[0001] The invention relates to polycrystalline magnetocaloric materials, to processes for
their production and to their use in coolers, heat exchangers or generators, in particular
in refrigerators.
[0002] Thermomagnetic materials, also referred to as magnetocaloric materials, can be used
for cooling, for example in refrigerators or air conditioning units, in heat pumps
or for direct generation of power from heat without intermediate connection of a conversion
to mechanical energy.
[0003] Such materials are known in principle and are described, for example, in
WO 2004/068512. Magnetic cooling techniques are based on the magnetocaloric effect (MCE) and may
constitute an alternative to the known vapor circulation cooling methods. In a material
which exhibits a magnetocaloric effect, the alignment of randomly aligned magnetic
moments by an external magnetic field leads to heating of the material. This heat
can be removed from the MCE material to the surrounding atmosphere by a heat transfer.
When the magnetic field is then switched off or removed, the magnetic moments revert
back to a random arrangement, which leads to cooling of the material below ambient
temperature. This effect can be exploited for cooling purposes, but also for heating.
Typically, a heat transfer medium such as water is used for heat removal from the
magnetocaloric material.
[0004] The materials used in thermomagnetic generators are likewise based on the magnetocaloric
effect. In a material which exhibits a magnetocaloric effect, a small change in temperature
can lead to a big change in magnetization. Magnetized by an external magnetic field,
when the material is heated, a big change in the induction flow through a coil and
thus an electromotive force are generated. Cooling the material below the critical
temperature leads again to the occurrence of an electromotive force. This effect can
be exploited for conversion of heat to electrical energy.
[0005] The magnetocaloric generation of electrical energy is associated with magnetic heating
and cooling. At the time of first conception, the process for energy generation was
described as pyromagnetic energy generation. Compared to devices of the Peltier or
Seebeck type, these magnetocaloric devices can have a significantly higher energy
efficiency.
[0006] The research into this physical phenomenon began in the late 19
th century, when two scientists, Tesla and Edison, filed a patent on pyromagnetic generators.
In 1984, Kirol described numerous possible applications and conducted thermodynamic
analyses thereof. At that time, gadolinium was considered to be a potential material
for applications close to room temperature.
[0007] A pyromagnetoelectric generator is described, for example, by
N. Tesla in US 428,057. It is stated that the magnetic properties of iron or other magnetic substances can
be destroyed partially or entirely or can disappear as a result of heating to a particular
temperature. In the course of cooling, the magnetic properties are re-established
and return to the starting state. This effect can be exploited to generate electrical
power. When an electrical conductor is exposed to a varying magnetic field, the changes
in the magnetic field lead to the induction of an electrical current in the conductor.
When, for example, the magnetic material is surrounded by a coil and is then heated
in a permanent magnetic field and then cooled, an electrical current is induced in
the coil in the course of heating and cooling in each case. This allows thermal energy
to be converted to electrical energy, without an intermediate conversion to mechanical
work. In the process described by Tesla, iron, as the magnetic substance, is heated
by means of an oven or a closed fireplace and then cooled again.
[0008] For the thermomagnetic or magnetocaloric applications, the material should permit
efficient heat exchange in order to be able to achieve high efficiencies. Both in
the course of cooling and in the course of power generation, the thermomagnetic material
is used in a heat exchanger.
[0009] US 2006/0117758 and
WO 2009/133049 disclose magnetocaloric materials of the general formula MnFe(P
wGe
xSi
z). Preferred materials are MnFeP
0.45-0.70Ge
0.55-0.30 or MnFeP
0.5-0.70(Si/Ge)
0.5-0.30. In each case, the example compositions comprise proportions of Ge. These substances
still do not have a sufficiently great magnetocaloric effect for all applications.
[0010] EP patent application 10 150 411.6 entitled "Magnetocaloric materials", which was filed on January 11, 2010 and was
yet to be published at the priority date of the present application, describes magnetocaloric
materials of the general formula
(Mn
xFe
1-x)
2+zP
1-ySi
y
where



[0012] DINH THI C PRO AM THANH: "Magnetocalorics and Magnetism in MnFe (P,Si,Ge) materials"
(ph. D. thesis, Universiteit van Amsterdam, NL, 21 April 2009, ISBN: 978-90-5776-188-1) describes MnFe(P,Si,Ge) explores MnFe (P,Si,Ge) materials for magnetic cooling applications,
especially certain MnFeP
1-xSi
x compounds.
[0013] It is an object of the present invention to provide magnetocaloric materials having
a large magnetocaloric effect, low thermal hysteresis and a working temperature in
the range from 0 to 150°C.
