The present invention relates to a car provided with a ventilation channel.
Currently a high performance car is driven by an internal combustion engine which is provided with cooling circuit having at least one radiator to release the excess heat to the outside. The cooling circuit radiator is normally arranged inside a ventilation channel which extends between an inlet opening (or an air intake) through which fresh air flows in and an outlet opening through which hot air flows out.
It is essential to guarantee the cooling circuit the capacity to adequately cool the internal combustion engine in all conditions and therefore at all speeds; consequently, the dimensions of the inlet opening of the ventilation channel must be big enough to guarantee that an adequate air flow rate circulates through the ventilation channel (and therefore through the radiator) also at low speed (i.e. below 100-120 km/h which, for a high performance car, are modest speeds when compared with the maximum speed which exceeds 300 km/h). In other words, the inlet opening of the ventilation channel must be big enough to guarantee an adequate air flow rate also at low speed.
However, the bigger the dimension of the ventilation channel inlet opening, the greater the aerodynamic drag generated by the ventilation channel; therefore a large inlet opening of the ventilation channel penalizes the aerodynamic drag and thus limits the maximum speed that may be reached by the car. In this regard it should be observed that at high speeds (i.e. above 180-200 km/h), adequate cooling of the internal combustion engine would be guaranteed also in the presence of a relatively small inlet opening of the ventilation channel since, other factors being equal, the air flow rate through the ventilation channel increases proportionally to the speed.
To summarise, the dimension of the ventilation channel inlet opening is always a compromise between the need to guarantee the internal combustion engine adequate cooling at low speed (which requires a large inlet opening) and the need to minimise the aerodynamic drag at high speed (which requires a small inlet opening). Obviously the compromise tries to balance these conflicting needs in the best possible way, but the solution is not optimal for either of said conflicting needs.
The patent application US2012323448A1 describes a car comprising a radiator and two ventilation channels arranged one above the other, each of which conveys towards the radiator fresh air flowing in through a corresponding inlet opening; the inlet opening of the upper ventilation channel is provided with a shutter which is coupled to a front grille and is opened when greater cooling of the radiator is necessary. However, the solution proposed in the patent application US2012323448A1 does not allow low aerodynamic drag values to be obtained at high speed.
The object of the present invention is to supply a car provided with a ventilation channel, said car being free from the drawbacks described above and, at the same time, easy and inexpensive to produce.
According to the present invention, a car is supplied provided with a ventilation channel, as claimed in the attached claims.
The present invention will now be described with reference to the attached drawings, which illustrate a non-limiting implementation example thereof, in which:
In
Between the front wheels 2 and the rear wheels 3 a passenger compartment 4 is obtained which is accessed via a pair of doors 5; the passenger compartment 4 is delimited at the front by a windscreen 6.
The chassis is covered by a car body 7 which comprises, among other things, a front bumper 8 and a front bonnet 9. The front bonnet 9 is connected at the front to the front bumper 8 and is connected at the back to the windscreen 6.
The car 1 comprises a cooling circuit to cool the internal combustion engine having a pair of radiators 10 (schematically illustrated in
As illustrated in
As illustrated in
According to a preferred embodiment illustrated in the attached figures, the shutter 19 is mounted revolvingly to rotate about an axis of rotation 20 arranged horizontally and transversally between the engagement position (illustrated in
According to a preferred embodiment illustrated in the attached figures, an elastic element 21 is provided (for example a tape spring) which pushes the shutter 19 towards the engagement position with a calibrated elastic force. The calibrated elastic force generated by the elastic element 21 is such that the aerodynamic pressure of the air on the shutter 19 determines movement of the shutter 19 from the engagement position (illustrated in
It is useful to observe that the aerodynamic duct 16 is completely free, i.e. inside it is completely devoid of elements that may interfere with (i.e. slow down, disturb) the passage of the air, to allow a flow of air at high speed. In other words, inside the aerodynamic duct 16 no external element is arranged that may interfere with (i.e. slow down, disturb) the passage of the air to maximise the speed of the air through the aerodynamic duct 16.
In the embodiment illustrated in the attached figures, the inlet opening 17 of the aerodynamic duct 16 is obtained through the front bumper 8 and preferably the inlet opening 17 of the aerodynamic duct 16 is obtained through a horizontal wall (i.e. parallel to the road surface 15) of the front bumper 8. Consequently, in the engagement position (illustrated in
In the embodiment illustrated in the attached figures, also the outlet opening 18 of the aerodynamic duct 16 is obtained through the front bumper 8. Consequently, the aerodynamic duct 16 is entirely obtained through the front bumper 8, i.e. the aerodynamic duct 16 develops entirely within the front bumper 8.
