Hot water baseboard style radiator systems are used extensively in residential and commercial buildings. Such systems typically utilize copper pipes having closely spaced aluminum fins (often called “finned tubes”) that run along the length of a wall. The finned tubes are typically covered by a housing or cover panel for decorative purposes, protection of the fins, and to promote convection currents. In operation, hot water flows through the pipes heating the pipes. Heat is transferred from the hot pipes to the fins by conduction. Due to the large surface area of the fins, heat is transferred to the surrounding air. As the air is warmed as it passes between the fins, the warm air rises and the cooler air is drawn toward the finned tubes creating a natural convection current.
The aluminum fins of the finned tube are fixed to the copper pipes through a process known as swedging to provide a tight fit and uniform contact between the fins and the tube thereby securing the fins in place along the pipe and ensuring efficient heat conduction. However, the aluminum fins can often become bent or damaged from impact thereby reducing air flow between the fins which can affect the efficiency of heat transfer from the fins to the surrounding air. Because the fins are fixed to the pipes, the fins are not easily replaceable without replacing an entire section of the finned tube which may extend for many feet. Additionally, finned tubes are typically available only in standard lengths unless the lengths are custom ordered at significantly higher cost than standard lengths. Thus, depending on room size or wall length, the standard length finned tubes may be too long for a particular wall or room, requiring the use of a shorter length standard finned tube than is desired or resulting in the decision to not provide a baseboard radiator on a particular wall. Similarly, when it is desired to move a wall in a residential or commercial building during remodeling where an existing baseboard style radiator is installed, it is often necessary to replace the entire length of the finned tube when, ideally, only a short section would need to be removed or added. Also if it becomes necessary to repair or replace a section of the radiator pipe, it is necessary to either replace the entire length of the finned tube containing the damaged pipe, or it is necessary to cut the fins away to exposed the damaged pipe section so the damaged pipe section can be cut and replaced, leaving a gap in the fins where the fins were cut away, resulting in unbalanced heat delivery.
Accordingly, there is a need for a removable radiator fin assembly which will provide a solution to the foregoing disadvantages of baseboard radiator systems with finned tubes having the fins fixed to the radiator pipes, and which provides better or nearly the same BTUs per hour per foot (BTU/hr/ft) as finned tubes with fixed fins of the same pipe size and fin size. There is also a need for an attachable and removable heatsink which can be applied to any pipe, conduit, tube or line application in which it is desired to radiate heat into a space or to dissipate heat away from the pipe, conduit, tube or line.
The removable heatsink assembly comprises a first plurality of fins 10 and a second plurality of fins 20. Each of the first and second plurality of fins 10, 20 are preferably substantially identical and stamped from thin plate aluminum or other material which efficiently conducts and radiates heat.
Referring to
A spacer rod 30 extends through the spacer rod holes 60 of the first plurality of fins 10 and a second spacer rod 32 extends through the spacer rod holes 60 of the second plurality of fins 20. The fins 10, 20 are oriented on the spacer rods 30, 32 with the collar flanges 80 extending in the same direction such that the collar flanges 80 abut an adjacent fin thereby serving as spacers to ensure that the fins are equally spaced along the spacer rods 30, 32 to better and more uniformly radiate heat. The spacer tabs 61 may also serve as spacers and may serve as guides for the spacer rods 30, 32 as the rods are inserted through each of the spacer rod holes 60.
The spacer rods 30, 32, with the first and second plurality fins 10, 20 received respectively thereon, are oriented such that the collar flanges 80 and spacer tabs 61 of the first plurality of fins 10 extend in a first direction and the collar flanges 80 and spacer tabs 61 of the second plurality of fins 20 extend in a second direction opposite from the first direction. The hinge rod holes 70 of the first and second plurality of fins are then aligned to receive the hinge rod 40 therethrough, thereby pivotally joining the first plurality of fins 10 with the second plurality of fins 20, such that the first and second fins are pivotally movable between an open position (
Once the first and second plurality of fins 10, 20, and rods 30, 40 are assembled as described above, the assembly 1 is pivoted to the open position (
The fins 10, 20, the fin clamps 50 and the collar flanges 80 may be made in various sizes to accommodate different sizes of standard pipe diameters, although the components may be specially fabricated or customized to accommodate any desired pipe diameter and the fins may be sized as desired according to available space requirements or heat dissipation requirements. The lengths of the hinge rods and spacer rods, and thus the length of the assembly 1, may also be standardized in predetermined lengths but may be customized to any desired length. Thus, the assemblies may be used in any residential, commercial or industrial applications, whether to replace missing fins after repairs have been made to piping or for new construction or repairs to balance heat delivery to a space or to dissipate heat from the pipe.
