PUMP UNIT FOR FEEDING FUEL, PREFERABLY DIESEL FUEL, TO AN INTERNAL COMBUSTION ENGINE
20170356411 ยท 2017-12-14
Inventors
- Benedetto Loiacono (Modugno, IT)
- Domenico Macchia (Casamassima, IT)
- Luisa Moscarella (Bari (BA), IT)
- Michele Antonio Iannuzzi (Bari, IT)
Cpc classification
F02M59/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0421
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0456
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/0452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B53/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/464
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M59/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M59/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pump unit for feeding fuel, preferably diesel fuel, to an internal combustion engine; the pump unit (1) comprising: a head (4) inside which a cylinder (12) extending along an axis (A1) is formed; a pumping piston (5) extending along the axis (A1) and slidingly coupled with the cylinder (12); a through-hole (13) which extends from the cylinder (12) towards the outside of the pump unit (1); an intake chamber (8) communicating with the cylinder (12) via the hole (13); an intake valve (7) which controls the flow of fuel from the intake chamber (8) to the hole (13); a cap (23; 123; 223) which is connected to the head (4), is arranged on the opposite side to the pumping piston (5) and can be selectively fixed along an outer surface (25) of the head (4) so as to close the intake chamber (8) on one side.
Claims
1. A pump unit for feeding fuel, to an internal combustion engine; the pump unit (1) comprising: a head (4) inside which a cylinder (12) extending along an axis (A1) is formed; a pumping piston (5) extending along the axis (A1) and slidingly coupled with the cylinder (12); a through-hole (13) which extends from the cylinder (12) towards an outside of the pump unit (1); an intake chamber (8) communicating with the cylinder (12) via the through-hole (13); an intake valve (7) which controls the flow of fuel from the intake chamber (8) to the hole (13); and a cap (23; 123; 223) which is connected to the head (4), is arranged on an opposite side to the pumping piston (5) and is configured to be selectively fixed along an outer surface (25) of the head (4) so as to close the intake chamber (8) on one side.
2. The pump unit according to claim 1, characterized in that the head (4) and the cap (23; 123; 223) define the intake chamber (8) into which an intake duct (6) leads.
3. The pump unit according to claim 1, characterized in that the outer surface (25) of the head (4) is threaded so that the head may be connected to the cap (23; 123; 223).
4. The pump unit according to claim 3, characterized in that the cap (23; 123; 223) comprises a threaded inner surface (27; 227) which mates with the outer surface (25) of the head (4).
5. The pump unit according to claim 1, characterized in that the intake valve (7) comprises a valve body (15) formed inside the head (4), and a closing member (16) arranged inside the through-hole (13).
6. The pump unit according to claim 1, comprising a compression chamber (9) formed in the cylinder (12) and communicating with the through-hole (13) so as to receive fuel through the through-hole (13).
7. The pump unit according to claim 1, characterized in that the intake valve (18) comprises a closing member (16), a resilient element (17) and a disc element (18) fixed integrally to the closing member (16); wherein the resilient element (17) is arranged between the head (4) and the disc element (18) so as to control the movement of the closing member (16).
8. The pump unit according to claim 7, characterized in that the cap (123) comprises a cavity (123) inside which the disc element (18) slides so as to dampen the movement of the closing member (16), wherein a diameter (D1) of the cavity (123) has a dimension which is at the most equal to the product of 1.4 times a diameter (D2) of the disc element (18).
9. The pump unit according to claim 1, characterized in that the cap (23; 123) comprises a cover-piece (23a; 123a) for closing the intake chamber (8) on one side and a ring nut (24) for locking the cover-piece (23a; 123a) in a given position.
10. The pump unit according to claim 9, characterized in that the cover-piece (23a; 123a) comprises a collar (30) which protrudes radially with respect to the axis (A1) outwards, wherein the ring nut (24) comprises a flange (32) which protrudes radially with respect to the axis (A1) inwards and engages with the collar (30) of the cover-piece (23a; 123a).
11. The pump unit according to claim 10, characterized in that the collar (30) comprises a first projecting surface (28) and the ring nut (24) comprises a second projecting surface (29) which makes contact with the first projecting surface (28).
12. The pump unit according to claim 9, characterized in that the ring nut (24) exerts an axial force on the cover-piece (23a) so as to keep the cover-piece (23a; 123a) in contact with the head (4).
13. The pump unit according to claim 1, characterized in that the cap (223) is a single piece and comprises a central portion (223a) for delimiting on one side the intake chamber (8) and a side portion (224) for engagement with the head (4).
14. The pump unit according to claim 1, comprising a sealing element (41; 241) arranged between the cap (23; 123; 223) and the head (4).
15. The pump unit according to claim 1, characterized in that the intake valve (7) is of a mechanical type.
16. The pump unit according to claim 1, characterized in that the intake valve (7) comprises a valve body (15) formed inside the head (4), and a closing member (16) arranged inside the through-hole (13), wherein the valve body (15) and the cylinder (12) are formed as a single monobloc.
17. The pump unit according to claim 1, characterized in that the intake valve (7) is of a mechanical type, wherein the intake valve (7) is operated during opening and closing by a difference in pressure between the cylinder (12) and a compression chamber (8) arranged inside the cylinder (12).
Description
[0033] The invention will now be described with reference to the accompanying drawings which illustrate a non-limiting example of embodiment thereof, in which:
[0034]
[0035]
[0036]
[0037]
[0038] With reference to
[0039] The pump unit 1 comprises a high-pressure pump 2 of the pumping piston type designed to feed the fuel to the said internal combustion engine (not shown); and a known gear pump (not shown) designed to feed the fuel to the pump 2. The pump 2 and the gear pump are driven by a shaft (not shown in the attached figures).
