[0001] The present invention concerns an energy conversion method and system and in particular
an energy conversion method and system which are based on a Clausius-Rankine cycle
and more particular on an organic Rankine cycle.
[0002] Clausius-Rankine cycle processes and in particular organic Rankine cycle (ORC) processes
are inter alia used in connection with heat recovery from low-temperature heat sources
and in particular for generating work from such sources.
[0003] Because of its physical nature, conventional ORC processes based on polytropic expansion
with extraction of work end up in a superheated vapor state of the underlying processing
and/or working medium. Consequently, the process of condensing the expanded and superheated
vapor of the processing medium requires for the desuperheating process a comparable
large area for cooling the superheated vapor phase of the processing medium. These
requirements yield a comparable large design or system size of the underlying condenser.
[0004] It is an object underlying the present invention to provide an energy conversion
method and system which are capable of converting energy more effectively and of extracting
work with a reduced design size of the underlying means.
[0005] The object is achieved by an energy conversion method according to independent claim
1 and by an energy conversion system according to independent claim 6. Preferred embodiments
are defined in the respective dependent claims.
[0006] According to a first aspect of the present invention an energy conversion method
is provided which is based on a Clausius-Rankine cycle and in particular on an organic
Rankine cycle.
[0007] The energy conversion method proposed by the present invention comprises steps of
- (i) providing a processing and/or working medium, in particular a fluid, liquid or
vapor, carrying heat and/or under high pressure and temperature with increased energy
content,
- (ii) expanding the processing and/or working medium in order to generate and extract
work, thereby transferring - at least in part - the processing and/or working medium
into a vapor state and in particular into a superheated vapor state, and
- (iii) condensing - at least in part - the expanded processing and/or working medium
in said vapor state, thereby cooling and transferring the processing and/or working
medium into a fluid state,
- (iv) wherein according to the present invention after expanding and before and/or
during condensing processing and/or working medium in a non-vapor state and/or in
a cooled state is continuously introduced into the expanded processing and/or working
medium in said vapor state to be condensed, thereby desuperheating the expanded processing
and/or working medium in said vapor state.
[0008] It is therefore a key aspect of the present invention to perform desuperheating of
the expanded processing and/or working medium in the superheated state by continuously
supplying the processing and/or working medium in a non-vapor state and/or in a cooled
state. By these measures means for conventional desuperheating can be reduced or even
avoided, thereby reducing the size and costs of the heat exchange processes and means.
[0009] In the following, the technical terms processing medium and working medium are used
as synonyms in the sense of the present invention.
[0010] According to a preferred embodiment of the energy conversion method said step of
continuously introducing said processing medium in said non-vapor state and/or in
said cooled state is performed by at least one of spraying and injecting and/or by
using said processing medium in said non-vapor state and/or in said cooled state in
at least one form of a liquid state, a mist, a state of a dispersed fluid and a state
with a temperature below the temperature of the expanded processing medium in said
vapor state. By these measures it is possible to achieve the desired increase of efficiency
without increasing significantly the complexity of the processes and the equipment.
[0011] The key idea of the present invention and its benefits can be employed with a variety
of processing media, including pure media and their mixtures.
[0012] In an advantageous embodiment of the method according to the present invention processing
medium is a heat exchange medium, a dry or arid medium, a wet medium, an isentropic
medium, pure fluids and/or mixtures thereof and/or comprises an organic compound or
a plurality thereof.
[0013] The usage of wet medium as a processing or working medium might be advantageous only
in connection with extreme superheating of the processing or working medium.
[0014] A particular simple and reliable processing scheme can be achieved if according to
a preferred improvement of the method said processing medium in said non-vapor state
and/or in said cooled state is provided by feeding back condensed processing medium
from a downstream side of the condensing step, in particular from an exit of the condensing
step.
[0015] It is of particular advantage if according to a further development of the inventive
method said step of providing the processing medium carrying heat comprises at least
one of the steps of preheating the processing medium and - in particular consecutively
- evaporating the processing medium in order to form a vapor state thereof, in particular
by using an external heat source. Because of the increased degree of efficiency, this
allows the usage and evaluation of waste heat or of heat from the conversion of e.g.
biomass, solar energy or any other source of heat from a low temperature source.
[0016] According to a further aspect of the present invention an energy conversion system
is provided, which is configured to perform an energy conversion method based on a
Clausius-Rankine cycle and in particular on an organic Rankine cycle and/or based
on a method according to the present invention.
