EP3507494A1 - A apparatus for compressing gas using heat as energy source - Google Patents
A apparatus for compressing gas using heat as energy sourceInfo
- Publication number
- EP3507494A1 EP3507494A1 EP17847091.0A EP17847091A EP3507494A1 EP 3507494 A1 EP3507494 A1 EP 3507494A1 EP 17847091 A EP17847091 A EP 17847091A EP 3507494 A1 EP3507494 A1 EP 3507494A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- gas
- pressure
- chamber
- compressor
- chambers
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B41/00—Pumping installations or systems specially adapted for elastic fluids
- F04B41/06—Combinations of two or more pumps
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/58—Cooling; Heating; Diminishing heat transfer
- F04D29/582—Cooling; Heating; Diminishing heat transfer specially adapted for elastic fluid pumps
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B39/00—Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B49/00—Control, e.g. of pump delivery, or pump pressure of, or safety measures for, machines, pumps, or pumping installations, not otherwise provided for, or of interest apart from, groups F04B1/00 - F04B47/00
- F04B49/04—Regulating by means of floats
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B49/00—Control, e.g. of pump delivery, or pump pressure of, or safety measures for, machines, pumps, or pumping installations, not otherwise provided for, or of interest apart from, groups F04B1/00 - F04B47/00
- F04B49/08—Regulating by delivery pressure
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D27/00—Control, e.g. regulation, of pumps, pumping installations or pumping systems specially adapted for elastic fluids
- F04D27/006—Control, e.g. regulation, of pumps, pumping installations or pumping systems specially adapted for elastic fluids by influencing fluid temperatures
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04D—NON-POSITIVE-DISPLACEMENT PUMPS
- F04D29/00—Details, component parts, or accessories
- F04D29/26—Rotors specially for elastic fluids
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24D—DOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
- F24D11/00—Central heating systems using heat accumulated in storage masses
- F24D11/02—Central heating systems using heat accumulated in storage masses using heat pumps
- F24D11/0257—Central heating systems using heat accumulated in storage masses using heat pumps air heating system
- F24D11/0278—Central heating systems using heat accumulated in storage masses using heat pumps air heating system with recuperation of waste energy
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B27/00—Machines, plants or systems, using particular sources of energy
- F25B27/02—Machines, plants or systems, using particular sources of energy using waste heat, e.g. from internal-combustion engines
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B30/00—Heat pumps
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B30/00—Heat pumps
- F25B30/06—Heat pumps characterised by the source of low potential heat
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B2205/00—Fluid parameters
- F04B2205/10—Inlet temperature
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B2205/00—Fluid parameters
- F04B2205/11—Outlet temperature
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B37/00—Pumps having pertinent characteristics not provided for in, or of interest apart from, groups F04B25/00 - F04B35/00
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F04—POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
- F04B—POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
- F04B39/00—Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
- F04B39/06—Cooling; Heating; Prevention of freezing
Definitions
- the present invention relates to the technique of refrigerant compressors, and more particularly, to refrigerant compressors without moving parts, using thermal energy as power source for the compression.
- a heat pump When using a heat pump, it may be of type geothermal/water,
- the refrigerant condenses at a temperature ranging between 30 ° and 60 °. Before and after the condensation has occurred, the refrigerant has often only slightly lower temperature, but it has changed its physical state. If you for example have an evaporation temperature of 0 ° and a condensation temperature of 50°, this means the most optimal compression would result in a gas having exactly 50 ° and the saturation pressure corresponding to 50°. Temperatures above this corresponds to unnecessary work. If one then lets the gas condense to liquid, it might have a temp of about 49°. If one assumes constant heat capacity over the range 0 to 50, 49/50 of the work remains as heat.
- one preferrerd embodiment utilises a cooled unidirectional flow as the compressor part, whereby the hot input gas puts pressure on the cold output gas, thereby compressing said output gas.
- a number of inventions cool down the refrigerant before the compressor to decrease the pressure of the refrigerant or possibly to increase the density and thus reduce the energy consumption of the compressor.
