BALANCED PRESSURE TWO-ZONE FLUIDIC VALVE WITH SHAPE MEMORY ALLOY CONTROL ELEMENT
20220205434 · 2022-06-30
Assignee
Inventors
Cpc classification
F16K37/0033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05C2251/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K37/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/0614
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/126
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03G7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates in a first aspect to a balanced pressure two-zone fluidic valve (10) with a shape memory alloy control element wherein control of the valve (10) is achieved by deformation of a deformable element (14) upon actuation of a shape memory alloy wire (15) to move a plunger (16), and in a second aspect to the use of said valve for controlling a fluid flow.
Claims
1. A fluidic valve comprising a first zone (I) and a second zone (II) separated by an aperture sealed by a deformable element, wherein in said first zone (I) there is a shape memory alloy wire secured to a stationary surface and acting on a first surface of said deformable element either directly or through a piston, wherein in said second zone (II) there are at least two ports and a plunger connected to a second surface of the deformable element, opposite to said first surface, and suitable to close one of said ports, and wherein a bypass channel permanently connects the first zone (I) to the second zone (II) through a first end aperture positioned in the first zone (I) and a second end aperture positioned in the second zone (II).
2. The fluidic valve according to claim 1, wherein the shape memory alloy wire is directly connected to the first surface of the deformable element either at its median portion in a V-shaped configuration or at an extremity.
3. The fluidic valve according to claim 1, wherein the shape memory alloy wire is arranged in a V-shaped configuration such that its median portion engages a first end of a piston extending through the stationary surface substantially perpendicularly to the first surface of the deformable element, with the second end of the piston connected thereto and its first end located on the opposite side of the stationary surface with respect to the deformable element.
4. The fluidic valve according to claim 1, wherein the deformable element is selected from bellows and membranes, preferably corrugated membranes.
5. The fluidic valve according to claim 1, wherein the deformable element is made of metal.
6. The fluidic valve according to claim 1, wherein a ratio between a cross-sectional area of the bypass channel and a cross-sectional area of the ports is comprised between 0.1 and 1.
7. The fluidic valve according to claim 1, wherein a diameter of the shape memory alloy wire is comprised between 25 μm and 500 μm.
8-9. (canceled)
10. The fluidic valve according to claim 2, wherein the shape memory alloy wire is directly connected to the first surface of the deformable element at its median portion in a V-shaped configuration.
11. The fluidic valve according to claim 2, wherein the shape memory alloy wire is directly connected to the first surface of the deformable element at an extremity.
12. The fluidic valve according to claim 4, wherein the deformable element is a bellow.
13. The fluidic valve according to claim 4, wherein the deformable element is a membrane.
14. The fluidic valve according to claim 4, wherein the deformable element is a corrugated membrane.
Description
[0010] The invention will be further illustrated with the help of the following figures, where:
[0011]
[0012]
[0013]
[0014]
[0015] For clarity's sake, dimensions and dimensional ratios of the various parts shown in the drawings may have been altered, with particular and non-exclusive reference to the diameter of the shape memory alloy wires; moreover also some elements not essential for the understanding of present invention have not been represented in the schematic views, for example shape memory alloy wire crimpings, electrical contacts, etc.
[0016] A cross-sectional view of a valve 10 according to a first embodiment is shown in
[0017] The vertical positioning of plunger 16 is controlled by a shape memory alloy wire 15 connected between a stationary surface 17 and the deformable element 14 in a V shape configuration, i.e. its extremities are both fixed to the stationary surface 17 and its median portion is connected to the deformable element 14.
[0018] The position of the deformable element 14 defines two valve zones, namely a first one (I) above it comprising the stationary surface 17, the SMA wire 15 and the upper surface of the deformable element 14, and a second one (II) below it comprising the two valve ports 11, 12, plunger 16 and the lower surface of the deformable element 14. A preferred configuration for detecting the position of plunger 16 is by means of a magnet 19 affixed to plunger 16 and a Hall effect sensor 18 mounted on the stationary surface 17 (plunger position feedback is an aspect of paramount importance in proportional valve control).
[0019] To balance the pressure during the actuation of valve 10, a bypass channel 13 connects the two zones, bypass 13 having a first aperture 131 in the upper zone I and a second aperture 132 in the lower zone II. The presence of bypass 13 ensures that there is no differential pressure or more precisely that the pressure is quickly balanced between zone I and zone II.
