The Drawing
FIG. 1 is a schematic showing of a simple individual type unit embodying the invention;
FIG. 2 is a schematic showing of a larger type unit embodying the invention; and
FIG. 3 is a chart showing vapor-pressure curves for several substances.
Detailed Description of the Drawing
The Figure 1 Embodiment
FIG. 1 is a schematic showing of a simple individual type unit embodying the invention. A heat exchanger vapor pressure generator 10 placed in juxtaposition with a suitable low temperature heat source, not shown, is provided for generating vapor pressure from suitable driving fluids having a desired low boiling point, the driving fluids having lower boiling points than the normal 212.degree. F. boiling point of water for the reason that they exhibit satisfactory high vapor pressures at low temperatures and can readily be condensed.
FIG. 3 is a chart showing the vapor pressures that may be obtained from fluids with lower boiling points than that of water. It will be noted that practically the same level of pressure can be had from such fluids at much lower temperatures than with water. Many other fluids having lower boiling points than water are available as, for instance the halogenated hydrocarbons of the paraffine series.
Heat exchanger vapor pressure generator 10 is linked through a line 12 having a valve 14 therein to a combination turbine 16 and expansible chamber type abentropic engine 18 mounted on a common drive shaft 20 which extends longitudinally therethrough. Engine 18 is provided with sufficient jacketing and insulation, not shown, to retain constant temperature therein.
Abentropic engine 18 is an expansible chamber turbine-type engine including rotor blades, not shown, the engine being of modified design so as to operate at low pressures and temperatures and having a working end specially designed to handle low pressure wet vapors. Unlike an ordinary engine, however, which runs on a diminishing pressure gradient, abentropic engine 18 runs at constant pressure and temperature and produces no exhaust vapor, all of the inlet vapor being reduced to liquid condensate by means to be described. The modifications consist of changes of shape to suit changes of vapor volume, installation of insulation and jacketing, not shown, to preserve constant temperature, and installation of a system of drainage ducts, to be described, properly valved to lead off the condensate.
Turbine 16 feeds its spent vapor into the working end of abentropic engine 18 wherein it condenses near its boiling point, yielding its latent energy to assist the turbine in driving an electric generator 21 or the like carried by an extension 20' of drive shaft 20 and extending outwardly from engine 18.
A vacuum chamber 22 disposed at one end of engine 18 is connected by a line 24 to a vacuum pump 26 also connected by a line 28 to turbine 16. Pump 26 sets up a hard vacuum in vacuum chamber 22, the hard vacuum opposing the low pressure of spent turbine steam in abentropic engine 18, causing the turbine rotor thereof, not shown, to move.
Cold condensate is drawn off from turbine 16 and the non-working end of engine 18 via a plurality of drainage lines or ducts 30 having valves 32 therein to a line 34 which connects with an injection pump 36.
A return line 38 leads from injection pump 36 to heat exchanger 10. To prevent the driving fluid from escaping into atmosphere, an insulated safe containment tank or blow-off tank 40 is provided and is connected to return line 38 by an insulated line 42 having an automatic valve 44 therein allowing escape from the system into the tank in cases of emergency blow-off.
An insulated fluid return line 46 connects between tank 40 and line 34 leading to pump 36 and has a valve 48 therein for automatically returning fluid to the system as pressure returns to normal.
It should be explained that boiler blow-off occurs either when the pressure in the boiler gets too high or when the load lessens. Power stations rarely have a blow-off because both load and steam pressure are steady enough for long periods. Herein, a steady temperature of the heat source cannot be guaranteed in all cases. Also, ecologists are demanding safety factors if only for eventualities.
As an additional ecological safety measure, shading means 49 may be provided for shielding vapor pressure generator 10 from excessive heat above the contemplated range in cases where such occasionally occurs.
As indicated above, means are provided for containment and return for blow-off. By providing shutters or shading means or the like, depending on the situation encountered to alleviate sudden bursts of heat on the vapor pressure generator, the need for blow-off can be eliminated. However, the shutters or shading means must be tailored to each situation.
Operation of the Fig. 1 Embodiment
Vapor pressure is generated from a suitable fluid having a desired low boiling point at heat-exchanger vapor pressure generator 10 and the pressurized vapor is fed through line 12 to turbine 16 for expansion for obtaining useful work.