- a the heat exchanger unit comprising a heating part, heating up cold low pressure gas while keeping the density sufficiently high, superseeded by an ejection part ejecting high pressure gas into said compressor part, superseeded by an cooling part cooling down non ejected gas till it has low enough pressure to be refilled by an evaporator for low temperature gas, by wich means you can keep a fairly constant gas flow entering the compressor part, while at the same time beeing able to inject gas into said heat exchanger unit from a source of cold low pressure gas.
- Part of the solution is therefore an advanced heat exchager unit for gas.
- Another part of the solution of the previously described problem is to, when using the ejection part, eject gas in several steps, ejecting gas of decrementally lower and lower pressure. Instead of ejecting only the gas of the highest pressure, gas is ejected into several flows of diffetent pressures, thereby you can still make use of superheated gas with less than maximal pressure, while still having one destination with very high pressure. Furthermore larger amounts of the heated gas are ejected, whereby less amounts have to be cooled down and reheated.
- An improvement of the solution above in sections [014] to [016] is to inject gas from the different output flows in the reversed order compared to how it was injected, into a destination volume with an originally low pressure, meaning that gas from the flow with the lowest pressure out of said flows of diffetent pressures, is first injected into the destination volume, then the one with slightly higher pressure, then the one with slightly more and so on, whereby the pressure from the ejection part is more effectivelly transferred into a destination volume.
- Another benefit of doing this, is that compressing a destination volume, with incrementally increasing pressure is more energy efficient.
- the compressor part comprises an unidirectional flow.
- the unidirectional flow is cooled down in the flow direction, while hot gas at the same time applies pressure on the cold gas, whereby the density increases in the cooling direction.
- the invention proposes an apparatus separated in two parts, a compressor part wherein hot gas applies pressure on cold gas and a second part comprising a heat exchanger unit for gas wherein gas is heated to a high pressure, whereafter it is ejected into said compressor part, whereafter thermal energy from non ejected gas is recycled as described.
- the heat exchanger unit comprises an apparatus that heats up cold gas while keeping it's density fairly stable wherein gas is heated to a high pressure, whereafter it is ejected into said compressor part, whereafter thermal energy from non ejected gas is recycled while cooling down said non ejected gas, whereby a volume cooled non ejected gas is either decreased in pressure, whereby new external gas with substantially the same temperature but with higher density can be absorbed into said volume. Or said cooled non ejected gas is decreased in volume whereby new external gas with substantially the same temperature and density can be injected in parallell to said volume. In this way hot gas can be constantly injected to said compressor part.
- the heat exchanger unit comprises an apparatus from another patent PCT000033, referenced in this patent, as the heat exchanger unit for gas.
- the heat exchanger unit comprises an apparatus more thoroughly decribed in this patent.
- the compressor part and the heat exchanger unit in combination, create a compressor designated "cooling compressor", that receive cold gas of low pressure an eject slightly hotter gas of slightly higher pressure.
- the output from one cooling compressor can be injected into a second cooling compressor.
- the cooling compressor can advantageously be implemented in several steps to become a compressor that together can perform a large compression. Since it is suggested that thermal energy should be recycled as well as possible, both in the first and second part, recycled energy from one cooling compressors can be used as energy for another cooling compressor, and thereby you can get a fairly large compression from a fairly small energy.
- Fig l Embodiment stand alone cooling compressor with 2 containers.
- the present invention disclosed herein is "A compressor using heat as energy source". While the apparatus may be used as a stand alone compressor, the main focus of the present invention is on lowering the work performed by regular compressors.
- the present invention seeks to provide a solution to this problem.
- the solution presented by the present invention uses superheated high pressure hot gas to put pressure on cold gas. This can be accomplished using a double acting compressor, having cold gas on one side and byignedly injecting hot gas on the other, compressing the cold gas.
- this is accomplished through unidirectional flow, cooled down in the flow direction, while at the same time preventing mixing between hot and cold gas performing inductive heat exchange within the flow, and while keeping the pressure substantially constant.
- One benefit of this solution compared to the one using a double acting compressor, is the simplicity, you get a constant flow without having to empty an fill said compressor.
