The present invention generally refers to fans for cooling internal combustion engines, particularly (though not exclusively) tractors, farm machinery as well as earth moving machines. In applications thus made and for some operation conditions it is necessary to regulate the airflow generated by the cooling fans in such a manner to facilitate removal of sludge and dirt from the engine radiator of such vehicles, in such a manner to restore ideal thermal exchange conditions. In order to attain this, required is the command-controllable variation of the geometric configuration of the blades as well as, for short operation intervals, the possible inversion of the airflow maintaining the direction and speed of rotation of the fan unaltered.
More in particular the invention regards a variable geometry cooling fan, of the type comprising a plurality of blades rotatable around an axis of rotation, wherein the configuration of the blades may be varied by using a shape memory material.
Use of shape memory materials to vary the characteristics of the airflow generated by the fan have already been proposed in the variable geometry cooling fans industry. Typically, as described for example in the European patent EP-1247992B1, the blades are connected to a hub through respective shafts made of shape memory material, deformable under thermal effect in such a manner for example to increase their angle of incidence proportionally with respect to the temperature rise.
In other known solutions, like the one described in the European patent application EP-A1-0040532, the blades are entirely and exclusively made up of shape memory material.
However, solutions thus known are scarcely reliable and unsatisfactory from a functional point of view, in particular regarding the mechanical and resistance characteristics of the blades and thus of the fan in its entirety.
The object of the invention is that of overcoming the abovementioned drawback and providing a variable geometry fan of the type defined above which is made for attaining even inversions of the generated airflow—in an instantaneous and efficient manner—maintaining the direction and speed of rotation unaltered on one hand, and guaranteeing high mechanical resistance properties even after a long period of use on the other.
According to the invention, such object is primarily obtained due to the fact that the blades of the fan have an elastically deformable composite structure including at least one shape memory alloy foil adapted to be heated by means of electric current to vary the geometry of the blade.
In a first embodiment of the invention, the composite structure of each blade includes a matrix made of thermosetting or thermoplastic polymer material, possibly reinforced with fibres, incorporated inside which is the shape memory alloy foil.
According to a first variant, the composite structure includes two polymer material sheets interposed and adhering between which is the shape memory alloy foil.
According to a further variant, the composite structure is a laminated structure comprising a series of polymer material sheets inserted and adhering between which is the shape memory alloy foil.
According to a further and currently preferred variant, the composite structure includes a polymer material sheet made in its thickness with cavities inside which respective shape memory alloy foils are inserted.
Furthermore, the invention has the object of a method for manufacturing blades for the variable geometry fan.
Now, the invention shall be described in detail with reference to the attached drawings, strictly provided for exemplifying and non-limiting purposes, wherein:
As stated in the above, the invention particularly regards a fan for cooling internal combustion engines of farm machinery and earth moving machines required in which, in a command-controllable manner and for short operation intervals, is an inversion of the airflow generated by the fan, maintaining its direction and speed of rotation unaltered.
The fan comprises, in a per se known manner and thus not illustrated in detail, a hub which defines the rotational axis of the fan and bears a crown of blades, one of which is represented in
The blade, indicated in its entirety by 1 in the figure, is illustrated schematically in a generally rectangular elementary geometric shape: it should however be observed that the blade shall be normally shaped with specific profiles suitably studied in order to maximise their fluid dynamic efficiency.
According to the distinctive characteristic of the invention, each blade 1 of the fan has an elastically deformable composite structure including a matrix made of thermosetting or thermoplastic polymer material, possibly reinforced with fibres, and at least one shape memory metal alloy foil, typically a NiTi-based alloy.
In the case of the example illustrated in
Such composite structure of the blade 1 may alternatively also have different configurations not illustrated in detail.
For example, according to a first variant, the composite structure may be made by incorporating the shape memory alloy foil 2 into a matrix made of thermosetting polymer material, then subjected to a curing process, or made of thermoplastic polymer material. In both cases the matrix is possibly reinforced with fibres.
