Sprinkler device for an irrigation liquid and method of diffusion of an irrigation liquid with such sprinkler device
A sprinkler device for delivering an irrigation liquid for gravity-based pivot or linear irrigation systems includes a support structure having a first portion with a nozzle defining a longitudinal axis for generating a jet of liquid, and a second portion with a baffle plate pivoted thereto and facing the nozzle. The second portion includes a drive system, which has a first magnet moving with a reciprocating oscillatory motion due to a negative pressure generated by the liquid that flows through the nozzle, and is configured to move the baffle plate along, and force it to pivot with a reciprocating oscillatory motion about the longitudinal axis through a predetermined angle, to thereby deliver the liquid over a sector area of the soil. A method of delivering an irrigation liquid for gravity-based pivot or linear irrigation systems that uses such a sprinkler device.
1. A sprinkler device ( 1 ) for delivering an irrigation liquid (F) in gravity-based pivot or linear irrigation systems ( 4 ) of pivot or linear type, said sprinkler device ( 1 ) comprising:
a support structure ( 6 ), which has a first nozzle ( 7 ) defining a longitudinal axis (L), and generating a jet of liquid (F), said support structure ( 6 ) having a baffle plate ( 8 ) pivoted thereto and facing said nozzle ( 7 ); and
a drive system ( 13 ) having at least one first magnet ( 14 ) moving with a reciprocating rectilinear motion (Δ) due to a negative pressure (D) generated by the liquid (F) that flows through said first nozzle ( 7 ), said drive system ( 13 ) being adapted to move said baffle plate ( 8 ) along, and impart a reciprocating pivotal motion thereto (β) about an axis (X 1 ) parallel to said longitudinal axis (L) through a predetermined angle (γ), to distribute the irrigation liquid (F) over a sector area (S) of a soil (G),
wherein said drive system ( 13 ) comprises an actuator member ( 16 ) which acts on said baffle plate ( 8 ) and is associated with said first magnet ( 14 ), said actuator member ( 16 ) being slidingly accommodated in a first chamber ( 17 ) formed in said support structure ( 6 ), said first chamber ( 17 ) having first limit stop surfaces ( 17 A, 17 B) for said actuator member ( 16 ).
2. The sprinkler device as claimed in claim 1 , wherein said drive system ( 13 ) comprises at least one second magnet ( 15 ) facing said at least one first magnet ( 14 ), with respective concordant and mutually attracting polarities (P 2 , P 1 ).
3. The sprinkler device as claimed in claim 1 , wherein said drive system ( 13 ) comprises a valve element ( 18 ) which has a third magnet ( 19 ) facing said first magnet ( 14 ) of said actuator member ( 16 ), said valve element ( 18 ) being slidingly accommodated in a second chamber ( 20 ) formed in said support structure ( 6 ) and comprising second limit stop surfaces ( 20 A, 20 B) for said valve element ( 18 ).
4. The sprinkler device as claimed in claim 3 , wherein said third magnet ( 19 ) of said valve element ( 18 ) faces said first magnet ( 14 ) of said actuator member ( 16 ), with respective mutually repelling polarities (P 3 , P 1 ), said valve element ( 18 ) moving with a reciprocating rectilinear motion (Δ 2 ) opposite to a reciprocating oscillatory motion (Δ 1 ) of said actuator member ( 16 ) due to a repulsion force between said first magnet ( 14 ) and said third magnet ( 19 ).
5. The sprinkler device as claimed in claim 3 , further comprising a fitting ( 11 ) for connection to a feed line for feeding the liquid (F) under pressure, said fitting having an inside diameter (d 2 ) that is greater than an inside diameter (d 1 ) of said nozzle ( 7 ).
6. The sprinkler device as claimed in claim 5 , further comprising a second nozzle ( 12 ) connected to said fitting ( 11 ) and having a narrower portion configured to generate a Venturi effect.
7. The sprinkler device as claimed in claim 6 , wherein said second nozzle ( 12 ) has an inlet ( 12 ′) and an outlet ( 12 ″), said outlet having an inside diameter (d 3 ) that is smaller than the inside diameter (d 2 ) of said first nozzle ( 7 ).
8. The sprinkler device as claimed in claim 6 , further comprising an intake manifold ( 12 A) located at a periphery of said second nozzle ( 12 ), so as to generate a flow restriction.
