primary flow path 82. Because the main valve portion is closed, i.e. in its second configuration, and the drain/venting valve portion 80 is open, for example any trapped air is purged out of the system. Once the trapped air has been purged out of the system, the main valve portion 78 and the drain/venting valve portion 80 are returned to their normal operating positions.
(43) Hydronic systems that use the primary/secondary piping method typically have circulation pumps installed in each loop. The circulation pump forces the fluid through the loop until the fluid encounters an obstacle, such as a shut valve. By providing a new path for the fluid to flow (e.g., out of the drain/venting valve portion 80) the fluid can continue to flow. Upon commissioning a piping system, or performing maintenance on a system, air is tapped inside the piping system. By power pumping when the main valve portion 78 and drain venting valve portion 80 are in the drain/purge configuration, air is power purged from the system via the drain port 83.
(44) It should be appreciated that the flow directions in the primary flow path 82 and the secondary flow path 84 can be reversed within the scope of the present invention. In such cases, the main flow diversion device 79 is oriented 180 degrees relative to the orientation shown so that the closed portion is located downstream, i.e. toward the lower portion of main valve portion 79 when the primary flow path is oriented from the second primary loop port 64 toward tee 76.
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(46) A main actuator 122 extends from the valve body 100 enabling a first and second position of the main valve portion 120. A main flow diversion device (not shown here) is connected to a main handle 124 via the main actuator 122. The main handle 124 is retained to the main actuator with a nut 126. A first purge/fill valve handle 128 is connected to a first purge/fill valve flow diversion device (not shown here) via a first purge/fill valve actuator (not shown here). The first purge/fill valve handle 128 is retained to the purge/fill valve actuator by a screw 130. A second purge/fill valve handle 132 is connected to a second purge/fill valve flow diversion device (not shown here) via a second purge/fill valve actuator (not shown here). The second purge/fill valve handle 132 is retained to the second purge/fill valve actuator by a screw 134.
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(48) The main valve portion 120 is shown in the normal operation position in which fluid in the primary fluid flow path 136 can flow between the first primary loop port 106 and the second primary loop port 108 via the main valve portion 120. The main flow diversion device 138 in the main valve portion 120 is shown in a first position to enable flow in the primary flow path. The first purge/drain flow diversion device 140 and second purge/drain flow diversion device 142 are shown in a first position to prevent flow from the primary flow path to either the first purge/drain port 102 or the second purge/drain port 104. In this illustrative embodiment, the main flow diversion device 138 is a first ball having a through hole 144 extending through its center and a blind hole 146 extending orthogonal to the through hole to its center. The first ball is rotatable on an axis of the main actuator 122 (
(49) The first purge/fill valve flow diversion device 140 in the first purge/fill valve portion 112 is shown in its normally closed position in which fluid in the primary flow path 136 is prevented from flowing between the main valve portion 120 and the first purge/fill port 102. In this illustrative embodiment, the first purge/fill valve flow diversion device 140 is a second ball having a through hole extending through its center. The second ball is rotatable on an axis of the first purge/fill valve actuator (not shown) which extends through its center and normal to the plane of drawing in
(50) The second purge/fill valve flow diversion device 142 in the second purge/fill valve portion 114 is shown in its normally closed position in which fluid in the primary flow path 136 is prevented from flowing between the primary loop portion 110 and the second purge/fill port 104. In this illustrative embodiment, the second purge/fill valve flow diversion device 142 is a third ball having a through hole extending through its center. The third ball is rotatable on an axis of the second purge/fill valve actuator (not shown) which extends through its center and normal to the plane of drawing in
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(53) A second purge/fill loop flow path 162 is shown by arrows extending between primary loop port 108 and tee 118. Fluid in the second purge/fill loop flow path 162 cannot flow through main valve portion 120 because it is diverted by the main flow diversion device 138. Because the second purge/fill valve handle 132 (best seen in
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(55) A drain/venting valve portion 280 may extend from one or both main valve portions 278, 300. In the embodiment shown in
(56) A portion of the secondary loop portion 270 between the tees 274, 276 is shared with the primary loop portion in which flow in a primary loop and a secondary loop are hydraulically separated.
(57) A main actuator 285 extends from the valve body 260 enabling a first and second position of the main valve portion 278. A main flow diversion device (not shown here) is connected to a main handle 287 via the main actuator 285. The main handle 287 is retained to the main actuator with a nut 289. A purge valve handle 291 is connected to a purge valve flow diversion device (not shown here) via a purge valve actuator (not shown here). The purge valve handle 291 is retained to the purge valve actuator by a screw 293.
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(59) The first main valve portion 278 is shown in the normal operation position in which fluid in the primary fluid flow path 282 can flow from secondary loop portion 270 through the first main valve portion 278 to the primary loop port 264. The second main valve portion 300 is also shown in the normal operation position in which fluid in the primary fluid flow path 282 can flow from secondary loop portion 270 through the second main valve portion 300 to the primary loop port 262.