[0017] The system according to the present invention comprises means configured to provide
a processing medium carrying heat and/or under high pressure and temperature with
increased energy content, means configured to expand the processing medium in order
to generate and extract work, thereby transferring - at least in part - the processing
medium into a vapor state and in particular into a superheated vapor state, and means
configured to condense - at least in part - the expanded processing medium in said
vapor state, thereby cooling and transferring the processing medium into a fluid state.
[0018] According to the present invention means is provided which is configured to continuously
introduce after the means for expanding and before and/or within the means for condensing
processing medium in a non-vapor state and/or in a cooled state into the expanded
processing medium in said vapor state to be condensed, thereby desuperheating the
expanded processing medium in said vapor state.
[0019] In order to achieve a reliable and simple configuration for the energy conversion
system said means for continuously introducing said processing medium in said non-vapor
state and/or in said cooled state preferably is or comprises at least one of an injector
and a sprayer.
[0020] A comparable compact structure for the configuration of the system according to the
present invention can be achieved if said at least one of an injector and a sprayer
is located at or in a junction of a conduit fluidly connecting the means for expanding
and the means for condensing and/or at or in a junction of an entry of the means for
condensing.
[0021] As a feedback process regarding the processing medium to be continuously introduced
before or within the stage of condensing is of high importance, according to an advantageous
embodiment of the energy conversion system said means for continuously introducing
the processing medium in said non-vapor state and/or in said cooled state comprises
a conduit for supplying - in particular in a feedback manner - the processing medium
in said non-vapor state and/or in said cooled state, by branching off from a conduit
conveying the processing medium exiting from said means for condensing and/or either
before or after a pump for driving the processing medium within said conduit.
[0022] In order to reliably control the process of continuously introducing the processing
medium in said non-vapor state and/or in said cooled state said conduit of said means
for continuously introducing the processing medium in said non-vapor state and/or
in said cooled state comprises a pump and/or a control valve for controlling the supply
of the processing medium in said non-vapor state and/or in said cooled state.
[0023] Said means for expanding the processing medium may be or comprise a turbine or other
expansion device, in particular operatively connected to a generator.
[0024] In addition or alternatively, said means for providing the processing medium may
be a consecutive arrangement of a preheater and an evaporator, in particular connected
to an external heat source and/or in separated or integrated form.
[0025] According to a further alternative or additional embodiment, said means for condensing
the processing medium may be or comprise a condenser, in particular with a heat exchanger
connected to an external heat sink.
[0026] These and further details, advantages and features of the present invention will
be described based on embodiments of the invention and by taking reference to the
accompanying figures.
- Figure 1
- is a schematic view describing general aspects of an embodiment of the energy conversion
system according to the present invention.
- Figures 2 and 3
- describe in a similar manner preferred embodiments of the energy conversion system
according to the present invention.
- Figures 4 to 6
- are diagrams describing the temperature-entropy relationship of wet, dry and isentropic
processing media, in particular within ORC processes.
- Figures 7 to 9
- schematically depict aspects of desuperheating processes in a conventional condenser
tube, in a condenser tube formed according to the present invention, and in a conventional
condenser tube retrofit with inventive means for desuperheating by continuously introducing
processing medium in a non-vapor and/or cooled state.
- Figure 10
- schematically describes a conventional energy conversion system.
In the following, embodiments and the technical background of the present invention
are presented in detail by taking reference to accompanying figures 1 to 10. Identical
or equivalent elements and elements which act identically or equivalently are denoted
with the same reference signs. Not in each case of their occurrence a detailed description
of the elements and components is repeated.
[0027] The depicted and described features and further properties of the invention's embodiments
can arbitrarily be isolated and recombined without leaving the gist of the present
invention.
[0028] Figure 1 is a schematic view describing general aspects of an embodiment of the energy
conversion system 1 according to the present invention.
[0029] The energy conversion system 1 according to the present invention as depicted in
figure 1 majorly comprises means 10 for providing a processing medium 2 for instance
in form of a liquid, a vapor, a gas or a combination thereof, followed by means 20
for expanding the processing medium 2 and coupled to a generator 30 by coupling means
31, followed by means 40 for condensing the processing medium 2.
[0030] All the means 10, 20, and 40 are consecutively interconnected by a conduit or pipe
arrangement 60 having conduit or pipe sections 61, 62, 63, 64 and 65.
