Claims
- 1. In a method of cooling glass fibers formed from molten glass, wherein heat is extracted from the glass fibers as they are formed through a fin cooler assembly by indirect heat exchange through the fin surfaces, the improvement comprising: circulating in a closed loop through each fin a heat transfer fluid having a specific heat of at least 0.5 cal/.degree.C./gm and a vapor pressure not over 1 atmosphere at operating temperature, at a rate sufficient to maintain the fin surfaces above about 150.degree. F. and below a temperature which would cause fin distortion while extracting heat from the glass fiber forming environment into said heat transfer fluid and removing heat from the heat transfer fluid in a heat exchanger remote from the fins but located in the closed loop through which the heat transfer fluid flows as it circulates.
- 2. The method of claim 1, wherein the extracted heat in said heat transfer fluis is removed at a location remote from said fin cooler.
- 3. The method of claim 1, wherein the fin surfaces are maintained at temperatures between 150.degree. F. and 200.degree. F.
- 4. The method of claim 1, wherein the fin surfaces are maintained at a temperatures above 200.degree. F.
- 5. A method of cooling glass fibers formed from molten glass in a glass forming bushing having a plurality of glass forming tips comprising the steps of:
- positioning a fin cooler having a plurality of spaced cooling fins adjacent the glass forming tips and passing the formed glass fibers between the spaced cooling fins;
- flowing a heat transfer fluid having a boiling point higher than water, a high specific heat and a low vapor pressure through flow passages in said spaced cooling fings;
- removing heat from said glass fibers as said fibers pass between said cooling fins and transferring the removed heat to said heat transfer fluid;
- cooling said heat transfer fluid in a heat exchanger to an extent sufficient to maintain the temperature of the cooling fins through which the cooled heat exchange fluid is flowing at a temperature of between 150.degree.-400.degree. F.; and
- circulating said heat transfer fluid in a closed lip continuously between said fin cooler and said heat exchanger.
- 6. The method of claim 5, wherein the temperature of the cooling fins is above about 200.degree. F.
- 7. The method of claim 5, wherein the temperature of the cooling fins is between 150.degree. F. and 200.degree. F.
- 8. The method of claim 5 further including providing separate coolant liquid inflow and outflow channels in a header block of said fin cooler, and flowing said heat transfer fluid from said heat exchanger to said coolant liquid inflow channel and flowing said heat transfer fluid from said coolant liquid outflow channel to said heat exchanger.
- 9. The method of claim 8 further including providing a generally elongated U-shaped fluid flow path as said flow passage of each of said cooling fins, connecting an inlet portion of said flow passage to said coolant liquid inflow channel and connecting an outlet port of said flow passage of said coolant liquid outflow channel.
- 10. A fin cooler assembly in combination with a glass fiber forming bushing having a plurality of rows of glass forming tips, said fin cooler assembly comprising:
- a fin cooler header including separate spaced coolant liquid inflow and coolant liquid outflow channels;
- a plurality of parallel, spaced apart cooling fins secured at first ends to said header block and extending outwardly therefrom and constructed to fit beneath and between the said rows of bushing tips;
- a coolant liquid flow passage in each of said cooling fins, each of said flow passagesincluding an inlet port in fluid communication with said coolant liquid inflow channel and an outlet port in fluid communication with said coolant liquid inflow chanel;
- a heat exchanger remote from said fin cooler header block and connected thereto in fluid communication therewith to form a closed loop fluid flow path between said fin cooler header and said heat exchanger and
- heat transfer fluid in said closed loop fluid flow path between said heat exchanger and said header block and through said coolant liquid flow passages in said cooling fins, means to circulate said heat transfer fluid in said closed loop and means in said heat exchanger to remove heat from said heat transfer fluid.
- 11. The fin cooler assembly of claim 10, wherein said coolant liquid flow passage in each of said cooling fins is generally an elongated U-shaped passage.
- 12. The method of claim 1, wherein a temperature differential of 50.degree. to 100.degree. F. is maintained between the fin surfaces and the boiling point of the heat transfer fluid.
- 13. The method of claim 3, wherein there is a temperature differential of 50.degree. to 100.degree. F. between the fin surfaces and the boiling point of the heat transfer fluid.
- 14. The method of claim 5, wherein there is a temperature differential of 50.degree. to 100.degree. F. between the fin surfaces and the boiling point of the heat transfer fluid.
- 15. The method of claim 6, wherein there is a temperature differential of 50.degree. to 100.degree. F. between the fin surfaces and the boiling point of the heat transfer fluid.
- 16. The method of claim 7, wherein there is a temperature differential of 50.degree. to 100.degree. F. between the fin surfaces and the boiling point of the heat transfer fluid.