(60) The main flow diversion devices 279, 279 in the main valve portion 278, 300 are shown in a first position to enable flow in the primary flow path between tees 274, 276 and the primary loop ports 262, 264 while preventing flow to the drain/venting valve portion 280. In this illustrative embodiment, the main flow diversion devices 279, 279 are balls having a through hole 295, 295 extending through their center. In embodiments in which a drain/venting valve portion 280 is extended from a main valve portion as shown extending from the first main valve portion 278, the ball includes a blind hole 297, extending orthogonal to the through hole to its center. The ball is rotatable on an axis of the main actuator 285, by movement of handles 287, 287 and main actuators 285, 285 (best seen in
(61) The purge valve flow diversion device 303 in the drain/venting valve portion 280 is shown in its normally closed position in which fluid in the primary flow path 282 is prevented from flowing between the main valve portion 278 and the drain port 283. In this illustrative embodiment, the purge valve flow diversion device 303 is a second ball having a through hole extending through its center. The second ball is rotatable, on an axis of the purge valve actuator (not shown) which extends substantially through its center and normal to the plane of drawing in
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(65) Persons having ordinary skill in the art should appreciate, with reference to
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(68) The secondary loop portion 508 further includes at least one drain valve portion 514, 514 extending from a corresponding neck portion 510, 512. The drain valve portion(s) 514, 514 include a respective drain shut-off valve 516, 516 disposed therein and a respective drain port 518, 518. The respective drain shut-off valve(s) 516, 516 are arranged to enable or disable flow through the respective drain port(s) 518, 518.
(69) The secondary loop portion 508 also includes at least one secondary loop interface port 520, 520 terminating each respective neck portion 510, 512 and at least one secondary loop shut-off valve 522, 522 disposed in the corresponding neck portion 510, 512 between the respective secondary loop interface port 518, 518 and the circumferential sidewall of the primary loop portion 502.
(70) In the eighth illustrative embodiment, the secondary loop shut-off valves 522, 522 includes an open operative position configured to open a main flow-path between the respective secondary loop interface port 520, 520 and the primary loop portion 502, and a closed operative position configured to close the main flow path between the respective secondary loop interface port 520, 520 and the primary loop portion 502. A drain flow path between the secondary loop interface port 520, 520 of the respective neck portion 510, 512 and the respective drain valve portion 514, 514 is configured to be open in both the open operative position and the closed operative position of the secondary loop shut-off valves 522, 522.
(71) In the illustrative embodiment, a rotatable flange 523 such as described in commonly owned co-pending U.S. patent application Ser. No. 12/749,020, which is incorporated herein by reference in its entirety, is configured to secure at least one of the secondary loop interface ports 520, 520 to an arbitrarily rotated flange interface in the secondary loop of a primary/secondary loop plumbing system.
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(73) Each of the flow diversion devices 524, 524 include a main ball portion 526, 526 having a through hole 528, 528 extending centrally there-through and having a blind hole 530, 530 extending orthogonally to the through hole 528, 528 from the center of the respective main ball portion 526, 526. The main ball portion 526, 526 is rotatable about a main ball axis 532, 532 through the center of the respective main ball portion 526, 526 and orthogonal to a plane of the respective through hole 528, 528 and blind hole 530, 530. In the open operative position of a respective secondary loop shut-off valve 522, 522, the respective through hole 528, 528 is aligned with the corresponding secondary loop interface port 520, 520 (
(74) Each of the drain shut-off valves 516, 516 includes a drain ball portion 534, 534 having a through hole 536, 536 extending centrally there-through and is rotatable through an arc of about 90 degrees about a drain ball axis 538, 538. Each of the drain ball axes 538, 538 are perpendicular to the through hole 536, 536 of the drain ball portion and parallel to the corresponding main ball axis 532, 532.
(75) In the illustrative embodiment, a first drain valve portion 514 is parallel to the primary loop portion 502 and directed away from the second neck portion 512, and the second drain valve portion 514 is directed generally toward the first neck portion 510 and oriented at an angle 540 of about 45 degrees relative to the primary loop portion 502 in this illustrative embodiment. An angle of 0 to 90 degrees or preferably 15-75 degrees may be implemented to provide clearance around the first neck portion 510 for access to the drain valve port 518 of the second drain valve portion 514.
(76) An implementation of the primary/secondary loop interface apparatus according to the eighth embodiment of the invention in a primary/secondary loop piping system is described with reference to
(77) In the primary/secondary loop piping system shown in
(78) At least one secondary loop pump 610 is installed in each of the secondary piping loops 608. In each secondary loop 608, the secondary loop pump 610 is mounted to a flange 523 on one of the secondary loop interface ports (520
(79) In the illustrative embodiment, the primary/secondary piping loop system includes a plurality of secondary piping loops 608 wherein one or more of the secondary piping loops 608 each constitute a separate heating zone, for example. Another of secondary piping loops 608 could constitute a snow melt system, for example.
