[0001] The present invention relates to ferromagnetic particles for magnetoreological or
electroreological fluid compositions, of the type including a carrier fluid and ferromagnetic
particles dispersed in such fluid.
[0002] The magnetoreological or electroreological fluid compositions show the essential
feature of a variation of apparent viscosity when subjected to a magnetic field or
to an electric field. They include ferromagnetic particles, typically with a diameter
in the order of a micron, dispersed inside a carrier fluid. In the case of magnetoreological
fluids, in the presence of a magnetic field the particles magnetize themselves and
orientate their magnetic dipole in parallel to the lines of force of the magnetic
field, organizing themselves in particle chains within the fluid. The particle chains
act so as to increase the apparent viscosity or overall outflow resistance of the
fluid. Without the magnetic field, the particles return in a non organized or free
state and the apparent viscosity or outflow resistance of the material is reduced
in a corresponding way. The electroreological fluids have a similar behavior and respond
to an electric field instead of a magnetic field.
[0003] Both the electroreological materials and the magnetoreological materials are useful
for supplying variable damping forces within such devices as dampers, impact absorption
devices and elastomeric supports.
[0004] The magnetoreological or electroreological fluid compositions known so far show,
however, a drawback: the ferromagnetic particles dispersed in the carrier fluid essentially
consist of pure metals o their alloys, which have by definition molecular weights
greater than the carrier fluid and then show a large tendency to settle down, by compromising
the behavior features of the general magnetoreological fluid.
[0005] The problem of the sedimentation may be overcome by performing a mixing of the magnetoreological
fluid composition. However, this operation cannot be easily carried out when the composition
is for example within a damper.
[0006] This problem has been faced in the past by changing, for example, the composition
of the carrier fluid itself, namely using a high density fluid, oil. Another known
solution consists in the addition to the carrier fluid of a surfactant component,
which helps in keeping the ferromagnetic particles in suspension by chemical interactions.
These solutions, however, are not satisfactory since, in the first case, the required
viscosity difference between the active state and the passive state fails and, in
the second case, the chemical bonds result of a poor entity.
[0007] For the purpose of solving such problems, the Applicant has already proposed in its
Italian Patent application T02003A410 and in its corresponding International Patent
application PCT/IB2003/006282 (both still confidential at the registration date of
the present application) a magnetoreological fluid composition wherein the ferromagnetic
particles show a multilayer construction, with a core comprised of a first material,
surrounded by a shell, formed with a second material.
[0008] In the above suggested solution, the shell of the ferromagnetic particle is formed
with a ferromagnetic material, while the core is formed of a material having a specific
weight lower than the carrier fluid, for example a polymeric material, and shows an
empty middle cavity, if necessary.
[0009] The object of the present invention is to overcome the problem of the sedimentation
above disclosed, by providing at the same time a magnetoreological or electroreological
fluid further improved with respect to the prior proposal, also from the point of
view of an increase of the magnetoreological or electroreological effect, a reduction
of the response time of the fluid following to an activation thereof and a greater
length of the fluid and the mechanical parts which contact therewith.
[0010] In view of attaining one or more of the aforesaid objects, the invention aims at
a ferromagnetic particle for magnetoreological or electroreological fluid compositions
including a carrier fluid and ferromagnetic particles dispersed in the carrier fluid,
said ferromagnetic particles having a multilayer construction, with a core of a first
material, surrounded by a shell of a second material, wherein said first material
forming the core is a ferromagnetic material, wherein said second material forming
the shell has a specific weight lower than the first material, and wherein the core
of ferromagnetic material shows a form anisotropy.
[0011] In the preferred embodiment, the ferromagnetic material core shows an elongated conformation,
with a greater size and a lower size. Preferably, the greater size is substantially
equal to an outer size of the particle. Always in the case of the preferred embodiment,
the lower size of the ferromagnetic material core of each particle is lower than 1/4
of the greater size, and preferably is lower than 1/8 of such greater size.
[0012] Indeed, the ferromagnetic material core may be needle-shaped, or elongated ellipsoid-shaped
or be needle-shaped or still simply having the form of an elongated bar.
[0013] By virtue of the above-mentioned features, and in particular thanks to the form anisotropy
of the ferromagnetic core, it is possible to obtain, for instance, magnetoreological
fluids showing a more effective dipole-dipole interaction between the particles on
the same outer magnetic field applied. This ensures a more rapid alignment of the
particles to the lines of force of the outer magnetic field, with a consequent reduction
of the response times, as well as a greater attraction force between the particles,
with a consequent increase of the magnetoreological effect.
[0014] Again according to the invention, the shell of the particle, which can generally
be comprised of any material having a specific weight lower than the material forming
the core, and preferably also lower than the carrier fluid, is made of a polymeric
material. A consequence of the narrow and elongated shape of the metal core is that
the volume rate of the particle filled up by the second low specific weight material
is greater, with a consequent reduction of the specific weight of the whole particle.