- Another benefit is the, the energy efficiance, you can easilly cool the unidirectional flow using counterflow heat exchange, whereby you can recycle a lot of the energy, at a high temperature, while compressing the gas through unidirectional flow, to be used for heating up new gas.
- the present invention comprises a gradational heat transfer element 1 comprising a temperature gradient unidirectional flow following the gradational heat transfer element 1 between a cold end 10 and a hot end 11 of the gradational heat transfer element 1. It should be noted that the present invention may comprise more than one gradational heat transfer element in various embodiments and conFigurations.
- the gradational heat transfer element, (cooling compressor) is a singular apparatus.
- the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the condenserer and the output of the regular compressor, the regular compressor being configured to reach a certain output pressure, created by both increased density and the gas being superheated, in other words not an output density, whereafter the cooling compressor converts extra pressure created by gas being superheated into extra pressure created by gas having higher density.
- the gradational heat transfer element is preceded by an Apparatus for Heating Gas (AFHG).
- AFHG has a heating part, the heating parts objective is to heat up the gas till it gets a notably higher pressure than the input gas, in other words while trying to keep the density fairly stable.
- the heating part is an ejection part, the objective of the ejection part is to, eject said, heated gas of high pressure, into said "cooling compressor”.
- the objective of the cooling part is to, after the gas ejection, cool down non ejected gas, that still has high temperature to a low temperature, since this solves the problem of how to add new gas of low pressure into AFHG, more thoroughly described in the appendix.
- the heating part heats up the cold gas, using other warm refrigerant/s, in an energy efficient way, meaning that the gas gets as close a temperature to the other warm refrigerant maximum temperature as possible, while steeling as little energy as possible from the other warm refrigerant/s, also while keeping the density of the heated gas as high as possible.
- the cooling part cools down subparts of the heated gas within the AFHG, after other subparts of the heated gas have got ejected into the cooling compressor, using other colder refrigerant/s, in an energy efficient way, meaning that the other colder refrigerant/s getting as close a temperature to the warm gas maximum temperature as possible, while steeling as little energy as possible from the the warm gas, getting as low output pressure of the cooled gas as possible.
- the preceding cooling part having cooled down said returned gas, to either cool low densed volumes, with lower pressure than the external gas, that will be pressure equalized by the incoming external gas, or it will be comprised during the cooling into a smaller returning volume, whereby the external gas can be added to a small volume parallell to said returning volume.
- a combination of said two solutions is also possible.
- an array of apparatuses according to the description in section [037] are connected in series, characterized in that the output from each arbitrary cooling compressor, except for the last one, is connected to the input part of a subsequent apparatus according to the description in section [028], whereby the compression ratio of each apparatus are multiplied with each other.
- an ejection- injection part comprising at least one source volume and at least one destination volume, characterized in that the source volume ejects gas in steps, via an array of connections, to destinations of decrementaly lower pressure, thereby decrementaly lowering the source volumes pressure, also characterized in that the destination volume injects gas in steps, via an array of connections, from sources of incrementaly higher pressure, thereby incrementaly increasing the destination volumes pressure.
- the source volume ejects gas in steps, via an array of connections, to destinations of decrementaly lower pressure, thereby decrementaly lowering the source volumes pressure
- the destination volume injects gas in steps, via an array of connections, from sources of incrementaly higher pressure, thereby incrementaly increasing the destination volumes pressure.
- the solution from section [042] is accomplished using a series of source volumes and a series of destination volumes, characterized in that each source volumes connections are conFigd to periodically connect in sequential order, ordered by destination pressure from highest to lowest, to each of the destination volumes of the series of destination volumes. Also featuredized in that each destination volumes connections are conFigd to periodically connect in sequential order, ordered by source volumes pressure from lowest to highest, to each of the source volumes of the series of source volumes.
- the solution from section [042] is accomplished by an apparatus comprising a source volume and a destination volume and a series of intermediate volumes of pressures rangin between the source volumes start pressure and the destination volumes start pressure, being substantially stable in those pressures, characterized in that the source volume is conFigd to periodically connect to each intermediate volume, sequentialy in order by intermediate volume pressure from highest to lowest. Also featuredized in that the destination volume is conFigd to periodically connect to each intermediate volume, sequentialy in order by intermediate volume pressure from lowest to highest.