[0031] The first pipe section 61 defines a fluidic connection between the means 10 for providing
the processing medium 2 and the means 20 for expanding the processing medium 2. The
second pipe section 62 gives a fluidic connection between the means 20 for expanding
the processing medium 2 and the means 40 for condensing the processing medium 2. The
third and fourth pipe sections 63 and 64 establish a fluidic connection between the
means 40 for expanding the processing medium 2 and the means 10 for providing the
processing medium 2 - with a pump 50 connected therebetween - and thereby closing
the processing cycle.
[0032] The pump 50 between the pipe sections 63 and 64 is configured to drive the processing
medium 2 within the conduit arrangement 60.
[0033] The means 10 for providing the processing medium 2 may comprise at an upstream side
a preheater 11 connected by a fifth pipe section 65 to an evaporator 12 which forms
also a part of the means 10 for providing the processing medium 2.
[0034] The preheater 11 and the evaporator 12 may be formed as a single and integrated component.
[0035] Via conduits 13, 14 and 15 the evaporator 12 and the preheater 11 are coupled to
an external heat source 16, which can be formed by an external heat exchange medium.
[0036] As described so far, this particular arrangement in general coincides with the setup
of a conventional energy conversion system 1' as shown in figure 10.
[0037] In addition to the conventional design as shown in figure 10, the energy conversion
system 1 according to the present invention shown in figure 1 additionally comprises
means 70 for continuously introducing processing medium 2 in a non-vapor state and/or
in a cooled state which comprises at least one injector 71 or sprayer 71 in the embodiment
shown in figure 1.
[0038] However, the provision of an injector 71 or a sprayer 71 is just an option which
is mandatory. In some embodiments a simple junction may be sufficient without any
spray dispersion functionality or the like.
[0039] The injector 71 or sprayer 71 can be arranged such that introduction of the processing
medium 2 in said non-vapor state and/or in said cooled state is achieved either at
a first junction 81 at a downstream side of the means 20 for expanding the processing
medium 2 and at an upstream side of the means 40 for condensing the processing medium
2. Therefore, in figure 1 the first junction 81 is situated within the second pipe
section 62.
[0040] Additionally or alternatively, a second junction 82 might be used for continuously
introducing the processing medium 2 in said non-vapor state and/or in said cooled
state which is situated within a neighborhood of an entry or in the entry of the means
40 for condensing the processing medium 2, i.e. the condenser 40.
[0041] The condenser 40 as such is equipped with pipe sections 43, 44, and 45 for being
connected to an external heat sink 46, for instance to a further and external heat
exchange medium.
[0042] By these measures, the energy conversion system 1 according to the present invention
as shown in figure 1 is capable of continuously introducing the processing medium
2 in a non-vapor state and/or in a cooled state into the expanded processing medium
2 in said vapor state to be condensed in order to achieve desuperheating of the expanded
processing medium 2 without the burden of conventional desuperheating processes and
means to thereby achieve a higher degree of efficiency with reduced size and costs
of the underlying processes and means.
[0043] Figures 2 and 3 describe in a similar manner preferred embodiments of the energy
conversion system 1 according to the present invention and exemplify in a more concrete
manner how the continuous introduction of the processing medium 2 in said non-vapor
state and/or in said cooled state may be achieved by means of a feedback process and
structure.
[0044] Both embodiments are based on a configuration where the means 70 for continuously
introducing the processing medium 2 in said non-vapor state and/or in said cooled
state with its injector 71 or sprayer 71 is connected to the downstream sides of the
means 20 for expanding the processing medium 2 in the second pipe section 62. However,
this is not mandatory.
[0045] In figure 2 a conduit 73 of the means 70 for continuously introducing the processing
medium 2 in said non-vapor state and/or in said cooled state derives from the fourth
pipe section 64 after the pump 50 at branch 74. Right before junction 81 and the injector
71 or sprayer 71 a control valve 76 is provided for controlling the operation of continuously
introducing the processing medium 2 in said non-vapor state and/or in said cooled
state.
[0046] In the embodiment shown in figure 3, said conduit 73 derives from the third pipe
section 63 before the pump 50 at branch 75. As the branch 75 is situated before the
pump 50, an optional pump 77 may be provided in the conduit 73 before the valve 76
under such circumstances.
[0047] As described in more detail below with respect to particular thermodynamic properties,
figures 4 to 6 show diagrams 90 describing the temperature-entropy relationship of
wet, dry and isentropic processing media 2, respectively, within particular ORC processes.
[0048] In each diagram 90, to each abscissa 91 the entropy S and to each ordinate 92 the
temperature T of the underlying processing medium 2 are applied thereby explaining
the phase relationship by means of a temperature-entropy diagram.