This allows to even better contrast the tendency to sedimentation of the particles
in the resting fluid. Moreover, the fact of having the outer shell of the particles
made of polymeric material gives rise to further important benefits. In fact, a reduction
of the abrasion phenomena of the mechanical parts contacting the fluid occurs, due
to the fact that the ferromagnetic material is coated with a polymeric material. For
the same reason, a reduction of the "shear thickening" phenomenon occurs as well,
caused by the sub-micrometer powders produced by the rubbing of the ferromagnetic
particles with each other in the solutions wherein the ferromagnetic material is exposed
to the fluid.
[0015] Of course, the invention is also directed both to the ferromagnetic particles per
se, as above defined, and to a magnetoreological or electroreological fluid including
such particles.
[0016] Finally, the invention also relates to a method for the production of ferromagnetic
particles for magnetoreological or electroreological fluid compositions, which includes
the step of forming a plurality of cores of ferromagnetic material having an elongated
conformation, with a greater size and a lower size, and the step of forming around
each core a shell of a material having a specific weight lower than the material constituting
the core. The ferromagnetic material cores may be, for example, carried out by chemical
synthesis or through extrusion and/or drawing of a continuous wire and subdivision
thereof by following cuts in a plurality of elongated bars. The shell may be carried
out around each core through an emulsion polymerization step. Alternatively, it can
be forecast a co-extrusion method of a metal and the polymeric material, which gives
rise to the formation of an elongated wire with a ferromagnetic inner core and a polymeric
shell, after which one proceeds through cut operations following to the division of
the multilayer wire thus obtained in a plurality of elongated multilayer bars. In
this case, the whole particle takes the form of an elongated bar.
[0017] Further features and advantages of the invention will result from the following description
with reference to the enclosed drawings, which are given by mere way of not limitative
example, wherein:
- figure 1 is a diagrammatic sectional view of a ferromagnetic particle according to
the invention,
- figures 2, 3 show a plurality of particles according to the invention in the resting
condition and in the active condition, respectively, of the magnetoreological fluid,
and
- figures 4, 5 and 6 diagrammatically show three different methods for obtaining the
ferromagnetic particles according to the invention.
[0018] Figure 1 shows, by way of example, a preferred embodiment of a ferromagnetic particle
according to the invention. The particle, generally shown with numeral 1, includes
a core 2 of ferromagnetic material, preferably consisting in low coercivity ferromagnetic
material (that is, activable with a low magnetic field), such as, for example, iron,
cobalt, nickel or their alloys. The ferromagnetic core 2 is acicular or needle-shaped,
or elongated ellipsoid-shaped, with a longitudinal axis 2a and a cross section with
a circular shape. More generally, the core 2 may have any elongated shape with a greater
size L, and a lower size d. For instance, the core 2 could be, instead of being elongated
ellipsoid- or needle-shaped, elongated bar-shaped with a circular or quadrangular
or polygonal section.
[0019] Preferably, the lower size d is lesser than 1/4 of the greater size L. Still preferably,
the lower size is lesser than 1/8 of the greater size L.
[0020] The ferromagnetic core 2 is surrounded by a shell 3 consisting in a material having
a specific weight lower than the ferromagnetic material forming the core 2. Preferably,
the material forming the shell 3 has a specific weight also lower than the specific
weight of the carrier fluid wherein the particles according to the invention are intended
to be dispersed. In the preferred embodiment, the material forming the shell 3 is
a polymeric material. Generally, it can be selected from the group consisting in polymeric
foams, microporous polymers, glass, aluminosilicates.
[0021] The specific weight of the material comprising the shell 3 is preferably lower than
1 g/cm
3.
[0022] Always in the event of the preferred embodiment shown, the shell 3 is obtained in
such a way to impart to the particle an overall substantially spherical or slightly
ellipsoidal shape. In the shown example, further, the greater size L of the metal
core 2 substantially corresponds with the outer size of the particle 1, in this case
therefore with the diameter of the particle 1.
[0023] The narrow and elongated shape of the metal core 2 permits to obtain different advantages.
First of all, because of the particular conformation of the core 2, the total volume
rate of the particle 1 filled up by the low specific weight material 3 is high, which
allows to reduce to a minimum the tendency of the particles to settle down when they
are dispersed in a resting condition fluid. Moreover, the above described conformation
of the core 2 imparts to such core a form anisotropy which renders more effective
the dipole-dipole interaction between the particles on the same outer magnetic field
applied. This ensures a more rapid alignment of the particles to the lines of force
of the magnetic field. Figure 2 of the enclosed drawings shows a plurality of particles
1 dispersed in a fluid in a resting condition, and figure 2 shows the particles in
the aligned condition wherein they arrange following to the application of a magnetic
field H. In figures 2, 3 the numeral 4 is the fluid wherein the particles 1 are dispersed.