- cooling compressor is a singular apparatus.
- the principle of the cooling compressor is as following. You have two gas volumes, a cooler destination quantity (2), and a hotter source (1). The hot is superheated, temperature- warm (Tw), so hot that it produces notably higher pressure than gas with the same density and saturated temperature.
- Tw temperature- warm
- the hypothermic flow (4) comprising one or more heat exchangers (3) and possibly including rectifier. Rectifier may not be necessary but prevents cold gas from going backwards and be warmed up again and/or mixed with warmer gas. If you can prevent backward flow in other ways, this is acceptable. Important is that the gas flow (4) should flow freely in the direction towards the colder parts with very little or no pressure drop, but that gas, as far as possible, be prevented from flowing backwards. If the gas is cooled down with a liquid refrigerant, larger volume liquid per volume of gas should be found in the colder parts because the gas has higher density there. These steps will gradually cool down the gas to a temperature Tcold (Tc). If cooling is performed, with the above-described technique, with one to many steps of heat exchangers (3), one can hypothetically regain most of the dissipated energy, from cooling, to be used at a later stage.
- Tcold Tcold
- the gas has cooled down close to the saturation temperature (Ts).
- Ts saturation temperature
- the cold tank have at least as much pressure as warm (hypothetically, the due to rectifiers cold gas might at some point even have higher pressure).
- Each pressure reduction, due to cooling, in one step will be pressure equalized by the higher pressure in the previous step, which in turn will be pressure equalized by its previous step etc.
- Fig 20 is an embodiments, where the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cooling compressor) is positioned in a heat pump between the input of the gradational heat transfer element, (cool
- condenserer and the output of the regular compressor A unidirectional flow, according to Compressor part, which is placed after a compressor (5), possibly in combination with a device for maintaining preferred pressure (1).
- a device for maintaining preferred pressure (1) for example it might comprise a piston chamber with a spring that creates an even pressure, or alternatively a large Chamber that due to it's size, maintains relatively even pressure.
- the gas When the gas is compressed, it is almost inevitable that the gas becomes excessively heated, thus increasing the pressure more than necessary and thus increases the work which the compressor must perform.
- a back-pressure device that giving the pressure, corresponding of as a gas with the right compression ratio and saturation temperature, the compressor will not be required to work with pressure higher than the optimum pressure.
- the gas of the compressor's output (1) will, partly due to increased density but also due to excessive increase in temperature, have high pressure, and the Compressor part will transform this hot high pressure gas with lower density to a slightly cooler gas with the same pressure but higher density.
- the compressor don't really need to compress to the expected compression ratio. In theory only compression so that the pressure (in combination with unnecessary temperature) corresponds to the pressure of the expected
- compression ratio is needed, after which the device will transform the hot gas to the gas with higher density.
- the problem with overheating during compression of the gas is lolved using cooling during compression. This is possibly more efficient from the energy point of view but to just place a device on the compressor's output (1) should be easier to apply.
- Fig 2i corresponds to a non restrictive solution with a refrigeration compressor:
- the dot-dashed line represents the work of a compressor without cooling or refrigeration compressor.
- the dotted line corresponds to a non restrictive solution with a refrigeration compressor.
- the solid line represents the work of a compressor with perfect continuous cooling which allows gas to keep the saturation temperature for every given pressure.
- the first 2 graphs follows until they reach optimal pressure (approx. 2.2 in the graph), then the device with cooling compression won't increase more, because that has a device that gives a maximum high pressure of 2.2.
- Devices without either cooling or cooling compression must, however, continue to compress the gas until it receives the correct density why it also will increase in temp and pressure, and the work becomes larger. Appliance with refrigeration compressor will instead, after reached optimal pressure perform a steady work.
- the apparatus comprises a compressor part (42) and an AFHG (51).
- AFHG apparatus for heating gas
- Fig 7 is an exploded view of said AFHG: a cavity (1) with a rotating part (2) that is to be sealingly covered by a lid (3).