[0049] For each of the examples of the wet, dry or arid, and isentropic processing media
2 - respectively corresponding to figures 4 to 6 - the liquid-vapor or two-phase region
borderline 93 divides the entire thermodynamic region into a two-phase region 101
of the liquid-vapor coexistence region below the bell shaped curve 93 and the single-phase
regions 102 and 103 of the liquid phase and of the vapor phase, respectively.
[0050] The hatched area 94 with its boundary represents schematically the region for the
ORC process.
[0051] The circle area 95 corresponds to an exemplary region of states of the processing
medium 2 at the end of the expansion process.
[0052] Figures 7 to 9 schematically depict aspects of desuperheating processes in a conventional
condenser tube 41' of a conventional means 40' for condensing a processing medium
2, in a condenser tube 41 formed according to the present invention, and in a conventional
condenser tube 41' modified according to the present invention by retrofit with inventive
means for desuperheating by continuously introducing processing medium 2 in a non-vapor
and/or in a cooled state, respectively.
[0053] Aligned with each of the condenser tubes 41', 41 is a diagram describing the temperature
T applied at its respective ordinate within the respective condenser tube 41', 41
as a function of position x along its entire elongation 99', 99 applied at its respective
abscissa.
[0054] The respective traces p', p represent the course of the respective pressure within
the condenser tubes 41', 41 along the cubes' elongations 99', 99.
[0055] In the conventional embodiment of the means 40' for condensing the processing medium
2 and its condenser tube 41' as shown in figure 7, the diagram shows conventional
phases 96', 97', and 98' for achieving desuperheating, condensation, and subcooling
or supercooling, respectively.
[0056] As can be seen from figure 7, the part of the elongation 99' necessary for desuperheating
conventionally takes up to 40% of the entire elongation 99' of the conventional condenser
pipe 41'.
[0057] In contrast thereto and as shown in figure 8, the means 40 for condensing the processing
medium 2 according to the present invention and its condenser pipe 41 show a phase
96 for desuperheating which corresponds to a fraction of the entire elongation 99
of the condenser pipe 41 which is below 10% thereof. Consequently, the entire elongation
99 of the condenser pipe 41 according to the present invention can be reduced when
compared to the elongation 99' of the conventional condenser pipe 41'.
[0058] It has to be noticed, that the representations according to figures 7 to 9 are not
true to scale.
[0059] In figure 9, a conventional means 40' for condensing the processing medium 2 is shown
which has been modified by adopting means 70 with an injector 71 or sprayer 71 for
continuously introducing processing medium 2 in said non-vapor state and/or in said
cooled state. This can be seen as a retrofit measure for an existing conventional
condenser pipe 41'. Although it maintains its conventional elongation 99', the fraction
of the entire elongation 99' necessary for desuperheating and thus corresponding to
the phase fraction 96 shown in figure 9 are remarkably reduced when compared to the
situation shown in figure 7 and also indicated in figure 9 by a dotted line. As a
consequence of the inventive concept, the condensation pressure is reduced from the
pressure p' to p leading to an increasing power output of the expander.
[0060] Although the conventional elongation 99' is maintained, the degree of efficiency
is increased due to the provided means of the present invention enabling a continuous
introduction of the processing medium 2 in a non-vapor and/or in a cooled state for
enhancing the desuperheating process.
[0061] The present invention concerns the technical field of power engineering and energy
management. In particular aspects of increasing the effectiveness and decreasing the
costs in regard to ORC systems are concerned.
[0062] Due to the improvements suggested by the present invention the efficiency of the
cycle process underlying the ORC arrangement and a reduction of the investment costs
can be achieved. The improvements are not strictly related to a turbine or the provision
of any other expansion machine. In addition the improvements are also independent
from the processing medium involved, being a dry or arid medium or an isentropic medium,
and also from the underlying concept of the power plant in question.
[0063] The means and methods for injection or spray desuperheating at an upstream side or
at the entry of a condensing process or means yields and improved heat transfer. In
already existing apparatuses lowering the condensation pressure is a benefit, thereby
increasing efficiency and performance of the underlying expansion process and machine.
In new apparatuses the proposed technology according to the present invention may
reduce the amount of heat transfer surfaces of the involved condensers, thereby reducing
the overall costs of the apparatus.
[0064] In the following, the technical background of the present invention will be described
to some extent:
The organic Rankine cycle is employed in a decentralized manner and in apparatuses
and plants of small and middle power classes e.g. of up to 10 MW. The fields of application
comprise - but are not limited to - the decentralized usage of biomass, geothermal
power generation, solar energy driven desalination of seawater, waste heat usage of
bio gas apparatuses, the latter under the paradigm of a bottoming cycle and micro
power plants.