(80) In the illustrative embodiment the boiler 602 is also installed in a secondary loop referred to herein as a near boiler piping loop 612. A secondary loop pump 614 in the near boiler piping loop 612 can be installed to the primary-secondary piping loop interfaces 500 in the same manner as described with regard to the secondary loop pumps 610 in secondary loops 608. Alternative embodiments of a near boiler piping loop 612 may include a secondary loop pump which is incorporated internally within the boiler rather than external to the boiler 602 as shown in
(81) Illustratively, the primary loop pump 606 is installed in the primary loop 604 between the near boiler piping loop 612 and the other secondary loops 608 wherein energy from the boiler is distributed. It should be understood that alternative embodiments within the scope of the present disclosure could include a boiler installed in the primary loop, rather than in a secondary loop as shown in
(82) In another implementation, the primary-secondary piping loop interface apparatus 500 according to the eighth embodiment of the invention is included in a near boiler piping apparatus which is described with reference to
(83) In the illustrative embodiment, a first flange 523 is configured on the first secondary loop interface port (520
(84) The return branch pipe section 702 includes a return branch boiler attachment tee 706. The return branch boiler attachment tee 706 includes a return branch boiler attachment fitting 708 and a return branch auxiliary attachment point 710.
(85) A second flange 712 is configured on wye strainer 714 which is attached to a supply branch pipe section 716 for mounting the wye strainer 714 to a second flange interface of the circulation pump 704. In the illustrative embodiment, the second flange 712 is a rotatable flange configured on the wye strainer 714 to allow attachment of an arbitrarily rotated second flange interface of the circulation pump 704. A wye strainer 714 with a rotatable flange which is suitable for use in the near boiler piping apparatus 700 is described in Applicant's co-pending U.S. patent application 12/851,957 entitled ROTATABLE FLANGE WYE STRAINER, which is a Continuation-in-Part of U.S. patent application Ser. No. 12/749,020, filed on Mar. 29, 2010 which are incorporated herein by reference in their entirety.
(86) The supply branch pipe section 716 includes a supply branch boiler attachment tee 718. In the illustrative embodiment, the supply branch boiler attachment tee 718 includes a supply branch boiler attachment fitting 720 and a supply branch auxiliary attachment point 722. The supply branch auxiliary attachment point 722 and return branch auxiliary attachment point 710 can be used for attaching an indirect water heater to the boiler, for example.
(87) A union fitting 724 connects the return branch pipe section 702 to the second secondary loop interface port (520,
(88) In the illustrative embodiment, the return branch pipe section includes a knee portion 728 configured to offset the return branch boiler attachment tee 706 from the supply branch boiler attachment tee 718.
(89) Illustrative embodiments of the present invention also provide a method of servicing a secondary loop in a primary-secondary loop piping system by operating the primary-secondary piping loop interface apparatus described hereinbefore with reference to
(90) In the illustrative embodiment, a draining operation of the primary-secondary loop interface apparatus requires the stop of draining a corresponding secondary loop of the primary-secondary loop piping system by opening the respective drain shut-off valves at least one of the drain valve portions.
(91) In the illustrative embodiment, a filling operation of the primary-secondary loop piping interface includes the steps of filling a corresponding secondary loop of the primary-secondary loop piping system by connecting a fill hose to at least one of the drain ports of at least one of the drain valve portions 806 and opening the respective drain shut-off valve of the drain valve portion 808.
(92) In the illustrative embodiment, a flushing operation of the primary-secondary loop piping interface includes the steps of flushing a corresponding secondary loop of the primary-secondary loop piping system by connecting a fill hose to at least one of the drain ports of at least one of the drain valve portions 810, opening the respective drain shut-off valve of the respective drain valve portion 812 and opening the drain shut-off valve in another of the at least one drain valve portions 814.
(93) It should be appreciated that a diversion device can be one or more devices for diverting flow in a desired manner. The descriptions of flow paths and flow directions herein which identify flow paths or other elements with labels such as primary and secondary, or first and second are for illustrative purposes to provide labels for a particular embodiment, drawing or claim and are not indicative of a hierarchal relationship between the elements. Further it should be understood that such labels may be reversed in any of the embodiments described or claimed herein without affecting the scope of the present disclosure. Similarly, it should be understood that the clockwise or counterclockwise direction of rotations of certain elements such as flow diversion devices and handles described herein are for illustrative purposes only and may generally be reversed without changing the scope of the present disclosure.
(94) While the invention has been described with reference to illustrative embodiments, it will be understood by those skilled in the art that various other changes, omissions and/or additions may be made and substantial equivalents may be substituted for elements thereof without departing from the spirit and scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims. Moreover, unless specifically stated any use of the terms first, second, etc. do not denote any order or importance, but rather the terms first, second, etc. are used to distinguish one element from another.