- Fig 8 is an exploded view of said rotating part (2) of said AFHG.
- the rotating part (2) is separating the sealed chamber created by the cavity (1) and the lid (3), into several mutualy sealed wedge chaped subvolumes (wcsv), while at the same time moving the subvolumes to pass by chamber walls, of different temperature.
- the rotating part will stay, in stages, so that all wcsv are separated from each other.
- Heat exchange is described in this embodiment as a common static cylindrical cavity divided by various circulating (and gas insulating and heat- insulating) walls, walls described as striking a pointer on the images. These circulating walls insulate the cylindrical cavity in a number of wedges, which have external walls of different temperature for each slice temporary volume.
- the circular walls advances the gas in a clockwise motion, preferably with a notch so that the cake pieces do not fall between the two temperatures for a longer while, in such a way, as well as with the temperate walls placed so, that the gas passes through the hotter and hotter walls until they reach a maximum temperature, then releases its overpressure. Thereafter they pass colder and colder walls and give off their excess energy.
- walls are temperated.
- every wcsv created by the various elements is completely enclosed by walls with the right temperature , except for the rotating part (2), i.e no other part of the AFHG will be both heated and cooled.
- the rotating part (2) might be heated and cooled by the gas or the surrounding walls, and therefore should be as light as possible, be of an insulating material as possible, in order not to steal energy. It must also be sealingly and slidingly, connected to the surrounding walls, so that the gas does not move to a neighboring chamber.
- the lid (3) can, also conduct heat to the containers. It is the task of heat exchanger to deliver right temperature in the correct position.
- each specific grey section has its specific temperature and it is the same in both the bottom and the lid. I.e. the temperature is higher the closer to the top in the Fig. In the Fig you can see that the gas inlet through the lid, of course this is not necessary, it can come in from the side or the bottom also.
- Refrigerant reservoir (42,50) has a controlled feed of refrigerants and hot and cold should not be mixed. How this is controlled is omitted from the solution. From each temperature range in the reservoir goes different heating pipes (41,45), described by lines in the image, to the various separate temperature levels, highlighted with grey areas in the Fig (43,44). Gray means heat conduction to/from their separate temperature in the container. It may well mean that the liquid is directly against heat leader's back. White in between stands for isolation. [058] The circle in the middle is a cavity, all grey triangles (9-16 and 25-32) within represent heat conducting walls to a fixed area of the container. Each triangle has i.e. a fixed temperature.
- the small crossed-circles (17-24), at the top right represent outputs for gas that will form in the circular cavity.
- the gas, which lies in the various wedges (1- 32), formed by the bottom part (), the rotating part (2) and the top element should be moved as the clock in erosion, and therefore the warmed up in the left part (9-16) of the large circle.
- the upper Chamber (16) is warmer and then emptied, step by step, into the outputs, in chambers (17-24). Subsequently, the cooled gas in chambers 25-32.
- the gas enters the AFHG, possibly from a previous step, via several parallel flows of varying pressure (il-i8).
- the left input (il) contain the highest pressure with the pressure decreasing the further right you go, i.e. (i8) has the lowest pressure, and in between there will be different pressures, wariying between the lowest and the highest. They're all injected into a separate chambers created by the 3 parts. Each gas chamber will pass the position 1-8 and it will then be compressed via the inputs i8-il, emitting higher and higher pressures. Every time, before the parallel flows inject gas to the AFHG, the rotating part moves one step.
- Step 9 to 16 consists only in heating.
- the throttle is moved between the steps, in this range, it will be heated by the hotter and hotter walls. In this way, it has achieved something almoast equivalent to counter-flow heat exchange. Just as it leaves position 16, it has passed the walls with the maximum temperature, so by then it is at it's maximum pressure.
- Step 25 to 32 consists only in cooling.
- the throttle is moved between the steps, in this range, it will be emit heat to the colder and colder walls. In this way, it has achieved something almoast equivalent to counter-flow heat exchange, giving away energy to a refrigerant at a high temperature.
- the apparatus comprises at least two cooling compressors connected in series.
- the compression ratio of the whole apparatus can be the product each cooling compressors ratio multiplied with each other. This opens for much greater ratios.