In the embodiment illustrated in the attached figures, one single aerodynamic duct 16 is provided arranged centrally; in particular, in the embodiment illustrated in the attached figures, the inlet opening 17 of the aerodynamic duct 16 is arranged centrally between the inlet openings 12 of the two ventilation channels 11. According to an alternative and perfectly equivalent embodiment not illustrated, two (or three) distinct and separate aerodynamic ducts 16 symmetrically distributed with respect to the longitudinal axis of the car 1 could be provided.
According to the illustration of
Consequently, it is evident that the function of the aerodynamic duct 16 controlled by the shutter 19 is to reduce (slightly) the front aerodynamic load when the car 1 exceeds a predetermined speed threshold; said reduction in the front aerodynamic load serves to “lighten” the steering of the car 1 when the car 1 exceeds a predetermined speed threshold. In this way it is possible to effectively counter the tendency of the steering of the car 1 to become too “heavy” at high speed (indicatively above 200 km/h) and therefore it is possible to improve the steering sensation at high speed.
Thanks to the presence of the aerodynamic duct 16 controlled by the shutter 19 it is possible to obtain an optimal steering sensation at all speeds and without having to accept lowest common denominator compromises. In other words, due to the presence of the aerodynamic duct 16 controlled by the shutter 19, the steering of the car 1 is not too “light” at low speeds and at the same time not too “heavy” at high speed; in fact, at high speed the shutter 19 of the aerodynamic duct 16 opens, reducing (slightly) the front aerodynamic load and therefore “lightening” the steering of the car 1.
Another positive effect made possible by the aerodynamic duct 16 is to balance at high speed the aerodynamic load between the rear axle and the front axle, or give the car 1 a balanced aerodynamic load at all speeds. In other words, as the speed increases, the front aerodynamic load (i.e. the load on the front axle) tends to increase more than the rear aerodynamic load (i.e. the load on the rear axle) and therefore at high speed an unbalance may occur between the front aerodynamic load and the rear aerodynamic load (i.e. at high speed the aerodynamic load is unbalanced towards the front). Thanks to the action of the aerodynamic duct 16, it is possible to contain (reduce) the increase in the front aerodynamic load, favouring correct balancing of the aerodynamic load between the rear axle and the front axle at all speeds. It is important to observe that correct balancing of the aerodynamic load between the rear axle and the front axle allows optimal operation of both the front wheels 2 and the back wheels 3, so that all four wheels 2 and 3 offer the maximum roadholding possible.
A further positive effect made possible by the aerodynamic duct 16 is a (small) reduction in the forward aerodynamic drag of the car 1 at high speed (i.e. when the shutter 19 of the aerodynamic duct 16 opens). In fact, when the shutter 19 of the aerodynamic duct 16 opens, the forward aerodynamic drag of the car 1 decreases (slightly).
It is useful to observe that in the present invention the aerodynamic duct 16 is mainly used to obtain an optimal steering sensation at all speeds and is also used to obtain correct balancing of the aerodynamic load between the rear axle and the front axle and to obtain a reduction in the forward aerodynamic drag of the car 1 at high speed.
Alternatively, the aerodynamic duct 16 could be mainly used to obtain correct balancing of the aerodynamic load between the rear axle and the front axle.
According to the illustrations of
According to a preferred embodiment illustrated in the attached figures, each shutter 25 is mounted revolvingly to rotate about an axis of rotation 26 arranged vertically between the engagement position (illustrated in
According to a preferred embodiment illustrated in the attached figures, for each aerodynamic duct 22 an elastic element 27 is provided (for example a torsion spring) which pushes the shutter 25 towards the engagement position with a calibrated elastic force. The calibrated elastic force generated by each elastic element 27 is such that the aerodynamic pressure of the air on the shutter 25 determines movement of the shutter 25 from the engagement position (illustrated in
It is useful to observe that each aerodynamic duct 22 is completely free, i.e. inside it is completely devoid of elements that could interfere with (i.e. slow down, disturb) the passage of the air, to allow a flow of air at high speed. In other words, inside the aerodynamic duct 22 no external element is arranged that could interfere with (i.e. slow down, disturb) the passage of the air in order to maximise the speed of the air through the aerodynamic duct 22.