- 17. In a method of cooling glass fibers formed from molten glass, wherein heat is extracted from the glass fibers as they are formed through a plurality of spaced apart fins of a fin cooler assembly by indirect heat exchange through the fin surfaces, the improvement comprising: circulating in a closed loop, through each fin, a heat transfer fluid at a temperature of at least 150.degree. F. and below its boiling point, extracting heat from the environment around the fins and transferring it to the heat transfer fluid circulating in the fins, passing the heat transfer fluid to a heat exchanger located remote from the fins, extracting heat from the heat transfer fluid in the heat exchanger and balancing the heat removal in the heat exchanger and the flow rate of the heat transfer fluid to maintain the temperature of the heat transfer fluid in the fins at 150.degree. F. or greater but below the boiling point of the heat transfer fluid to thereby maintain the fin surfaces at 150.degree. F. or higher and below a temperature which would cause fin distortion while extracting heat from the environment around the fins.
- 18. In a method of cooling glass fibers formed from molten glass wherein heat is extracted from the glass fibers as they are formed through a plurality of spaced fins of a fin cooler assembly by indirect heat exchange through the fin surfaces, the improvement comprising-circulating water in a closed loop system through each fin at a temperature of at least 150.degree. F. and below its boiling point, extracting heat from the environment adjacent the fins and transferring it to the water in the fins, passing the water from the fins to a heat exchanger in the closed loop and located remote from the fins, extracting heat from the water in the heat exchanger and balancing the rate of heat removal from the water in the heat exchanger and the rate of flow of water through the fins to control and maintain the water in the fins at a temperature of at least 150.degree. F. or more but below its boiling point.
- 19. The method of claim 17, wherein the fin surfaces are maintained at temperatures between 150.degree. F. and 200.degree. F.
- 20. The method of claim 18, wherein the fin surfaces are maintained at temperatures between 150.degree. F. and 200.degree. F.
- 21. A method of cooling glass fibers formed from molten glass in a glass forming bushing having a plurality of glass forming tips comprising the steps of:
- positioning a fin cooler having a plurality of spaced cooling fins adjacent the glass forming tips and passing the formed glass fibers between the spaced cooling fins;
- flowing heat transfer fluid through flow passages in said spaced cooling fins;
- removing heat from said glass fibers as said fibers pass between said cooling fins and transferring the removed heat to said heat transfer fluid;
- cooling said heat transfer fluid in a heat exchanger continuously and to an extent sufficient to maintain the temperature of the cooling fins though which the cooled heat exchange fluid is flowing at a temperature of between 150.degree.-400.degree. F.; and
- circulating the said heat transfer fluid in a closed loop continuously between said fin cooler and said heat exchanger.
- 22. The method of claim 21, wherein the temperature of the cooling fins is between 150.degree. F. and 200.degree. F.
- 23. The method of claim 21 further including providing separate coolant liquid inflow and outflow channels in a header block of said fin cooler, and flowing said heat transfer fluid from said heat exchanger to said coolant liquid inflow channel and flowing said heat transfer fluid from said coolant liquid outflow channel to said heat exchanger.
- 24. The method of claim 23 further including providing a generally elongated U-shaped fluid flow path as said flow passage for each of said cooling fins, connecting the inlet of each said flow passage to said coolant liquid inflow channel and connecting the outlet of each said flow passage to said coolant liquid outflow channel.
- 25. A method of cooling glass fibers formed from molten glass in a glass forming bushing having a plurality of glass forming tips comprising the steps of:
- positioning a fin cooler having a plurality of spaced cooling fins adajcent the glass forming tips and passing the formed glass fibers between the spaced cooling fins;
- flowing water continuously through flow passages in said spaced cooling fins;
- removing heat from said glass fibers as said fibers pass between said cooling fins and transferring the removed heat to said water;
- cooling said water in a heat exchanger continuously and to an extent sufficient to maintain the temperature of the cooling fins through which the cooled water is flowing at a temperature of at least 150.degree. F. and the water below its boiling point; and
- circulating said water in closed loop continuously between said fin cooler and said heat exchanger.
- 26. The method of claim 25, wherein the temperature of the cooling fins is maintained between 150.degree. F. and 200.degree. F.
- 27. The method of claim 25 further including providing separate coolant water inflow and outflow channels in a header block of said fin cooler, and flowing said water from said heat exchanger to said coolant water inflow channel and flowing said water from said coolant liquid outflow channel to said heat exchanger.
- 28. The method of claim 27 further including providing a generally elongated U-shaped fluid flow path as said flow passage of each of said cooling fins, connecting the inlet of said flow passage to said coolant water inflow channel and connecting the outlet of said flow passage to said coolant water outflow channel.
Parent Case Info
This application is a continuation-in-part of Ser. No. 58,719, filed June 5, 1987, which was a continuation-in-part of Ser. No. 914,429, filed Oct. 2, 1986, which was a continuation-in-part of Ser. No. 783,883, filed Oct. 3, 1985, which was a continuation-in-part of Ser. No. 696,966, filed Jan. 31, 1985, all now abandoned.
US Referenced Citations (11)
Continuation in Parts (4)
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Number |
Date |
Country |
Parent |
58719 |
Jun 1987 |
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Parent |
914429 |
Oct 1986 |
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Parent |
783883 |
Oct 1985 |
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Parent |
696966 |
Jan 1985 |
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