- recycled refrigerant, less than maximally heated, from one unit can be reused in another unit having a lower max temperature, wich open for a better use of the thermal energy.
- the embodiment utilises counter- flow pressure exchange.
- Fig 2 disconnected chambers of same size, but one with greater density, say 1 and 2. Ignoring the temperature, assume they have a pressure relative each other according to Fig 9. After connection, they will have a pressure similar to Fig 10 if cooling is neglected. This is the same kind of problem we face when a volume gas is superheated to a pressure, that is to be delivered to a destination.
- a dispenser chamber when it's highest pressure, it is connected to an intermediate channel with substantially constant pressure, slightly lower and is discharged to said channel, whereafter said chamber is sequentially connected to passage channels in the order from highest decreasingly down to lowest pressure, preferbly allways to an passage channels with only slightly lower pressure.
- the receiver chamber when it has it's lowest pressure, is connected to an intermediate channel, with substantially constant pressure, slightly higher than said receiver chamber, whereafter said channel is discharged to receiver chamber, and whereafter said chamber is sequentially connected to an intermediate channels in the order from lowest, increasingly up to highest pressure, preferbly allways to an passage channels with only slightly higher pressure.
- the extra features in the pump compared to patent PCT000031 comprises an alternative solution for connecting the output chamber of a container to an array of openings is illustrated in Fig 23, wherein the output chamber has a hole (601) in the top element immediately to the right of the pistonwall (251) in the figure plane.
- the top element is sealingly and slidingly covered by a, static non moving, lid comprising an array openings (603).
- Said hole (601) is sealingly connected to a subset of said array openings (603).
- the array openings (603) having a suitable shape so that it follows the movement of the hole (601), which in this case means a circular shape, thereby periodically connecting output chamber to a subset, possibly one opening (604), of said array openings, being further connected to other destinations or sources, possibly via rectifiers.
- the hole is connected to sources in the lower half of the array circle and therefore the connections have rectifiers preventing ejections, and the upper half of the array circle have rectifiers preventing injections since it is assumed to be coupled to destinations.
- the preferred embodiment for patent PCT000033 can be described referencing Fig 22, where in the extra lid is transparent only showing the array openings (603) and the top elements lid only showing the hole (601) and piston walls (251). More important, observe that the input container, comprises several sub chambers, with separate inputs but with their outputs connected to the same input of the heat exchanger. The benefits of that will be apparent when the recycling process is described below.
- This chamber (440) is then connected to a cooling device (420). There is not much reason to make the cooling device as advanced as the heating device (200), even though it can be, so it's shown as regular counter flow heat exchanger in the drawing.
- the heat emitted by the gas in the cooling device is preferably used to heat up gas in the heating device (200).
- the returning gas should be directed to a smaller volume, than the summed volume of the output container, in this case somewhere around half the volume.
- Six sub volumes is actually quite a small amount but it's only for descriptive purposes. In the case of half the amount being recycled, three out of six sub volumes should be used. The other three sub volumes should be fed by new external gas of about the same pressure and temperature as the cooled returning gas.
- connection devices (439) are simply exemplary coupling since the coupling devices in this embodiment are dynamic.
- the Other Heating Unit recycles the energy from the non-ejected portion of the gas in each cycle.
- the Other Heating Unit can be used to both cool and heat up gas, in an infinite number of steps since it uses a special kind of counterflow heating for gas, in this embodiment. It is very dynamic in that it has a coupling device 439 at the output of the heating part 200, adjustable for different temperature spans and choice of output pressures.
- the coupling device can be configured to, recycle a larger amount of the outputs by using the coupling device 439, to return gas on higher pressure via return connections 432. Due to an asychronous discharge from the heating part 200, there is a large chamber 440 after the coupling device, not to get pressure dips.
- the cooling device 420 cools the non-ejected portion, under pressure, so the output of the cooling device 420, is compressed and therefore, the gas returning into the input part 430, wich is also a coupling device, will have shrunk and is therefore led into a separate flow, parallell to the external input 612. From the input part 430, the external inflow aswell as the recycled inflow are led back into the heating part.
