Heat Exchanger
20220057081 ยท 2022-02-24
Inventors
Cpc classification
F24H1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0475
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/167
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0213
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/1809
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F22B1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D88/74
PERFORMING OPERATIONS; TRANSPORTING
F24H1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger which is used primarily in oil and gas operations to heat tanks of liquids, such as drilling mud, water, heavy oil or other such fluids from freezing or becoming too viscous to pump.
Claims
1. A tank and heat exchanger combination, said heat exchanger comprising: a heat transfer flange; a heat transfer tube attached to a first surface of the heat transfer flange; a pipe-like structure attached to a second surface of the heat transfer flange, the first surface is opposite to the second surface; and a through hole formed in the heat transfer flange and extending from the first to the second side surface, wherein the pipe-like structure communicates with the heat transfer tube via the through-hole.
2. The tank and heat exchanger combination of claim 1, wherein said tank comprises a tank flange having an opening, the heat transfer flange is attached to the tank flange, the opening of said tank communicates with the through hole formed in the heat transfer flange, the heat transfer tube is arranged inside of said tank, and the pipe-like structure is arranged outside of said tank.
3. The tank and heat exchanger combination of claim 1, wherein the heat transfer flange is attached to a surface of said tank, the heat transfer tube is arranged inside of said tank, and the pipe-like structure is arranged outside of said tank.
4. The tank and heat exchanger combination of claim 1, further comprising: a hose attached to the pipe-like structure, wherein the hose is configured to introduce a liquid into the heat transfer tube of said heat exchanger via the pipe-like structure.
5. The tank and heat exchanger combination of claim 1, wherein said heat transfer tube is formed in a generally u-shape, and a closed end of the generally u-shaped heat transfer tube is arranged away from the heat transfer flange.
6. The tank and heat exchanger combination of claim 1, wherein the through hole comprises a first through hole and a second through hole, the pipe-like structure comprises a first pipe-like structure and a second pipe-like structure, the heat transfer tube comprises a first tube portion and a second tube portion, the first tube portion communicates with the first pipe-like structure via the first through-hole, and the second tube portion communicates with the second pipe-like structure via the second through-hole.
7. The tank and heat exchanger combination of claim 6, further comprising: a first hose; and a second hose, wherein the first hose is attached to the first tube portion, the second hose is attached to the second tube portion, and at least one of the first hose and the second hose is configured to introduce a liquid into the heat transfer tube of said heat exchanger.
8. The tank and heat exchanger combination of claim 4, further comprising: a coupling sandwiched between the hose and the pipe-like structure, wherein the coupling is configured to attach and detach the hose from the pipe-like structure.
9. The tank and heat exchanger combination of claim 1, wherein: the heat transfer tube is welded to the first surface of the heat transfer flange.
10. The tank and heat exchanger combination of claim 1, wherein: the pipe-like structure is welded to the second surface of the heat transfer flange.
11. The tank and heat exchanger combination of claim 2, wherein: the heat transfer flange comprises a bolt pattern matching a tank flange bolt pattern, and the tank flange is bolted to the heat transfer flange.
12. A method of heating a tank, comprising: connecting a heat exchanger unit to said tank; connecting a heat source to the heat exchanger unit, wherein the heat exchanger unit comprises: a heat transfer flange; a heat transfer tube attached to a first surface of the heat transfer flange; a pipe-like structure attached to a second surface of the heat transfer flange; and a through-hole formed in the flange and extending from the first to the second side surface, wherein the pipe-like structure communicates with the heat transfer tube via the through-hole, connecting the heat transfer flange to a tank flange so that the heat transfer tube extends into the tank from the first surface of the heat exchanger unit and through an opening in the tank flange.
13. The method of heating a tank of claim 11, wherein: the heat transfer flange is bolted to the tank flange, and a bolt pattern on the tank flange is configured to match a bolt pattern on the heat transfer flange.
14. The method of heating a tank of claim 11, wherein: the tank flange includes an opening having a diameter configured to accommodate the heat transfer tube extending into the tank from the heat transfer flange.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The following drawings illustrate examples of various components of the invention disclosed herein, and are for illustrative purposes only.
