Claims
- 1. Heating system including deaeration of dissolved extremely small gas bubbles from a circulating liquid comprising a closed loop for circulating a liquid heat carrier, said closed loop having an upper horizontally extending part, means in said closed loop for circulating the liquid heat carrier, means in said closed loop for heating the liquid heat carrier, a branch line connected to and extending upwardly from said horizontally extending part of said closed loop immediately adjacent to and downstream from said means for heating the liquid heat carrier for containing a body of the liquid heat carrier therein in the at-rest condition with the lower end of said branch line and said horizontally extending part of said closed loop forming an interface between the liquid in said closed loop and the liquid in said branch line so that the liquid in said closed loop continues to flow past the interface at a temporarily reduced rate of flow velocity whereby extremely small gas bubbles can be released from the circulating liquid at the interface into said branch line, an air separator connected to said branch line upwardly from the interface with said closed loop and forming a continuation of said branch line for containing the body of liquid heat carrier in the at-rest condition, said circulating means comprising a pump located in said closed loop adjacent to and downstream from said branch line containing said air separator so that the liquid flowing in said closed loop past said air separator enters the suction side of said pump, said air separator having an enclosed air collecting chamber, and a float-controlled valve connected to said aid collecting chamber for regulating flow of air of gas from the collecting chamber to the ambient air.
- 2. Method of deaerating dissolved extremely small gas bubbles from a circulation system including a closed circulation line containing a constant amount of liquid, comprising the steps of generating a force for circulating the liquid through the circulation line by one of heating the circulating liquid and generating a negative pressure in the circulating liquid, positioning the force generation at a determined location in the circulation line, providing an upwardly extending branch line off a generally horizontally extending part of the circulation line immediately adjacent to the determined location of the circulating force, providing an air collecting chamber in the branch line spaced upwardly from the circulation line, connecting the collecting chamber to the ambient air, filling the branch line from the circulation line into the air collecting chamber with the liquid flowing in the circulation line so that the upwardly extending column of liquid is at-rest within the branch line and air collecting chamber and providing an interface between the liquid flowing through the circulation line and the liquid in the at-rest condition within the branch line, releasing gases dissolved in the circulating liquid in the form of extremely small gas bubbles invisible to the naked eye by the force generating step, effecting temporarily reduced flow velocity of the liquid in the horizontally extending part of the circulation line directly underneath the interface with the upwardly extending column of liquid at-rest and, while the liquid continues circulating in the circulation line, removing the extremely small gas bubbles of the released gases at the interface from the circulation line into the branch line for flow upwardly through the liquid in the at-rest condition into the collecting chamber and subsequent discharge into the ambient air, and at a location adjacent to and downstream from the upwardly extending branch line providing one of cooling the liquid and returning the liquid to at least normal pressure in correspondence to the force generating step so that the liquid during its continued flow through the circulation line is able to dissolve air from air accumulations with which the circulating liquid comes into contact in the circulation line so that the dissolved air can be subsequently released in the form of extremely small gas bubbles.
- 3. Appartus for deaerating dissolved extremely small gas bubbles from a circulation system through which a constant amount of liquid is circulated, comprising a closed circulation line for containing the constant amount of liquid, said circulation line have an upper generally horizontally extending part, a branch line connected to and extending upwardly from said horizontally extending part of said circulation line, means located in said circulation line immediately adjacent to said branch line for generating a force for circulating the liquid through said circulation line with the force acting at said branch line, said branch line arranged to contain a body of the liquid flowing through said circulation line in the at-rest condition and the body of liquid in the at-rest condition in said branch line arranged to form an interface with the flow through said circulation line so that a temporarily reduced flow velocity of the liquid in said circulation liquid is effected directly underneath said branch line with the liquid continuing to flow in said horizontally extending part past the interface, a collecting chamber positioned in said branch line spaced upwardly from the interface with said circulation line and arranged to hold the liquid in said branch line in the at-rest condition for collecting air and gases in the form of extremely small bubbles, said collecting chamber being connected to the ambient air, and means located adjacent to and downstream from said branch line for effecting an opposite action on the liquid to that provided in generating the force for circulating the liquid.
- 4. Method, as set forth in claim 2, including the step of sizing the transverse cross-section of the branch line at least four times greater than the transverse cross-section of the circulating line.
- 5. Appartus, as set forth in claim 3, wherein a booster pump is located in said circulation line intermediate said branch line and said means for effecting an opposite action.
- 6. Apparatus, as set forth in claim 3, wherein said branch line having a transverse flow cross-section approximately four times greater than the transverse flow cross-section through said horizontally extending part of said closed loop.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2810583 |
Mar 1978 |
DEX |
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Parent Case Info
This is a continuation of application Ser. No. 017,083, filed Mar. 5, 1979, now abandoned.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3195294 |
Verdura et al. |
Jul 1965 |
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Foreign Referenced Citations (1)
Number |
Date |
Country |
2604130 |
May 1977 |
DEX |
Continuations (1)
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Number |
Date |
Country |
Parent |
017083 |
Mar 1979 |
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