In a second variant, the blade 1 may have a laminated structure made up of several thermosetting polymer sheets, possibly reinforced with suitably oriented fibres, inserted between which is the shape memory foil 2.
According to further variants, provided for can be several shape memory foils, possibly arranged in preset zones of the blade, for example at its free end.
Due to this configuration, the geometry of each of the blades 1 making up the fan according to the invention may be actively controlled by exploiting the properties of the material of which the foil 2 is made, without requiring complex mechanical devices i.e. fluid-based, by simply varying its temperature through the passage of electric current supplied thereto by means of methods known to a man skilled in the art.
As a matter of fact, the shape memory alloy foil 2 is subjected—due to the temperature variation—to an austenitic-martensitic phase transition (martensitic=stable phase at low temperature; austenitic=stable phase at high temperature).
In the fan manufacturing method according to the invention, before making the composite structure of each blade 1, as described above, the relative shape memory foil 2 is subjected to a particular thermomechanical treatment in advance in such a manner to impart a general helix or a differently flexional or torsional-flexional twisted shape thereto, such shape being “remembered” in the high temperature austenitic phase.
This thermomechanical treatment provides for, starting from an initial undeformed configuration, a step for deforming the foil 2 according to a final preset configuration, a subsequent step for heating at an austenitic temperature and then a final step for cooling below the final temperature of martensitic transformation, returning the foil 2 to the initial configuration.
The foil 2 thus returned to the initial configuration, for example generally flat as schematically illustrated in
The effect of a passage of suitably controlled electric current, through the shape memory foil 2, determines its heating due to the Joule above the transformation temperature. The consequent transformation of the martensitic-austenitic phase leads to the passage of the foil to the final configuration, for example helix-shaped, memorised in the manner explained above with preliminary thermomechanical treatment. The recovery of the final shape generates an elastic deformation of the entire structure and thus of the blade 1, in the manner represented in
Through a suitable dimensioning of the system, the command-controllable variation of the geometry of the fan blades may generate the nullification or even the inversion of the generated airflow.
Upon cutting off the power supply, the shape memory foil 2 of each blade 1 cools, with the consequent martensitic transformation. The elastic return of the polymer material to the composite structure thus allows each blade 1 of the fan to reacquire the initial undeformed configuration, simultaneously and automatically preloading the shape memory foil 2. At this point, the fan is ready for the subsequent activation.
Instead of exploiting the elastic return of the polymer material of the composite structure, i.e. additionally to the same, it can also be provided for that the shape memory foil 2 be subjected to a two-way treatment, i.e. by memorising its initial undeformed configuration through a proper well known thermal-mechanical process.
The system for simultaneous power supply to the fan blades is attainable in a particularly easy and inexpensive manner, in such a manner to exploit the aforedescribed treatment performed in advance on the shape memory foils of the blades to generate the deformation of the entire fan structure. Through a suitable modulation of the power supply, constant adjustment of the geometric variation of the blades and thus of the fan in its entirety can be obtained, hence optimising energy efficiency.
A further variant of the blade according to the invention is represented in
In this variant, the composite structure includes a polymer material sheet 4 made in its thickness with cavities 5 inserted inside which are the respective shape memory alloy foils 6. The cavities 5 are typically extended into configurations spaced in a parallel manner in the direction of the width of the polymer material sheet 4, and the shape memory alloy foils 6 are made up of bars fitted into the cavities 5.
Preferably, the cavities 5 are closed at one end, in a pocket-like manner, and each shape memory alloy bar 6 is rigidly connected to the sheet 4 only in proximity to the closed end of the respective cavity 5, where schematically indicated with 7, through any suitable means (nailing, gluing, welding etc).
The blade manufacturing process according to
In the further variant depicted in
Basically, the variant of
Obviously, the construction details and the embodiments may widely vary with respect to the description and illustration provided above, without for this reason departing from the scope of the present invention as defined in the following claims.
Number | Date | Country | Kind |
---|---|---|---|
TO2008A000013 | Jan 2008 | IT | national |
08172921.2 | Dec 2008 | EP | regional |