These applications have their advantages in particular in the range of low to medium
temperature heat sources in regard to conventional Rankine processes, which are operated
by water vapor and/or at temperatures in the range of e.g. 100 °C to 400 °C.
[0065] The following advantages are given:
- (1) good degrees of efficiency at moderate pressures,
- (2) high specific mass flows (low leakage in the turbine or expansion machine),
- (3) possible application in known equipment for cooling and climate regulation, and
- (4) single stage turbine or single stage expansion machine because of a low expansion
ratio.
[0066] In principle, the standard ORC process is a Rankine process in its simplest form
and comprises as shown in figure 10 a pre-heater 11, an evaporator 12, and a condenser
40 as heat exchanging means, a turbine 20 or a general expansion machine, and a pump
50. These aspects have a high degree of similarity to former times' steam power plants.
[0067] Working or processing media 2 for the ORC technology can be characterized according
to their entropy-temperature diagrams as shown in connection with figures 4 to 6.
[0068] Such processing media 2 can be classified as being (i) dry or arid media, for instance
R22, (ii) wet media, for instance water or isopentane, and (iii) and isentropic media,
for instance R245fa.
[0069] In figures 4 to 6 the two-phase region 101 is situated below the bell shaped curve
93 and in this region the steam or vapor phase and the liquid phase coexist.
[0070] In the left half space outside the bell-shaped curve 93 the liquid/fluid phase region
102 is located. In the right half space the steam or vapor phase region 103 is located.
The hatched area 94 schematically indicates the ORC cycle process performed by the
apparatus 1' as shown in figure 10. The state after the expansion is indicated by
the circle 95.
[0071] When using dry or arid media of fluids as a processing medium 2 the expansion after
the turbine or general expansion machine 20 ends with superheated vapor in the region
indicated by the circle 95. When using a wet working or processing medium 2 the endpoint
of the expansion process may be located directly within the wet vapor or wet steam
region, i.e. within the two-phase region 101. In the case of isentropic processing
media 2 the saturated vapor or steam curve 93 is isentropic, thereby corresponding
to a constant entropy. Ideally, the expansion ends directly on the saturated vapor
or steam curve 93.
[0072] Under real circumstances, however, an expansion process is always connected with
an increase of entropy. Therefore, the end point of the expansion process - even when
using isentropic media - is located in the phase region 103 of superheated vapor or
steam, however, at moderate vapor pressures.
[0073] The problem with these superheated states after the expansion process is connected
with the comparable poor heat transfer capabilities of the vapor phase. Indeed, the
heat transfer capability is reduced by several orders of magnitude when compared to
condensation in the two-phase region 101. Consequently, large heat exchange surfaces
are necessary for performing a desuperheating process until the curve of saturated
vapor is reached. This effect is due to the poor heat transfer under these conditions
making necessary condensers 40 of large volume with the consequence of increased investment
costs.
[0074] In addition, the above-mentioned problem in particular occurs when using dry processing
media 2. But also for isentropic working media 2 the drawbacks have to be observed,
as under real changes of state the expansion process ends in the superheated vapor
phase, too.
[0075] According to the present invention an efficient means and process for desuperheating
are proposed. This is achieved by using - in a continuous manner and after the expansion
process and before or at the beginning of or within/during condensation - the introduction
of the processing medium 2 in a non-vapor and/or in a cooled state, for instance by
injecting, spraying or the like and/or by using the processing medium 2 in form of
a liquid, a mist, a state of a dispersed fluid or the like. The inventive method for
desuperheating will be referred to in the following as injection cooling.
[0076] The proposed means and method according to the present invention use desuperheating
by continuously introducing the processing medium 2 in a non-vapor state and/or in
a cooled state in order to improve the ORC process.
[0077] Condensation in the conventional ORC process is schematically shown in figure 7.
[0078] In the process underlying figure 7, a conventional horizontal condenser pipe 41'
underlying the conventional condenser 40' is used. The superheated vapor 2 first of
all is desuperheated before it can condense in the two-phase region at constant temperature.
The liquid 2 as such may also be used in a subcooled or supercooled state. This takes
place majorly at the end of the condenser 40', i.e. in the neighborhood of its exit
and in the region of the liquid phase.