The magnetoreological fluid according to the invention therefore shows a reduced response
time following to its activation. A further advantage lies in a greater attraction
force between the particles with a consequent increase of the magnetoreological effect.
[0024] The predisposition of an outer shell of polymeric material further gives rise to
the additional benefits which have already been above disclosed: reduction of the
abrasion phenomena of the mechanical parts contacting the fluid and reduction of the
"shear thickening" phenomenon caused by the sub-micrometer powders produced by the
rubbing of the ferromagnetic particles with each other, by virtue of the protective
action exerted by the polymeric material which covers them.
[0025] With reference to figure 4, the ferromagnetic particles can be obtained by carrying
out, at first, the acicular metal cores 2 through chemical synthesis and by carrying
out, secondly, the shell 3 by emulsion polymerization.
[0026] According to a variation (figure 5), the metal cores 2 are obtained in a form of
an elongated bar by means of an extrusion operation and/or continuous wire drawing
20 which is then subdivided through following cuts executed by a cutting tool 21.
[0027] Figure 6 relates to a further alternative method, wherein a co-extrusion method of
the metal and the polymer is carried out by a co-extrusion device 22 which allows
to obtain a continuous wire 23 having a metal core coated with a shell of polymeric
material, which is then subdivided by a cutting tool 21 in a plurality of short bars
1, forming the ferromagnetic particles according to the invention. In this case, each
particle has an overall conformation in the form of an elongated bar with a ferromagnetic
core.
[0028] Obviously, further without prejudice to the principle of the invention, construction
details and embodiments could widely vary with respect to what has been described
and shown by mere way of example, without leaving the ambit of the present invention.
[0029] In particular, the ferromagnetic particle according to the invention is usable both
for carrying out magnetoreological fluids and for carrying out electroreological fluids.
1. Ferromagnetic particle for magnetoreological or electroreological fluid compositions
including a carrier fluid (4) and ferromagnetic particles (1) dispersed in the carrier
fluid (4), said ferromagnetic particles having a multilayer structure, with a core
(2) of a first material, surrounded by a shell (3) of a second material,
wherein said first material forming the core (2) is a ferromagnetic material,
wherein said second material forming the shell (3) has a specific weight lower than
the first material (2),
wherein the core (2) of ferromagnetic material shows a form anisotropy.
2. Ferromagnetic particle according to claim 1, characterized in that the core (2) of ferromagnetic material has an elongated conformation, with a greater
size (L) and a lower size (d).
3. Ferromagnetic particle according to claim 1, characterized in that the greater size (L) of the core (2) is substantially equal to an outer size of the
particle (1), which can be spherical- or slightly ellipsoidal-shaped.
4. Ferromagnetic particle according to claim 2, characterized in that the lower size (d) of the core is lesser than 1/4 of the greater size (L), and preferably
is lesser than 1/8 of the greater size.
5. Ferromagnetic particle according to claim 4, characterized in that the core (2) has a form of an elongated ellipsoid.
6. Ferromagnetic particle according to claim 4, characterized in that the core (2) has a form of an elongated bar.
7. Ferromagnetic particle according to claim 1, wherein the first material is a low coercivity
ferromagnetic material.
8. Ferromagnetic particle according to claim 7, wherein the ferromagnetic material is
selected among iron, cobalt, nickel and their alloys.
9. Ferromagnetic particle according to claim 1, characterized in that the second material is selected from a group consisting in polymeric substances,
glass, aluminosilicates.
10. Ferromagnetic particle according to claim 9, characterized in that the second material with a low specific weight is selected among polymeric foams
and micro-porous polymers.
11. Ferromagnetic particle according to claim 1, characterized in that said second material has a specific weight lower than 1 g/cm3.
12. Magnetoreological or electroreological fluid composition, including a carrier fluid
and ferromagnetic particles according to one or more of the preceding claims.
13. Method for the manufacturing of ferromagnetic particles according to one or more of
claims 1-11, characterized in that it includes a step of obtaining a core (2) of ferromagnetic material having a form
anisotropy, and a following step of obtaining a shell (3), consisting in a material
having a specific weight lower than the material forming the core (2), above said
core (2).
14. Method according to claim 13, characterized in that the ferromagnetic core (2) is obtained by chemical synthesis.
15. Method according to claim 14, characterized in that the cores (2) of the ferromagnetic particles are obtained through following cuts
of a continuous wire obtained by extrusion and/or drawing.
16. Method according to claim 13, characterized in that a continuous wire, having a ferromagnetic material core surrounded by a shell, is
obtained through a co-extrusion method, and in that such continuous wire is divided through following cutting operations in a plurality
of ferromagnetic particles (1) each having an elongated bar conformation.