9. The sprinkler device as claimed in claim 8 , wherein said support structure ( 6 ) comprises a primary channel ( 21 ) configured to establish fluid communication between said intake manifold ( 12 A) and said second chamber ( 20 ); said actuator member ( 16 ) and said valve element ( 18 ) being free to slide transversely within said first chamber and respectively said second chamber ( 17 , 20 ) between respective limit stop surfaces ( 17 A, 17 B; 20 A, 20 B) with a reciprocating oscillatory motion (Δ 1 , Δ 2 ) by the negative pressure (D) in said primary channel ( 21 ).
10. The sprinkler device as claimed in claim 9 , wherein said support structure ( 6 ) comprises a pair of secondary channels ( 22 , 23 ) formed on each side of said primary channel ( 21 ), each of said secondary channels ( 22 , 23 ) having a first secondary end ( 22 A, 23 A) in fluid communication with said first chamber ( 17 ) and a second secondary end ( 22 B, 23 B) connected to said second chamber ( 20 ).
11. The sprinkler device as claimed in claim 10 , wherein said valve element ( 18 ) comprises a slot-shaped cavity ( 24 ) configured to alternately connect said primary channel ( 21 ) with said first ends ( 22 A, 23 A) of said secondary channels ( 22 , 23 ), said second secondary ends ( 22 B, 23 B) being connected to said first chamber ( 17 ) in a vicinity of said first limit stop surfaces ( 17 A, 17 B).
12. The sprinkler device as claimed in claim 1 , wherein said baffle plate ( 8 ) has an inlet portion ( 8 A) that faces said first nozzle ( 7 ) and is connected to a diverting outlet portion ( 8 B), which has grooves ( 10 ) at least partially directed radially outwards.
13. The sprinkler device as claimed in claim 12 , wherein said outlet portion ( 8 B) of said baffle plate ( 8 ) has a substantially semicircular plan shape extending through an angle (δ) of about 180°, such that, as the baffle plate ( 8 ) pivots with a reciprocating oscillatory motion (β) at said predetermined angle (γ) the liquid (F) is distributed within an angle (γ+δ) that ranges from 190° to 225°, corresponding to a sector area (S) of the soil to be irrigated (G).
14. The sprinkler device as claimed in claim 6 , wherein said support structure ( 6 ) comprises an upper portion ( 6 B) and a lower portion ( 6 C); said first nozzle ( 7 ) and second nozzle ( 12 ) being located in said upper portion ( 6 B) and being configured to direct a flow of the liquid (F) downwards.
15. The sprinkler device as claimed in claim 6 , wherein said support structure ( 6 ) comprises an upper portion ( 6 B) and a lower portion ( 6 C), said first nozzle ( 7 ) and second nozzle ( 12 ) being located in said lower portion ( 6 C) and being configured to direct a flow of the liquid (F) upwards.
16. A method of delivering an irrigation liquid (F) for gravity-based pivot or linear irrigation plants ( 4 ) using a sprinkler device ( 1 ) as claimed in claim 11 , said method comprising:
a) generating the jet of the irrigation liquid (F) through said first nozzle ( 7 ) and said second nozzle ( 12 ) and the negative pressure in said intake manifold ( 12 A);
b) connecting said intake manifold ( 12 A) with said second chamber ( 20 ) via said primary channel ( 21 ) to create a negative pressure in said second chamber ( 20 );
c) connecting said second chamber ( 20 ) with said first chamber ( 17 ) via said secondary channels ( 22 , 23 ) to create a negative pressure in said first chamber ( 17 );
wherein said valve member ( 18 ) contacts one of the second limit stop surfaces ( 20 A, 20 B) and said slot-shaped cavity ( 24 ) connects said primary channel ( 21 ) with said first secondary end ( 22 A, 23 A) of one of said secondary channels ( 22 , 23 );
d) moving said actuator member ( 16 ) toward one of the first limit stop surfaces ( 17 A, 17 B) in said first chamber ( 17 ) by the negative pressure (D) generated in said primary channel ( 21 );
e) moving said valve element ( 18 ) toward said second opposite limit stop surface ( 20 B, 20 A) by magnetic repulsion between said first magnet ( 14 ) and third magnet ( 19 ); and
f) connecting said slot-shaped cavity ( 24 ) between said primary channel ( 21 ) and said second secondary end ( 23 B, 22 B) of said opposite secondary channel ( 23 , 22 );
wherein steps d), e) and f) are repeated until the irrigation liquid (F) generates a negative pressure (D) in said primary channel ( 21 ), and said drive system ( 13 ) drives said baffle plate ( 8 ) into rotation with a reciprocating oscillatory motion (β) about said longitudinal axis (L) through said predetermined angle (γ), to distribute the irrigation liquid (F) over the sector area (S) of the soil (G).