[0079] As a consequence of the inventive injection cooling, it is possible to reduce the
conventional extension or elongation 99' of the entire condenser pipe 41' and in particular
of the desuperheating part of the condenser 40, 40'. This reduces the overall volume
of the condenser 40 as can be seen from the embodiment shown in figure 8. In addition,
the investment costs at least for the condenser 40 are thereby reduced. For some cases,
simulations have shown that the portion of the area which is conventionally necessary
for desuperheating is about 25% of the condenser 40.
[0080] In addition, injection cooling according to the present invention may also be used
in apparatuses and plants which already exist, i.e. in the sense of a retrofitting
measure. By increasing the efficiency of the heat transfer along the entire condenser
40, the condensation pressure can be lowered as indicated in figure 9.
[0081] Figures 2 and 3 more explicitly show embodiments of the present invention being integrated
in the ORC process.
[0082] The increase of the degree of efficiency of the inventive injection cooling is effective
in all possible variants or embodiments of the underlying ORC process, as long as
the processing medium 2 enters the condenser 40 in a superheated state. Such circumstances
occur with almost every working or process medium 2, partly also in connection with
wet media, namely based on the lossy expansion means and process of the underlying
expansion means 20.
[0083] Means and processes for injection cooling as such are already known in the prior
art. However, they are used for temperature regulation and reduction of specific enthalpy
after adiabatic restriction or throttling or in a temporary manner only.
[0084] In contrast to that, the present invention suggests a continuous injection cooling,
i.e. a continuous introduction of the processing medium 2 in a non-vapor state and/or
in a cooled state, and in particular after a polytropic expansion with extraction
of work, wherein in contrast to the conventional case the saturation region cannot
be reached due to pure physical reasons despite the polytropic reduction of pressure.
Therefore, negative properties of the still superheated processing fluid or medium
2 regarding the heat transfer capabilities within the condenser 40 can be avoided
according to the present invention yielding remarkably improved properties with the
saturated fluid or processing medium 2.
[0085] In addition to the foregoing description of the present invention, for an additional
disclosure explicit reference is taken to the graphic representation of figures 1
to 10.
[0086] List of reference signs
- 1
- Energy conversion system
- 1'
- conventional energy conversion system
- 2
- processing medium
- 10
- means for providing the processing medium 2
- 11
- preheater
- 12
- evaporator
- 13
- conduit
- 14
- conduit
- 15
- conduit
- 16
- external heat source, heat exchange medium
- 20
- means for expanding the processing medium 2, turbine
- 30
- generator
- 31
- coupling means
- 40
- means for condensing the processing medium 2, condenser
- 40'
- conventional means for condensing the processing medium 2, condenser
- 41
- condenser pipe/tube
- 41'
- conventional condenser pipe/tube
- 43
- conduit
- 44
- conduit
- 45
- conduit
- 46
- external heat source, heat exchange medium
- 50
- pump
- 60
- conduit/pipe arrangement/system
- 61
- conduit/pipe
- 62
- conduit/pipe
- 63
- conduit/pipe
- 64
- conduit/pipe
- 70
- means for continuously introducing the processing medium 2
- 71
- injector/sprayer
- 73
- conduit
- 74
- branch after pump 50
- 75
- branch before pump 50
- 76
- valve
- 77
- pump
- 81
- junction into conduit 62
- 82
- junction into condenser 40
- 90
- graph, temperature-entropy diagram
- 91
- abscissa, entropy S
- 92
- ordinate, temperature T
- 93
- liquid-vapor/two-phase region borderline
- 94
- ORC region
- 95
- state region after expansion
- 96
- desuperheating phase
- 96'
- conventional desuperheating phase
- 97
- condensation phase
- 97'
- conventional condensation phase
- 98
- supercooling phase
- 98'
- conventional supercooling phase
- 99
- elongation
- 99'
- conventional elongation
- 101
- liquid-vapor two-phase region
- 102
- liquid phase region
- 103
- vapor phase region
- p
- pressure
- p'
- pressure
- S
- entropy
- T
- temperature
- x
- position along elongation of condenser tube/pipe 41, 41'
1. Energy conversion method based on a Clausius-Rankine cycle and in particular on an
organic Rankine cycle, comprising steps of:
- providing a processing medium (2) carrying heat and/or under high pressure and temperature
with increased energy content,
- expanding the processing medium (2) in order to generate and extract work, thereby
transferring - at least in part - the processing medium (2) into a vapor state and
in particular into a superheated vapor state,
- condensing - at least in part - the expanded processing medium (2) in said vapor
state, thereby cooling and transferring the processing medium (2) into a fluid state,
wherein after expanding and before and/or during condensing processing medium (2)
in a non-vapor state and/or in a cooled state is continuously introduced into the
expanded processing medium (2) in said vapor state to be condensed, thereby desuperheating
the expanded processing medium (2) in said vapor state.