- the left pump 205, and the right pump 206 has several horisonatlly placed chambers, ex 437. This can be valuable in some circumstances of compression where destination volumes are smaller than source volumes, but in the following example it is omitted for simplisity reasons.
- the pumps move the gas forward through the heat exchanger 400, and this is performed by a scrolling movement by a number of pistons connected to move sychronously.
- a hole 601 In the top of every chamber, in the output container, can also be placed in the intput container, there is a hole 601, connecting the chamber with a subset of channel of a large array of channels (520,521,522), depending on the holes 601 position during the scrolling movement.
- the array of channels beeing connectable or disconnectable with other destinations, via the coupling device.
- FIG. 21 shows a first process step of the preferred embodiment where the piston 570 (576 in the output container) are in their leftmost position beside the left sidewall 537 (557 in the output container). Wich applies to both units.
- the opening 533 is now between the connections 502 and 510, and 534 is between the connections 503 and 509; thus, there is no connection in or out of the cavity.
- the frame-bottom blocks the connections 502, 510, 503 and 509.
- the piston 570 blocks the left-hand outlet openings 502 and 510. Wich applies to both units.
- the opening 543 is now between 515 and 514, and 544 is not connected to 517 or 519; i.e. the frame-bottom blocks the connections 515, 514, 517 or 519. Furthermore, the piston 576 blocks the left-hand outlet openings 515 and 514. [088] In this position, the hole 601 will not connect the output chamber of the input container with an array of openings (520, 521, 522).
- the hole 601 will be connected, to an array of cooling compressors, via said array of openings, sequentally coupling the output chamber of the output container (206) to a subset of said array of cooling compressors (599), in descending order by the pressure of the cooling compressors. I.e. it will start connecting to cooling compressors with high pressures, only slightly less than the intput chamber of the output container (206). Thereby decreasing the pressure in said output chamber from a the units maximum pressure gradually down to a minimum pressure wich in this example represents the input (612) pressure.
- the cooling compressors (599) having means for maintaining steady pressure even if the injections and ejections to said cooling compressors are slightly asychronous. This applies to both units.
- Fig 25 shows a second process step of the preferred embodiment where the piston 590 traveled to the right from its leftmost position (beside the left sidewall 580) as well as moved slightly up from the previous position. Wich applies to both units, and the compressor.
- the frame-bottom blocks the two lower
- the estimated relative pressure, compared to the apparatus input (612), of the ouput chamber(1434) of the first input container(1205) could be 1,33
- the relative start pressure of the ouput chamber(1434) of the second input container(1205) could be 2,66
- the relative start pressure of the ouput chamber(3434) of the destination compressor (3000) could be 5,3.
- the hole 601 connects the input container with an array of openings (520, 521, 522), leading, to an array of cooling compressors, sequentally coupling the output chamber of the output container (206) to a subset of said array of cooling compressors (599), in descending order by the pressure of the cooling compressors.
- an array of cooling compressors sequentally coupling the output chamber of the output container (206) to a subset of said array of cooling compressors (599), in descending order by the pressure of the cooling compressors.
- the cooling compressors having the means for maintaining steady pressure even if the injections and ejections to said cooling compressors are slightly asychronous. This applies to both units.
- All output-arrays (520,521 and 522) of this embodiment are connected via rectifiers (524), so the passage (577) and said opening array (548) can be so wide as to cover several outlets at the time without risking a destination volume of high pressure ejecting gas into a destination volume of low pressure. This improves the speed in which the pressure can be lowered in the output chamber.
- Fig 26 shows a third process step of the preferred embodiment where the piston 570 (576 in the output container) have moved further to the right and up to its top position. This applies to both units.
- Fig 27 shows a forth process step of the preferred embodiment where the pistons 570 (576 in the output container) have moved further to the right and slightly down from its top position. This applies to both units.
- the pressure of the output chamber of the input container should be about the same as the heat exchanger, and since gas can be moved into the heat exchanger, the pressure will stay the same in all of said ouput chambers (434) of the input container(205), as it was in the last process step.