The spent vapor is lead from turbine 16 into abentropic engine 18 wherein vacuum pump 26 and vacuum chamber 22 provide a vacuum on the non-working end against which the spent vapor is forced to do work by virtue of the pressure imbalance, which work extracts energy from the spent vapor causing a proportionate amount of it to condense at its boiling point. Since the vapor pressure and temperature of the boiling condensate are the same as those of the vapor itself, the motion of the engine is continuous.
The resultant condensate is led at its boiling point through lines 30, valves 32 and line 34 to injection pump 36 for recycling.
Remaining uncondensed vapor is removed by vacuum pump 26 and lead through line 28 to a suitable location in turbine 16 for recycling.
The Fig. 2 Embodiment
FIG. 2 is a schematic showing of a larger type unit embodying the invention. A heat exchanger vapor pressure generator 110 placed in juxtaposition with a suitable low temperature heat source, not shown, for generating vapor pressure from a suitable fluid having a desired low boiling point of the type previously described is linked through a line 112 having a valve 114 therein to a combination turbine 116 and abentropic engine 118 of the type described with reference to the embodiment of FIG. 1, and mounted on a common drive shaft 120 which extends longitudinally therethrough.
As with the FIG. 1 embodiment, turbine 116 feeds its spent vapor into the working end of abentropic engine 118 wherein it condenses near its boiling point yielding its latent energy to assist the turbine in driving an electric generator 121 or the like 120' carried by an extension of drive shaft 120 and extending outwardly from engine 118.
A vacuum chamber 122 disposed at one end of engine 118 is connected by a line 124 to a vacuum or cold condenser 126, to be described, for setting up a hard vacuum in vacuum chamber 122, the hard vacuum opposing the low pressure of spent turbine steam in abentropic engine 118 causing the turbine rotor thereof, not shown, to move.
Cold condensate is drawn off from turbine 116 and the non-working end of engine 118 via a plurality of drainage lines or ducts 130 having valves 132 therein to a line 134 which connects with a line 136 leading from a vacuum pump 138 and connected to vacuum or cold condenser 126, line 136 having a valve 137 therein for regulating take-off of fluid from the cold or condenser.
A refrigeration means, generally indicated by 140, is provided for cooling vacuum condenser 126. Cooling is done in two stages, the refrigeration means including a brine bath 142 cooled by coils 144, or the like, as the first stage, the bath in turn, as a second stage, maintaining recycled cold condensate in a tank 146 at a temperature sufficiently above the freezing point to prevent icing of spray nozzles 148 located in vacuum condenser 126.
Condensate passes from tank 146 by a line 150 through a cold condensate circulating pump 152 to the spray nozzles and is recirculated from vacuum or cold condenser 126 back through cold condensate circulating pump 152 to tank 146 by a return line 154 which has a valve 155 therein for regulating take-off of fluid from the vacuum or cold condenser.
A line 156 leads from pump 138 to a cold sump 158 which is well insulated for use with very low temperature boiling point fluids.
A heat exchanger 160 is provided for returning heat to the system, with the line 112 which connects between heat exchange vapor pressure generator 110 and turbine 116 passing therethrough.
A line 162 connecting between one of the coils 144 of refrigeration means 124 passes through a pump 164 to one end of heat exchanger 160. A line 166 which connects between the other end of the heat exchanger and the other coil 144 has a pressure relief valve 165 therein.
An injection pump 167 is disposed in a line 168 connecting between cold sump 158 and heat exchanger vapor pressure generator 110.
As with the FIG. 1 embodiment, to prevent the driving fluid from escaping into atmosphere, an insulated safe containment tank or blow-off tank 170 is provided and is connected to line 168 by an insulated line 172 having an automatic valve 174 therein allowing escape from the system into the tank in cases of emergency blow-off.
An insulated fluid return line 176 connects between tank 170 and line 168 leading to pump 167 and has a valve 178 therein for automatically returning fluid to the system as pressure returns to normal.
Also, as with the FIG. 1 embodiment, as an additional ecological safety measure, shading means 179 may be provided for shielding vapor pressure generator 110 from excessive heat above the contemplated range in cases where such occasionally occurs.
Operation of the Fig. 2 Embodiment
The FIG. 2 embodiment operates in the same manner as the FIG. 1 embodiment, except that the remaining uncondensed vapor in engine 118 is removed via line 122 and 136 to cold condenser 126 where it is cooled by a controlled spray of condensate from nozzles 148 chilled to a desired low temperature by refrigeration means 140.
The overage of cold condensate is lead through heat exchanger 160 which is attached to the hot coil 144 of the refrigeration means.