[0014] The object is achieved in accordance with the invention by the magnetocaloric material
defined by claim 1.
[0015] Preferably, 0.25 ≤ x ≤ 0.35. x preferably has a minimum value of 0.28, more preferably
of 0.3. The maximum value of x is preferably 0.34, in particular 0.33. More preferably
0.28 ≤ x ≤ 0.34, in particular 0.30 ≤ x ≤ 0.33.
[0016] y preferably has a minimum value of 0.4. The maximum value of y is preferably 0.6,
more preferably 0.44. More preferably 0.4 ≤ y ≤ 0.6, in particular 0.4 ≤ y ≤ 0.44.
[0017] z may differ from 0 by small values. Preferably -0.05 ≤ z ≤ 0.05, in particular -0.02
≤ z ≤ 0.02, especially z = 0.
[0018] The inventive magnetocaloric materials preferably have a hexagonal structure of the
Fe
2P type.
[0019] It has been found in accordance with the invention that especially an Mn/Fe element
ratio of less than 0.54, especially in the range from 0.5/1.5 to 0.7/1.3, leads to
magnetocaloric materials with stabilized phase formation and low thermal hysteresis.
The inventive materials allow a working temperature in application in the range from
0°C to + 150°C.
[0020] The magnetocaloric effect of the inventive materials is comparable to the magnetocaloric
effect of what are known as giant magnetocaloric materials such as MnFeP
xAs
1-x,Gd
5(Si, Ge)
4 or La(Fe, Si)
13.
[0021] The thermal hysteresis, determined in a magnetic field of 1 T with a sweep rate of
1°C/min, is preferably < 5°C, more preferably < 2°C, due to the balanced Mn/Fe and
P Si ratios.
[0022] The inventive materials additionally have the advantage that they are formed from
elements which are available in large amounts and are generally classified as nontoxic.
[0023] The thermomagnetic materials used in accordance with the invention can be produced
in any suitable manner.
[0024] The inventive magnetocaloric materials can be produced by the process of claim 6.
[0025] The thermomagnetic materials are produced, for example, by solid phase reaction of
the starting elements or starting alloys for the material in a ball mill, subsequent
pressing, sintering and heat treatment under inert gas atmosphere and subsequent cooling,
for example slow cooling, to room temperature. Such a process is described, for example,
in
J. Appl. Phys. 99, 2006, 08Q107.
[0026] For example, suitable amounts of Mn, Fe, P and Si in element form or in the form
of preliminary alloys such as Mn
2P or Fe
2P can be ground in a ball mill. The powders are pressed and sintered at temperatures
in the range from 900 to 1300°C, preferably of about 1100°C, for a suitable time,
preferably 1 to 5 hours, especially about 2 hours, and then heat treated at temperatures
in the range from 700 to 1000°C, preferably about 850°C, for suitable periods, for
example 1 to 100 hours, more preferably 10 to 30 hours, especially about 20 hours,
under a protective gas atmosphere.
[0027] Alternatively, the element powders or preliminary alloy powders can be melted together
in an induction oven. It is then possible in turn to perform a heat treatment as specified
above.
[0028] Processing via melt spinning is also possible. This makes possible a more homogeneous
element distribution which leads to an improved magnetocaloric effect; cf.
Rare Metals, Vol. 25, October 2006, pages 544 to 549. In the process described there, the starting elements are first induction-melted
in an argon gas atmosphere and then sprayed in the molten state through a nozzle onto
a rotating copper roller. There follows sintering at 1000°C and slow cooling to room
temperature. In addition, reference may be made to
WO 2004/068512 and
WO 2009/133049 which however do not form part of the present invention.
[0029] Also disclosed is a process for producing the thermomagnetic materials, comprising
the following steps:
- a) converting chemical elements and/or alloys in a stoichiometry which corresponds
to the magnetocaloric material in the solid and/or liquid phase,
- b) optionally converting the reaction product from stage a) to a solid,
- c) sintering and/or heat treating the solid from stage a) or b),
- d) quenching the sintered and/or heat treated solid from stage c) at a cooling rate
of at least 100 K/s.
[0030] The thermal hysteresis can be reduced significantly and a large magnetocaloric effect
can be achieved when the magnetocaloric materials are not cooled slowing to ambient
temperature after the sintering and/or heat treatment, but rather are quenched at
a high cooling rate. This cooling rate is at least 100 K/s. The cooling rate is preferably
from 100 to 10 000 K/s, more preferably from 200 to 1300 K/s. Especially preferred
cooling rates are from 300 to 1000 K/s.