2. Method according to claim 1,
wherein said step of continuously introducing said processing medium (2) in said non-vapor
state and/or in said cooled state is performed
- by at least one of spraying and injecting and/or
- by using said processing medium (2) in said non-vapor state and/or in said cooled
state in at least one form of a liquid state, a mist, a state of a dispersed fluid
and a state with a temperature lower than the temperature of the expanded processing
medium (2) in said vapor state.
3. Method according to any one of the preceding claims,
wherein said processing medium (2) is a heat exchange medium, a dry or arid medium,
a wet medium, an isentropic medium, pure fluids and/or mixtures thereof and/or comprises
an organic compound or a pluralitythereof.
4. Method according to any one of the preceding claims,
wherein said processing medium (2) in said non-vapor and/or in said cooled state is
provided by feeding back condensed processing medium (2) from a downstream side of
the condensing step, in particular from an exit of the condensing step.
5. Method according to any one of the preceding claims,
wherein said step of providing the processing medium (2) carrying heat comprises at
least one of the steps of preheating the processing medium (2) and - in particular
consecutively - evaporating the processing medium (2) in order to form a vapor state
thereof, in particular by using an external heat source (16).
6. Energy conversion system (1), configured to perform an energy conversion method based
on a Clausius-Rankine cycle and in particular on an organic Rankine cycle and/or on
a method according to any one of claims 1 to 5, comprising:
- means (10) configured to provide a processing medium (2) carrying heat and/or under
high pressure and temperature with increased energy content,
- means (20) configured to expand the processing medium (2) in order to generate and
extract work, thereby transferring - at least in part - the processing medium (2)
into a vapor state and in particular into a superheated vapor state,
- means (40) configured to condense - at least in part - the expanded processing medium
(2) in said vapor state, thereby cooling and transferring the expanded processing
medium (2) into a fluid state,
wherein means (70) is provided which is configured to continuously introduce after
the means (20) for expanding and before and/or within the means (40) for condensing
processing medium (2) in a non-vapor state and/or in a cooled state into the expanded
processing medium (2) in said vapor state to be condensed, thereby desuperheating
the expanded processing medium (2) in said vapor state.
7. System (1) according to claim 6,
wherein said means (70) for continuously introducing said processing medium (2) in
said non-vapor state and/or in said cooled state is or comprises at least one of an
injector (71) and a sprayer (71).
8. System (1 ) according to claim 7,
wherein said at least one of an injector (71) and sprayer (71) is located at or in
a junction (81) of a conduit (62) fluidly connecting the means (20) for expanding
and the means (40) for condensing and/or at or in a junction (82) at or in an entry
of the means (40) for condensing.
9. System (1 ) according to any one of claims 6 to 8,
wherein said means (70) for continuously introducing the processing medium (2) in
said non-vapor state and/or in said cooled state comprises a conduit (73) for supplying
- in particular in a feedback manner - the processing medium (2) in said non-vapor
state and/or in said cooled state, by branching (74, 75) off from a conduit (63, 64)
conveying the processing medium (2) exiting from said means (40) for condensing and/or
either before or after a pump (50) for driving the processing medium (2) within said
conduit (63, 64).
10. System (1 ) according to claim 9,
wherein within said conduit (73) of said means (70) for continuously introducing the
processing medium (2) in said non-vapor state and/or in said cooled state comprises
e.g. a pump (77) and/or a control valve (76) for controlling the supply of the processing
medium (2) in said non-vapor state and/or in said cooled state.
11. System (1 ) according to any one of claims 6 to 10,
wherein said means (20) for expanding the processing medium (2) is or comprises a
turbine or other expansion devices, in particular operatively connected to a generator
(30).
12. System (1 ) according to any one of claims 6 to 11,
wherein said means (10) for providing the processing medium (2) is a consecutive arrangement
of a preheater (11) and an evaporator (12), in particular connected to an external
heat source (16) and/or in separated or integrated form.
13. System (1 ) according to any one of claims 6 to 12,
wherein said means (40) for condensing the processing medium (2) is or comprises a
condenser, in particular with a heat exchanger connected to an external heat sink
(46).
Amended claims in accordance with Rule 137(2) EPC.