- Fig 29 shows a sixth process step of the preferred embodiment where the pistons 570 (and 576 in the output container) are in a central location between the right-hand and left-hand side walls, but here in its lowest position.
- the frame-bottom is still blocking the upper connections (502, 503) while the two lower connections ( 10,509) are exposed by the openings 533 and 534 respectively. This will allow the fluid to pass from the piston wall left side to the right-hand via the internal cross-connection 506. Therefore any pressure increase will be available to the whole container.
- the frame-bottom is still blocking the upper connections (517,515) while the two lower connections (514,519) are exposed by the openings 543 and 544 respectively. This will allow the fluid to pass from the piston wall left side to the right-hand via the internal cross-connection 523.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Compressor (AREA)
- Applications Or Details Of Rotary Compressors (AREA)
- Compressors, Vaccum Pumps And Other Relevant Systems (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201662382301P | 2016-09-01 | 2016-09-01 | |
| PCT/SE2017/000035 WO2018044218A1 (en) | 2016-09-01 | 2017-09-01 | A apparatus for compressing gas using heat as energy source |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3507494A1 true EP3507494A1 (en) | 2019-07-10 |
| EP3507494A4 EP3507494A4 (en) | 2020-05-13 |
Family
ID=61301184
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP17847091.0A Withdrawn EP3507494A4 (en) | 2016-09-01 | 2017-09-01 | DEVICE FOR COMPRESSING GAS USING HEAT AS AN ENERGY SOURCE |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20190285089A1 (en) |
| EP (1) | EP3507494A4 (en) |
| CN (1) | CN110088477B (en) |
| WO (1) | WO2018044218A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20220235988A1 (en) * | 2017-09-01 | 2022-07-28 | Petrus Lars Norlin | Systems and Methods for Compressing Gas Using Heat as Energy Source |
Family Cites Families (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB451062A (en) * | 1934-04-07 | 1936-07-29 | Ivan Auguste Effront | Improvements in processes and apparatus for the periodical or continuous manufacture of fermentation organism, such as yeast, or of other fermentation products |
| US3349996A (en) | 1966-02-24 | 1967-10-31 | Wilson Forbes | Compressor and method |
| SU553414A2 (en) | 1975-11-03 | 1977-04-05 | Предприятие П/Я А-1665 | The method of obtaining cold |
| GB2142331A (en) * | 1983-06-29 | 1985-01-16 | Toyo Engineering Corp | A process for producing methanol |
| NL9401700A (en) | 1994-10-14 | 1996-05-01 | Albert Bakker | Hot gas engine and / / compressor unit. |
| NO323437B1 (en) * | 2004-08-30 | 2007-05-07 | Terje Engervik | Air pre-treatment plant |
| WO2008144561A1 (en) * | 2007-05-16 | 2008-11-27 | Garvey James F | Decontamination systems and methods of use thereof |
| CA2710280A1 (en) * | 2007-12-21 | 2009-07-09 | Green Partners Technology Holdings Gmbh | Gas turbine systems and methods employing a vaporizable liquid delivery device |
| JP5747968B2 (en) | 2013-10-07 | 2015-07-15 | ダイキン工業株式会社 | Heat recovery type refrigeration system |
| CN104315750B (en) * | 2014-10-27 | 2016-07-27 | 势加透博(北京)科技有限公司 | The system and method for cooling gas compressor inlet gas |
-
2017
- 2017-09-01 CN CN201780067753.6A patent/CN110088477B/en active Active
- 2017-09-01 WO PCT/SE2017/000035 patent/WO2018044218A1/en not_active Ceased
- 2017-09-01 EP EP17847091.0A patent/EP3507494A4/en not_active Withdrawn
- 2017-09-01 US US16/327,848 patent/US20190285089A1/en not_active Abandoned
Also Published As
| Publication number | Publication date |
|---|---|
| CN110088477A (en) | 2019-08-02 |
| EP3507494A4 (en) | 2020-05-13 |
| US20190285089A1 (en) | 2019-09-19 |
| CN110088477B (en) | 2021-09-03 |
| WO2018044218A1 (en) | 2018-03-08 |
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