[0031] The quenching can be achieved by any suitable cooling processes, for example by quenching
the solid with water or aqueous liquids, for example cooled water or ice/water mixtures.
The solids can, for example, be allowed to fall into ice-cooled water. It is also
possible to quench the solids with subcooled gases such as liquid nitrogen. Further
processes for quenching are known to those skilled in the art. What is advantageous
here is controlled and rapid cooling.
[0032] The rest of the production of the magnetocaloric/thermomagnetic materials is less
critical, provided that the last step comprises the quenching of the sintered and/or
heat treated solid at the inventive cooling rate. The process may be applied to the
production of any suitable thermomagnetic materials, as described above.
[0033] In step (a) of the process, the elements and/or alloys which are present in the later
thermomagnetic material are converted in a stoichiometry which corresponds to the
thermomagnetic material in the solid or liquid phase.
[0034] Preference is given to performing the reaction in stage a) by combined heating of
the elements and/or alloys in a closed vessel or in an extruder, or by solid phase
reaction in a ball mill. Particular preference is given to performing a solid phase
reaction, which is effected especially in a ball mill. Such a reaction is known in
principle; cf. the documents cited above. Typically, powders of the individual elements
or powders of alloys of two or more of the individual elements which are present in
the later thermomagnetic material are mixed in pulverulent form in suitable proportions
by weight. If necessary, the mixture can additionally be ground in order to obtain
a microcrystalline powder mixture. This powder mixture is preferably heated in a ball
mill, which leads to further comminution and also good mixing, and to a solid phase
reaction in the powder mixture. Alternatively, the individual elements are mixed as
a powder in the selected stoichiometry and then melted.
[0035] The combined heating in a closed vessel allows the fixing of volatile elements and
control of the stoichiometry. Specifically in the case of use of phosphorus, this
would evaporate easily in an open system.
[0036] The reaction is followed by sintering and/or heat treatment of the solid, for which
one or more intermediate steps can be provided. For example, the solid obtained in
stage a) can be subjected to shaping before it is sintered and/or heat treated.
[0038] In these processes, the composition obtained in stage a) is melted and sprayed onto
a rotating cold metal roller. This spraying can be achieved by means of elevated pressure
upstream of the spray nozzle or reduced pressure downstream of the spray nozzle. Typically,
a rotating copper drum or roller is used, which can additionally optionally be cooled.
The copper drum preferably rotates at a surface speed of from 10 to 40 m/s, especially
from 20 to 30 m/s. On the copper drum, the liquid composition is cooled at a rate
of preferably from 10
2 to 10
7 K/s, more preferably at a rate of at least 10
4 K/s, especially with a rate of from 0.5 to 2 x 10
6 K/s.
[0039] The melt-spinning, like the reaction in stage a) too, can be performed under reduced
pressure or under an inert gas atmosphere.
[0040] The melt-spinning achieves a high processing rate, since the subsequent sintering
and heat treatment can be shortened. Specifically on the industrial scale, the production
of the thermomagnetic materials thus becomes significantly more economically viable.
Spray-drying also leads to a high processing rate. Particular preference is given
to performing melt spinning.
[0041] Alternatively, in stage b), spray cooling can be carried out, in which a melt of
the composition from stage a) is sprayed into a spray tower. The spray tower may,
for example, additionally be cooled. In spray towers, cooling rates in the range from
10
3 to 10
5 K/s, especially about 10
4 K/s, are frequently achieved.
[0042] The sintering and/or heat treatment of the solid is effected in stage c) as described
above.
[0043] In the case of use of the melt-spinning process, the period for sintering or heat
treatment can be shortened significantly, for example to periods of from 5 minutes
to 5 hours, preferably from 10 minutes to 1 hour. Compared to the otherwise customary
values of 10 hours for sintering and 50 hours for heat treatment, this results in
a major time advantage.
The sintering/heat treatment results in partial melting of the particle boundaries,
such that the material is compacted further.
[0044] The melting and rapid cooling in stage b) thus allows the duration of stage c) to
be reduced considerably. This also allows continuous production of the thermomagnetic
materials.
[0045] The inventive magnetocaloric materials can be used in any suitable applications.
For example, they are used in coolers, heat exchangers or generators. Particular preference
is given to use in refrigerators.
[0046] The invention is illustrated in detail by examples.
