Claims
- 1. For use with heat exchanging systems having a source of heat, an improved fluid delivering system and apparatus comprising
- a heat exchanger which is in flow communication with the source of heat;
- a pressure driven turbine generator which is in flow communication with the heat exchanger;
- a vapor condensing means for converting the vaporous exhaust from the pressure driven turbine generator into the liquid state at normal atmospheric pressures and temperatures;
- a source of fluid in the liquid state capable of being converted from the liquid state into the vapor state by the heat exchanger;
- a storage tank for receiving the liquid from the source of fluid;
- conduit means for delivering the liquid condensate from the condensing means into the storage tank, said conduit means being provided with a short venting conduit attached thereto at a convenient location;
- alternating tank means for receiving liquid from the bottom part of the storage tank while, at the same time venting vapor into the top part of the said storage tank while being in a filling mode, and, alternately, delivering liquid from the bottom part of the said alternating tank means into the top part of a liquid flow control tank while, at the same time, receiving high pressure vapor from the heat exchanger into the top part of the said alternating tank while being in an emptying mode;
- a liquid flow control tank means for receiving liquid from the bottom part of the alternating tank means and vapor from the top part of the heat exchanger, and for controlling the rate of liquid input such that the rate of liquid input is equal to the volume of liquid being vaporized by the heat exchanger;
- conduit means for delivering liquid from the storage tank into the alternating tanks and, for delivering vapor from the alternating tanks into the storage tank;
- conduit means for receiving high pressure vapor from the heat exchanger to thereby provide for high pressure vapor equilibrium between the liquid flow control tank, the heat exchanger and the alternating tank being emptied;
- conduit means for delivering liquid from the alternating tanks into the liquid flow control tank, said conduit being attached to the bottom part of each alternating tank and to the top part of the liquid flow control tank and a check valve disposed in said conduit means below each said alternating tank to provide against liquid return into, the bottom of the said tank;
- a first automatic valve means disposed in the liquid delivering conduit between the storage tank and the alternating tanks such that the top part (inlet) of the automatic valve is disposed in the conduit for delivering liquid from the bottom part of the storage tank and a normally closed outlet of the said valve is coupled to a branch of the said conduit being attached to the top of the first alternating tank and a normally opened outlet of the said valve is coupled to a branch of the said conduit being attached to the top of the second alternating tank;
- a second automatic valve means disposed in the atmospheric pressure equilibrium conduit between the top part of the storage tank and the top part of the alternating tanks such that the top (inlet) part of the said automatic valve is in communication with the top part of the storage tank, and a normally closed outlet of the said valve is coupled to a branch of the said conduit being attached to the top part of the first alternating tank, and a normally opened outlet of the said valve is coupled to a branch of the said conduit being attached to the top part of the second alternating tank;
- conduit means for providing flow communication between the top part of the heat exchanger means and the top part of the alternating tanks such that high pressure vapor equilibrium in said heat exchanger can communicate between the liquid flow control tank, the heat exchanger and the alternating tank being emptied;
- a third automatic valve means disposed in the high pressure vapor equilbrium conduit between the heat exchanger means and the alternating tanks such that the top (inlet) part of the said third automatic valve is in communication with the source of high pressure vapor equilibrium and a normally opened outlet of the said valve is coupled to a branch of the said conduit being attached to the top part of the first alternating tank and a normally closed outlet of the said valve is coupled to a branch of the said conduit being attached to the top part of the second alternating tank;
- liquid level detecting probe sensor means for detecting a filled condition and an empty condition, disposed in the first alternating tank means for completing a electric circuit whereby signals are delivered to an electrical control apparatus having a relay and an on-off switch for controlling the automatic valves such that a first probe sensor is disposed horizontally in the side of the said tank means at a predetermined level wherein the tank is considered to be filled and a second probe sensor is disposed vertically in the top of the said tank and is of a length that traverses the said tank downward to a predetermined level wherein the tank is considered to be empty and a third probe sensor disposed horizontally in the side of the tank and below the reach of the second probe sensor whereby, when the tank is filled, and the first probe sensor is contacted with liquid, a signal is delivered to the relay to reverse the positions of the said first, second and third automatic valves whereby the first alternating tank is placed into an emptying mode and whereby the first automatic valve is closed to liquid input into the first alternating tank, and the second automatic valve is closed to atmospheric pressure equilibrium with the storage tank and the third automatic valve is opened to high pressure vapor equilibrium input, with all positions being in regards to the first alternating tank, and at the same time, the opposite mode (or emptying position) is applied to the second alternating tank, and the emptying mode signal to the relay is maintained by the second (vertical) probe sensor until the said tank is emptied and the liquid level is lowered below the reach of the second probe sensor whereby the signal is again reversed by the relay and the automatic valves are so reversed and the third, horizontally disposed, probe sensor maintains the signal to the relay to contact the automatic valves to thereby cause the first automatic valve to open to liquid input into the first alternating tank and to open to atmospheric equilibrium between the first alternating tank and the storage tank and to close to high pressure vapor equilibrium input to the said first alternating tank whereby the first alternating tank is filled and the second alternating tank is emptied and the alternating cycle is continued;
- conduit means for interconnecting the lower part of the alternating tanks with the top part of the liquid flow control tank, including check valve means disposed in said conduit means below each of the alternating tanks and above a point where the conduit from each said tank is joined to provide for a single conduit attachment to the top of the said liquid flow control tank;
- conduit means for interconnecting the top part of the liquid flow control tank to the top part of the heat exchanger for high pressure vapor equilibrium communication between the said liquid flow control tank and the heat exchanger;
- conduit means for interconnecting the bottom part of the liquid flow control tank with the bottom part of the heat exchanger to thereby maintain 1iquid equilibrium between the liquid flow control tank and the heat exchanger;
- conduit means for interconnecting the high pressure vapor outlet of the heat exchanger with the pressure driven turbine, the liquid flow control tank and the alternating tanks;
- a probe sensor disposed horizontally in the side of the second alternating tank for detecting a filled level of liquid in the second alternating tank for operating to signal the relay to maintain a filling mode to the second alternating tank when the first alternating tank is empty and the liquid level in the liquid flow control tank is above the desired level and in contact with the probe sensor disposed in the top part of the said tank such that the liquid contact completes a circuit to the on-off valve disposed in the conduit for delivering high pressure vapor equilibrium to the alternating tanks thereby causing the said valve to close and deny pressure to the said tanks until such time as the liquid level in the liquid flow control tank is lowered to a level below the reach of the probe sensor therein and the circuit is broken and the relay is released to continue normal alternating conditions;
- conduit means for interconnecting the storage tank with the source of liquid;
- float valve means for regulating the rate of liquid input from the source of liquid and for establishing and maintaining a desired liquid level in the storage tank such that, when a given volume of liquid is lost by the alternating venting process the float valve means opens to admit replacement liquid from the source of liquid to re-establish the desired liquid level.