[0010]
[0011]
DETAILED DESCRIPTION
[0012] While the present invention may be embodied in many different forms, a number of illustrative embodiments are described herein with the understanding that the present disclosure is to be considered as providing examples of the principles of the invention and such examples are not intended to limit the invention to preferred embodiments described herein and/or illustrated herein
[0013] Reference will now be made to
[0014] The largest component of heat exchanger 1, for example, is heat transfer tube 10. In this example, heat transfer tube 10 (e.g., may be multiple tubes) is constructed of stainless steel (e.g., provides corrosion resistance for caustic fluids); however, it is known to use any similar non-corrosive material, such as steel, or copper. The heat transfer tube 10 can be constructed of varying sizes, mainly dependent on the flange size of the tank that it is inserted into. The heat transfer tube 10 may be configured to include one or more bends, depending, in part on the tank flange size.
[0015] Attached to the heat transfer tubes 10 is heat exchanger flange 20. In this example, heat exchange flange 20 is constructed of the same material as the heat exchanger tubes (e.g., stainless steel); however, it is known to use any similar non-corrosive material, such as steel, or copper. The heat exchange flange 20 is attached to or formed integral with the heat transfer tube 10. In this example, the heat exchange flange 20 is welded to the heat transfer tube 10. However, one of ordinary skill in the art would connect the flange 20 to the tube 10 in any safe and secure manner. In this example, the heat exchange flange 20 includes a plurality of through holes having a smaller diameter, for example, than an opening in the tank flange 60 described below. The through holes are configured to allow the heating fluid (e.g., hot glycol) to circulate to the heat transfer tubes 10.
[0016] Pipes 30A and 30B are attached to an opposite side of the heat exchanger flange 20 as the heat transfer tube 10.
[0017] The pipes 30A and 30B are attached to or formed integral with a surface of the heat exchanger flange 20. In this example, the pipes 30A and 30B are welded to the surface. Quick connect couplers 40A and 40B are attached to an end of the pipes 30A and 30B that is away from the surface of the heat exchanger flange 20. In this example, the quick connect couplers 40A and 40B are hydraulic quick connect couplers and are screwed on to the end of the pipes 30A and 30B. The quick connect couplers 40A and 40B are arranged between the pipes 30A and 30B and hoses 50A and 50B. The quick connect couplers 40A and 40B are configured to connect the hoses 50A and 50B to the pipes 30A and 30B in order to transfer a heated fluid (e.g., hot glycol) to the heat exchanger 1. The hoses 50A and 50B can be constructed of various dimensions and can be connected to other hoses or a heater with quick connect couplers, such as the type described above.
[0018] Tank flange 60 is attached to or formed integral with a surface of tank 1 (e.g., drum), as shown in
[0019] The tank flange 60 may include a pipe having the same diameter as the opening formed in the tank flange 60 and extending from the tank flange 60 into the tank 1. In this example, a bolt pattern formed on the tank flange 60 is designed to match a bolt pattern formed on the heat transfer flange 20 so that the tank flange 60 can be fixed to the heat transfer flange such that the heat transfer tubes 10 extend through the pipe of tank flange 60 and into the tank 1.
[0020] In this example, hot glycol travels through the hose 50A, which is connected to the quick connect coupler 40A and then flows into the drum through a first opening in the flanges 20, 60 to an inside of the heat transfer tube 10 arranged inside the drum. The glycol continuously flows inside the heat transfer tube 10 (e.g., generally u-shaped in this example) and exits the drum through a second opening in the flanges 20, 60 to the quick connect coupler 40B and then exits the heat exchanger through the hose 50B.
[0021] The process can be reversed so that either coupler can be a used as an intake or exit for the hot glycol. The hot glycol can be pumped through the heat exchanger continuously or intermittently as required.
[0022] Although an embodiment of the instant invention has been described above and illustrated in the accompanying drawing in order to be more clearly understood, the above description is made by way of example and not as a limitation to the scope of the instant invention. It is contemplated that various modifications apparent to one of ordinary skill in the art could be made without departing from the scope of the invention which is to be determined by the following claims.