Examples
Preparation of the magnetocaloric materials
[0047] 15 g of a mixture of Mn flakes, Si flakes and Fe
2P powder with a nominal stoichiometry of Mn
0.6Fe
1.4P
0.6Si
0.4 were ground in a planetary ball mill with a BPR (ball to powder weight ratio) of
4 for 10 hours. The powder obtained in the grinding was then pressed into cylinder
form and sealed in an ampoule under 200 mbar of argon gas. This was followed by a
sintering step at 1100°C for 2 hours and a heat treatment at 850°C for 20 hours. The
sample was removed after the furnace had been cooled down.
[0048] Samples with the nominal composition Mn
0.66Fe
1.34P
0.58Si
0.42, Mn
0.62Fe
1.38P
0.58Si
0.42 and Mn
0.66Fe
1.34P
0.56Si
0.44 were prepared in the same way.
Magnetic properties
[0049] The magnetic properties of the samples thus prepared were determined in a Quantum
Design MPMSXL SQUID magnetometer.
Figure 1 shows the temperature dependence of the magnetization M(Am2kg-1), determined with a sweep rate of 1 K/min in a magnetic field of 1 T. The temperature
dependence between the heating and cooling curves at the transition shows the thermal
hysteresis of the first-order magnetic transition for these samples. The value depends
on the particular sample, but is always less than 2 K in the samples studied. The
significant change in magnetization in the region of about 70 Am2kg-1 as a result of the sharp magnetic transition shows a large magnetocaloric effect.
Figure 2 shows the change in magnetic entropy -ΔSn(J/kg K) as a function of temperature for these samples. The change in magnetic entropy
was derived from the magnetic isotherms, measured at different temperatures close
to the transition, using the Maxwell equation. The values obtained for the change
in magnetic entropy are comparable to corresponding values for the so-called GMCEs
(giant magnetocaloric effect materials).
[0050] The unfilled symbols relate to a field change of 0-1 T. The filled symbols represent
a field change for 0-2 T.
1. Magnetokalorische Materialien der allgemeinen Formel
(MnxFe1-x)2+z P1-ySiy
mit der Bedeutung


2. Magnetokalorische Materialien nach Anspruch 1, wobei 0,25 ≤ x ≤ 0,35 ist.
3. Magnetokalorische Materialien nach Anspruch 1 oder 2, wobei 0,4 ≤ y ≤ 0,6 ist.
4. Magnetokalorische Materialien nach einem der Ansprüche 1 bis 3, wobei - 0,05 ≤ z ≤
0,05 ist.
5. Magnetokalorische Materialien nach einem der Ansprüche 1 bis 4, wobei sie eine hexagonale
Struktur des Fe2P-Typs aufweisen.
6. Verfahren zur Herstellung der magnetokalorischen Materialien nach einem der Ansprüche
1 bis 5 durch Festphasenumsetzung oder Flüssigphasenumsetzung der Ausgangselemente
oder Ausgangslegierungen für das Material, gegebenenfalls Abkühlen, nachfolgendes
Verpressen, Sintern und Tempern unter Inertgasatmosphäre und nachfolgendes Abkühlen
auf Raumtemperatur, oder durch Schmelzspinnen einer Schmelze der Ausgangselemente
oder Ausgangslegierungen.
7. Verwendung der magnetokalorischen Materialien nach einem der Ansprüche 1 bis 5 in
Kühlern, Wärmetauschern oder Generatoren.
8. Verwendung nach Anspruch 7 in Kühlschränken.
1. Matériau magnétocalorique de la formule générale
(Mn
xFe
1-x)
2+zP
1-ySi
y
où


2. Matériau magnétocalorique selon la revendication 1, dans lequel 0,25 ≤ x ≤ 0,35.
3. Matériau magnétocalorique selon la revendication 1 ou 2, dans lequel 0,4 ≤ y ≤ 0,6.
4. Matériau magnétocalorique selon l'une quelconque des revendications 1 à 3, dans lequel
-0,05 ≤ z ≤ 0,05.
5. Matériau magnétocalorique selon l'une quelconque des revendications 1 à 4, qui a une
structure hexagonale du type Fe2P.
6. Procédé de production des matériaux magnétocaloriques selon l'une quelconque des revendications
1 à 5 par conversion en phase solide ou conversion en phase liquide des éléments de
départ ou d'alliages de départ pour le matériau, éventuellement refroidissement, puis
pressage, frittage et traitement thermique sous atmosphère gazeuse inerte et par la
suite refroidissement jusqu'à la température ambiante, ou par filage à chaud d'une
masse fondue des éléments de départ ou d'alliages de départ.
7. Utilisation des matériaux magnétocaloriques selon l'une quelconque des revendications
1 à 5 dans des refroidisseurs, des échangeurs de chaleur ou des générateurs.
8. Utilisation selon la revendication 7 dans des réfrigérateurs.