- 2. An improved fluid delivering system in accordance with claim 1 wherein the liquid flow control tank means includes a holding tank, for receiving liquid from the alternating tank means and whereby the said liquid is maintained at a predetermined level therein and, for receiving vapor pressure from the heat exchanger, whereby the said vapor is held in the upper part of the said holding tank above the liquid;
- an inlet conduit for receiving said liquid from the alternating tanks disposed in the top part of the liquid flow control tank;
- an inlet conduit for receiving high pressure vapor from the heat exchanger;
- an articulated float valve means disposed in the top part of the liquid flow control tank for operating to restrict liquid input from the liquid inlet when the liquid level has reached a preset high level and for operating to increase liquid input from said inlet when the liquid level is below the preset high level in said holding tank, in direct proportion to the amount of liquid being converted into vapor by the heat exchanger;
- an electrically activated, level sensing high temperature probe sensor means for operating to detect a liquid level being above a desired preset liquid level and to thereby complete an electrical circuit whereby liquid input into the said holding tank is discontinued until the liquid is lowered below the reach of said probe sensor;
- an outlet conduit disposed in the bottom part of the said holding tank for delivering liquid from the said holding tank into the heat exchanger;
- continuous high pressure vapor equilibrium with the heat exchanger, and continuous liquid level equilibrium with the heat exchanger.
- 3. An improved system and method of introducing low pressure fluids into a high pressure heat exchanger wherein the method includes the following steps:
- delivering a fluid in the liquid state into a storage tank wherein atmospheric pressure equilibrium exists;
- delivering the liquid from the storage tank into alternating tanks, under alternating conditions;
- delivering atmospheric pressure equilibrium between the storage tank and the alternating tank being filled;
- providing elevation differential between the storage tank and the alternating tanks such that the liquid in the storage tank can flow into the alternating tanks, under alternating conditions, when the alternating tank being filled is in opened conduit communication with the storage tank wherein one opened conduit provides atmospheric pressure equilibrium between the storage tank and the said tank being filled and a second opened conduit provides liquid access to the lower said tank from the storage tank;
- delivering high pressure vapor equilibrium to the alternating tank being emptied while, at the same time, isolating the said tank from atmospheric pressure equilibrium with the storage tank;
- isolating the emptying alternating tank from liquid communication with the storage tank;
- automatically switching the alternating tanks from a filling mode to an emptying mode such that while one said tank is filling the other said tank is emptying;
- providing elevation differential between the alternating tanks and a lower disposed liquid flow control tank;
- delivering liquid from the filled alternating tank into the lower disposed liquid flow control tank while, at the same time, delivering liquid from the storage tank into the lower disposed emptied alternating tank;
- providing high pressure vapor equilibrium between the liquid flow control tank and the alternating tank that is delivering liquid into the said liquid flow control tank;
- regulating the liquid input from the emptying alternating tank into the liquid flow control tank by means of an articulated float valve disposed in the top part of the said control tank;
- disposing check valves in the delivering conduits between the alternating tanks and the liquid flow control tank such that, when the emptying alternating tank is closed to liquid input into the liquid flow control tank by the float valve disposed therein, the liquid is prevented from entering the other alternating tank by means of the said check valves;
- disposing the liquid flow control tank at such an elevation that the average maintained liquid level therein is equal to the average liquid level desired in the heat exchanger;
- delivering liquid from the liquid flow control tank into the heat exchanger through permanently opened interconnecting conduit at a rate equal to the rate of liquid conversion into vapor within the heat exchanger;
- providing high pressure vapor equilibrium communication between the liquid flow control tank and the heat exchanger through permanently opened interconnecting conduit being attached to the top part of each said tank and exchanger;
- delivering the high pressure vapor produced by the heat exchanger into dispensing conduit for use by the alternating tanks and a pressure driven turbine generator and a vapor condensing means.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 648,980, now abandoned, filed Dec. 18, 1984.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4128123 |
Garriss et al. |
Dec 1978 |
|
4366853 |
Bernier |
Jan 1983 |
|
Foreign Referenced Citations (3)
Number |
Date |
Country |
32247 |
Mar 1978 |
JPX |
14812 |
Feb 1981 |
JPX |
32017 |
Apr 1981 |
JPX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
648980 |
Dec 1984 |
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