In the embodiment illustrated in the attached figures, the inlet opening 12 of each ventilation channel 11 and the inlet opening 23 of the corresponding aerodynamic duct 22 are obtained beside each other through the front bumper 8. Preferably, each aerodynamic duct 22 is entirely obtained through the front bumper 8.
In the embodiment illustrated in the attached figures, the outlet opening 24 of each aerodynamic duct 22 is arranged proximately to (in the vicinity of, immediately behind) the inlet opening 12 of the corresponding ventilation channel 11.
According to the preferred embodiment illustrated in the attached figures, the terminal part of each aerodynamic duct 22 in the area of the outlet opening 24 of the aerodynamic duct 22 is oriented transversally to the ventilation channel 11 so that (as illustrated in
In the preferred embodiment illustrated in the attached figures, two twin ventilation channels 11 are provided arranged on opposite sides of the car 1 and two aerodynamic ducts 22, each of which leads to the inside of a corresponding ventilation channel 11 and is coupled to a corresponding shutter 25. The inlet openings 23 of the two aerodynamic ducts 22 are arranged beside each other in a central position, i.e. between the inlet openings 12 of the two ventilation channels 11. Preferably, the inlet openings 23 of the two aerodynamic ducts 22 are separated from each other by a separating body 28 with triangular section.
According to the illustration of
Consequently, it is evident that the function of the aerodynamic ducts 22 controlled by the shutters 25 is to reduce the flow rate of the air flowing through the ventilation channels 11 when the car 1 exceeds a predetermined speed threshold; said reduction in the flow rate of the air flowing through the ventilation channels 11 serves to reduce the aerodynamic drag during forward movement of the car 1 when the car 1 exceeds a predetermined speed threshold. In this way it is possible to counter the tendency of the ventilation channels 11 to convey an excessive air flow rate (i.e. oversized for the actual cooling requirements of the radiators 10) at high speed at the expense of the aerodynamic drag during forward movement of the car 1.
Due to the presence of the aerodynamic ducts 22 controlled by the shutters 25 it is possible to guarantee a adequate flow of air through the ventilation channels 11 when the car 1 is at low speed (i.e. when the aerodynamic ducts 22 are closed by the shutters 25) and at the same time it is possible to avoid the ventilation channels 11 conveying an excessive air flow rate (oversized for the actual cooling requirements of the radiators 10) at high speed (i.e. when the aerodynamic ducts 22 are open) at the expense of the aerodynamic drag during forward movement of the car 1.
In the preferred embodiment illustrated in the attached figures, the aerodynamic duct 16 is arranged centrally immediately below the two aerodynamic ducts 22; therefore, and as clearly illustrated in
The car 1 described above has numerous advantages.
Due to the action of the aerodynamic duct 16 controlled by the shutter 19 it is possible to obtain an optimal steering sensation at all speeds and therefore without having to accept lowest common denominator compromises.
Due to the action of the aerodynamic ducts 22 controlled by the shutters 25 it is possible to guarantee an appropriate flow of air through the ventilation channels 11 when the car 1 is at low speed without penalizing the aerodynamic drag during forward movement of the car 1 at high speed.
The aerodynamic ducts 16 and 22 may be easily obtained inside the front bumper 8 without negatively affecting in any way the front boot or the other components of the car 1.
The aerodynamic ducts 16 and 22 do not entail any significant increase in weight, since they are “holes” without any weight and the corresponding shutters 19 and 25 are of small size (and therefore also low weight since they may be made of moulded plastic).
Lastly, the car 1 described above is easy and inexpensive to produce, since the aerodynamic ducts 16 and 22 may be easily obtained inside the front bumper 8 when the latter (made of plastic) is injection moulded.
Number | Date | Country | Kind |
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BO2013A0464 | Aug 2013 | IT | national |
Number | Name | Date | Kind |
---|---|---|---|
4976489 | Lovelace | Dec 1990 | A |
8091516 | Preiss | Jan 2012 | B2 |
8544583 | Ajisaka | Oct 2013 | B2 |
8708075 | Maurer | Apr 2014 | B2 |
8794363 | Wolf | Aug 2014 | B2 |
8892314 | Charnesky | Nov 2014 | B2 |
20080257286 | Harich | Oct 2008 | A1 |
20120323448 | Charnesky et al. | Dec 2012 | A1 |
Number | Date | Country |
---|---|---|
10 2008 020 399 | Oct 2009 | DE |
WO 2005102761 | Nov 2005 | WO |
WO 2007031344 | Mar 2007 | WO |
Number | Date | Country | |
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20150047803 A1 | Feb 2015 | US |