1. Energy conversion method based on a Clausius-Rankine cycle and in particular on an
organic Rankine cycle, comprising steps of:
- providing a processing medium (2) carrying heat,
- expanding the processing medium (2) in order to generate and extract work, thereby
transferring - at least in part - the processing medium (2) into a vapor state and
in particular into a superheated vapor state,
- condensing - at least in part - the expanded processing medium (2) in said vapor
state, thereby cooling and transferring the processing medium (2) into a fluid state,
characterized in
that after expanding and during condensing processing medium (2) in a non-vapor state
and/or in a cooled state is continuously introduced into the expanded processing medium
(2) to be condensed and being in said vapor state, thereby desuperheating the expanded
processing medium (2) in said vapor state.
2. Method according to claim 1,
wherein said step of continuously introducing said processing medium (2) in said non-vapor
state and/or in said cooled state is performed
- by at least one of spraying and injecting and/or
- by using said processing medium (2) in said non-vapor state and/or in said cooled
state in at least one form of a liquid state, a mist, a state of a dispersed fluid
and a state with a temperature lower than the temperature of the expanded processing
medium (2) in said vapor state.
3. Method according to any one of the preceding claims,
wherein said processing medium (2) is a heat exchange medium, a dry or arid medium,
a wet medium, an isentropic medium, pure fluids and/or mixtures thereof and/or comprises
an organic compound or a plurality thereof.
4. Method according to any one of the preceding claims,
wherein said processing medium (2) in said non-vapor and/or in said cooled state is
provided by feeding back condensed processing medium (2) from a downstream side of
the condensing step, in particular from an exit of the condensing step.
5. Method according to any one of the preceding claims,
wherein said step of providing the processing medium (2) carrying heat comprises at
least one of the steps of preheating the processing medium (2) and - in particular
consecutively - evaporating the processing medium (2) in order to form a vapor state
thereof, in particular by using an external heat source (16).
6. Energy conversion system (1), configured to perform an energy conversion method based
on a Clausius-Rankine cycle and in particular on an organic Rankine cycle and/or on
a method according to any one of claims 1 to 5, comprising:
- means (10) configured to provide a processing medium (2) carrying heat,
- means (20) configured to expand the processing medium (2) in order to generate and
extract work, thereby transferring - at least in part - the processing medium (2)
into a vapor state and in particular into a superheated vapor state,
- means (40) configured to condense - at least in part - the expanded processing medium
(2) in said vapor state, thereby cooling and transferring the expanded processing
medium (2) into a fluid state,
characterized in
that means (70) is provided which is configured to continuously introduce after the means
(20) for expanding and within the means (40) for condensing processing medium (2)
in a non-vapor state and/or in a cooled state into the expanded processing medium
(2) to be condensed and being in said vapor state, thereby desuperheating the expanded
processing medium (2) in said vapor state.
7. System (1) according to claim 6,
wherein said means (70) for continuously introducing said processing medium (2) in
said non-vapor state and/or in said cooled state is or comprises at least one of an
injector (71) and a sprayer (71).
8. System (1) according to claim 7,
wherein said at least one of an injector (71) and sprayer (71) is located at or in
a junction (81) of a conduit (62) fluidly connecting the means (20) for expanding
and the means (40) for condensing and/or at or in a junction (82) at or in an entry
of the means (40) for condensing.
9. System (1) according to any one of claims 6 to 8,
wherein said means (70) for continuously introducing the processing medium (2) in
said non-vapor state and/or in said cooled state comprises a conduit (73) for supplying
- in particular in a feedback manner - the processing medium (2) in said non-vapor
state and/or in said cooled state, by branching (74, 75) off from a conduit (63, 64)
conveying the processing medium (2) exiting from said means (40) for condensing and/or
either before or after a pump (50) for driving the processing medium (2) within said
conduit (63, 64).
10. System (1) according to claim 9,
wherein said conduit (73) of said means (70) for continuously introducing the processing
medium (2) in said non-vapor state and/or in said cooled state comprises a pump (77)
and/or a control valve (76) for controlling the supply of the processing medium (2)
in said non-vapor state and/or in said cooled state.
11. System (1) according to any one of claims 6 to 10,
wherein said means (20) for expanding the processing medium (2) is or comprises a
turbine or other expansion devices, in particular operatively connected to a generator
(30).
12. System (1) according to any one of claims 6 to 11,
wherein said means (10) for providing the processing medium (2) is a consecutive arrangement
of a preheater (11) and an evaporator (12), in particular connected to an external
heat source (16) and/or in separated or integrated form.
13. System (1) according to any one of claims 6 to 12,
wherein said means (40) for condensing the processing medium (2) is or comprises a
condenser, in particular with a heat exchanger connected to an external heat sink
(46).