[0020] If no bypass is present in the valve shown in
[0021] It is important to remark that no shut-off element is present in bypass channel 13 or in correspondence of one of its apertures 131, 132, as this configuration allows for an automatic balance of the pressure differential between zones I and II.
[0022]
[0023] In this embodiment a magnet 29 is mounted on the deformable element 24 so as to provide, through a Hall effect sensor 28 mounted on the stationary surface 27, an appropriate feedback on the position of a plunger 26 secured to the lower surface of the deformable element 24, which is an important feature in proportional valves.
[0024]
[0025]
[0026] As in the first two embodiments, a bypass channel 33 with two end apertures 331, 332 puts into communication valve zone II, containing plunger 36 and the valve ports 31 and 32, with the valve zone I, containing the SMA wire 35 and piston 36′. Also, a Hall effect sensor 38 and a magnet 39 allow for plunger position feedback and therefore valve proportional control.
[0027]
[0028] As in the third embodiment, a V-shaped SMA wire 45 mounted on a stationary surface 47 engages the top of a piston 46′ extending through the stationary surface 47 substantially perpendicularly to the upper surface of the deformable element 44, with the bottom of piston 46′ connected thereto and its top located on the opposite side of the stationary surface 47 with respect to the deformable element 44. It should be noted that in this case the upper and lower surface of the deformable element are considered to be those of the base of bellows 44, so as to conceptually maintain the horizontal arrangement of the deformable element.
[0029] On the lower surface of bellows 44 there is fixed a plunger 46 that extends horizontally so as to close a valve port formed in a lateral wall of the valve. In the depicted embodiment, the vertical positioning of plunger 46 selectively and alternately puts into communication one of valve ports 42, 42′ with port 41, whereby valve 40 is an example of a three-way valve.
[0030] The vertical position of plunger 46 is determined by the actuated or unactuated state of the SMA wire 45, the advantage of the use of a bellows is that by its own structure it provides the return/biasing force in a spring-like fashion once the SMA wire 45 is de-actuated (not heated).
[0031] Bypass 43 with its apertures 431 and 432 ensures the pressure balancing between zone I and II upon actuation of the SMA wire 45 and therefore switching between valve ports 42 and 42′. Also in this case, a Hall effect sensor 48 mounted on the stationary surface 47 and a magnet 49 mounted on terminal 461 allow a feedback on the position of plunger 46 for proportional control, this configuration being particularly useful in the case of mixer valves.
[0032] Valves according to the present invention can be implemented with various variants, some of which have already been shown with reference of the described figures, in particular: [0033] SMA wire configurations: among the most useful configurations a single SMA wire is used, preferably in a straight form, with one of its extremities fixed to the stationary surface and the other one to the deformable element, or alternately in the so-called V/U shape configurations, with both wire extremities fixed to the stationary surface and a median portion fixed/connected to the deformable element; [0034] valve types: the valve itself may be a simple on/off valve or a proportional valve; [0035] valve ports: the valve may be a simple 2-way valve, with two valve ports that correspond to inlet and outlet (
[0041] Examples of suitable shape memory alloys to be used in the fluidic valves according to the present invention are Ni—Ti based alloys such as Nitinol, with or without additional elements chosen among Hf, Nb, Pt, Cu. Most usefully, the diameter of the SMA wires is comprised between 25 μm and 500 μm.
[0042] It should be noted that the description of the embodiments illustrated above makes specific reference to the exemplary drawings used to explain their structure and operation, but it is clear that the valve could be made to operate with any orientation, i.e. it could be rotated through 360°. As a consequence, all the relative terms as “upper”, “lower”, “upwards”, “lowering”, etc. could be replaced by the relevant terms depending on the actual orientation of the valve.
[0043] In a second aspect thereof the invention is inherent to the use of a valve as described above for controlling a fluid flow by means of a shape memory alloy wire.
[0044] Although the valves of the present invention are applicable to the control of any suitable flow, they are mostly advantageous when applied to fluids such as water, oil or refrigerant fluid (for example the so-called R410a) or more in general with all fluids that can change their own state in evaporation/condensation valves, since the evaporation/condensation zone is limited to zone II while the SMA wire is resident in zone I.