Referring to
A spacer rod 230 extends through the spacer rod holes 260 of the first plurality of fins 210 and a second spacer rod 232 extends through the spacer rod holes 260 of the second plurality of fins 220. The fins 210, 220 are oriented on the respective spacer rods 230, 232 with each of the collar flanges 280 extending in the same direction such that the collar flanges 280 abut an adjacent fin thereby serving as spacers to ensure that the fins are equally spaced along the spacer rods 30, 32 to better and more uniformly radiate or dissipate heat. The spacer tabs 261 may also serve as spacers and may serve as guides for the spacer rods 230, 232 as the rods are inserted through each of the spacer rod holes 260. Spacer rod caps 233 may be used to retain the fins 210, 220 on the spacer rods 230, 232.
The spacer rods 230, 232, with the first and second plurality of fins 210, 220 received respectively thereon, are flipped or oriented such that the collar flanges 280 and spacer tabs 261 of the first plurality of fins 210 extend in a first direction and the collar flanges 280 and spacer tabs 261 of the second plurality of fins 220 extend in a second direction opposite from the first direction. The hinge rod holes 270 of the first and second plurality of fins are then aligned to receive the hinge rod 240 therethrough, thereby pivotally joining the first plurality of fins 210 with the second plurality of fins 220, such that the first and second fins are pivotally movable between an open position (
It should be appreciated that if the fins 210, 220 were instead stamped to be mirror images of one another, it would not be necessary to flip or orient the spacer rods so the collar flanges 280 and spacer tabs 261 are in the opposite direction to assemble the assembly 200.
In one embodiment as illustrated in
As in the previous embodiment, the fins 210, 220, the fin clamp assembly 300 and the collar flanges 280 may be made in various sizes to fit around and to accommodate different sizes of standard pipe diameters, although the components may be specially fabricated or customized to accommodate any desired pipe diameter and the fins may be sized as desired according to available space requirements or heat dissipation requirements. Also as in the previous embodiment, the lengths of the hinge rod 40 and spacer rods 30, and thus the length of the assembly 200, may also be standardized in predetermined lengths but may be customized to any desired length. Thus, the assemblies may be used in any residential, commercial or industrial applications, whether to replace missing fins after repairs have been made to piping or for new construction or repairs to balance heat delivery to a space or to dissipate heat from the pipe.
It has been found that each of the removable heatsink assembly embodiments described above and illustrated in the drawings provides better or nearly the same BTUs per hour per foot (BTU/hr/ft) as finned tubes with fixed fins of the same pipe size and fin size.
Non-limiting examples of applications where it may be desirable to apply a removable heatsink assembly 1, 200 as disclosed herein to a pipe, may include electrical conduits through which electrical wires are routed. In such an application, the removable heatsink assembly 1, 200 will effectively dissipate heat generated by the flow of electrical current through the electrical wires within the conduit. By applying the heatsink assembly 1, 200 to electrical conduits to more effectively dissipate heat away from the electrical conduit, smaller gauge wires may be utilized than would otherwise be required without a heatsink applied to the electrical conduit. In another non-limiting example, the removable heatsink assembly 1, 200 may be applied to oil lines of air cooled engines of vehicles to more effectively dissipate heat away from the oil lines. In another non-limiting example, the removable heatsink assembly 1, 200 may be applied to compressed gas lines, such as the type of lines utilized for communicating compressed nitrogen, helium or other compressed gases, in order to more effectively dissipate heat away from the compressed gas lines. In yet another non-limiting example, the removable heatsink assembly 1, 200 may be applied to conduits or pipes used to communicate fluids to a bottling or packaging location. For example, in certain processing or packaging facilities it may be desirable to cool fluids before the fluids are bottled or packaged in plastic bottles or containers because if the fluid is too hot when filling plastic bottles or containers, the plastic bottles or containers can deform. By applying the removable heatsink assembly 1, 200 to the fluid pipes to dissipate heat away from the fluid as it is communicated to the bottling or packaging location, the temperature of the fluid can be reduced before the fluid is placed in the bottles or containers, thereby minimize or avoid deformation of the plastic bottles or containers.
Various modifications to the embodiments and the general principles and features of the heatsink assembly its various uses for residential, commercial and industrial applications will be readily apparent to those of skill in the art.
This is application is a continuation-in-part of U.S. patent application Ser. No. 13/945,188 filed Jul. 18, 2013, which claims the benefit of U.S. Provisional Application No. 61/673005, filed, Jul. 18, 2012.
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Number | Date | Country | |
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20170261271 A1 | Sep 2017 | US |
Number | Date | Country | |
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61673005 | Jul 2012 | US |
Number | Date | Country | |
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Parent | 13945188 | Jul 2013 | US |
Child | 15470877 | US |