[0040] The pump 2 comprises a pump body 3; a head 4 assembled on the pump body 2; a cylinder 12 formed in the head 4 and extending along an axis A1; a pumping piston 5 which extends along the axis A1 and is slidingly coupled with the cylinder 12; an intake duct 6 formed partly in the head 4; an intake valve 7 communicating with the intake duct 6; an intake chamber 8 arranged between the intake duct 6 and the intake valve 7; a compression chamber 9 communicating with the intake chamber 8 via the intake valve 7; a delivery duct 10 formed partly inside the head 4 and communicating with the compression chamber 9; and a delivery valve 11 for selectively interrupting the fuel along the delivery duct 10.
[0041] The head 4 has a through-hole 13 which is formed in the head 4 coaxially with the axis A1 and communicates with one end of the cylinder 12. In particular, the hole 13 extends from the cylinder 12 towards the outside of the head 4. In greater detail, the hole 13 extends inside the head 4 from the intake chamber 8 to the compression chamber 9 and houses part of the intake valve 7. The head 4 comprises a seat 14 which houses the intake chamber 8. The seat 14 and the cylinder 12 are arranged on opposite sides of the hole 13.
[0042] The pumping piston 5 is displaced by an actuating device (not shown in the attached figures) along the cylinder 12 with an alternating rectilinear movement comprising an intake stroke for drawing the fuel inside the cylinder 12 and a compression stroke for the fuel contained inside the said cylinder 12, i.e. for compressing the fuel drawn into the compression chamber 9.
[0043] The intake duct 6 connects the gear pump to the intake valve 7.
[0044] The intake valve 7 is of the mechanical type. The intake valve 7 is designed to control selectively feeding of the fuel inside the cylinder 12 from the intake chamber 8 to the compression chamber 9 along the hole 13. The intake valve 7 extends along the axis A1 and comprises a valve body 15 which is formed inside the head 4. In other words, a portion of the head 5 defines the valve body 15 of the intake valve 7, another portion of the head 5 defines also the cylinder 12. Therefore, the valve body 15 and the head 4 are formed as a single monobloc, preferably by means of machining with stock removal. In particular, the valve body 15 and the cylinder 12 are made as a single monobloc.
[0045] With reference to
[0046] During the compression phase, the pumping piston 5 moves along the axis A1 towards the closing member 16. The intake valve 7 during the compression phase is in the closed position and the closing member 16 is in contact with the head 5. In fact, when the intake phase finishes, the resilient element 17 pushes the closing member 16 along the axis A1 from the opposite side to the pumping piston 5. In this case, the foot 20 of the closing member 16 makes contact with the valve body 15 which is defined by the portion of the head 5. During the compression phase, the resilient element 17 keeps the foot 20 of the closing member 16 in contact by applying a force along the axis A1 to the stem 19 of the closing member 16 via the disc element 18. In other words, the resilient element 17 pushes the disc element 18 along the axis A1 in a direction opposite to the cylinder 12.
[0047] The head 4 defines a seat 21 which houses the intake chamber 8 and into which the intake duct 6 at least partly formed in the head 4 leads.
[0048] With reference to
[0049] The cap 23 delimits on one side the intake chamber 8. In greater detail the cap 23a has a cavity 31 which defines part of the intake chamber 8. The cover-piece 23a also houses part of the closing member 16, in particular the disc element 18 and part of the stem 19 inside the cavity 31. The cover-piece 23a defines part of the intake chamber 8.
[0050] Moreover, the pump unit 1 comprises a sealing ring 40 arranged inside a cavity 41 arranged between the cover-piece 23a and the head 4. In particular, the cover-piece 23a has an annular recess 42 which extends radially with respect to the axis A1 along an outer side surface 39 and in the vicinity of the contact surface 36. The cavity 41 is defined between the annular recess 42 and the head 4, in particular between the annular recess 42 and the wall 26 of the seat 21, in particular along a portion of the inner surface 38 of the wall 26.
[0051] The sealing ring 40 may be made of rubber, plastic or metallic material. The sealing ring 40 is made of a material having a hardness which is less than the hardness of the material of the cover-piece 23a and the head 4. The sealing ring 40 is configured to prevent liquid from escaping from the intake chamber 8 towards the outside of the head 4.
[0052] With reference to
[0053] The pump unit 1 comprises a seat 36 for the delivery valve 11 and a connector 37 for keeping the delivery valve 11 inside the seat 36. The delivery valve 11 is housed along the delivery duct 10 and is designed to control selectively feeding of the fuel to the said internal combustion engine (not shown).
[0054] According to an alternative embodiment shown in
[0055] According to another alternative embodiment shown in
[0056] The pump unit 1 comprises a sealing element 241 arranged between the cap 223 and the head 4. In particular, the head 4 comprises a contact surface 233 arranged at one end of the seat 21 of the head 4, in particular between the threaded side surface 25 and the inner side surface 38 of the seat 21 of the head 4. In other words, the contact surface 233 is arranged along a base of the cylindrical portion of the seat 21. The cap 223 comprises a contact surface 236 which during use faces the contact surface 233 and is defined by an inner radial shoulder 230 arranged along the side portion 224. The sealing element 241 is arranged between the contact surface 236 and the contact surface 233. The sealing element 241 is rigid and may be made of plastic or metallic material. The sealing element 241 has a hardness factor less than that of the cap 223 and the head 4.
[0057] It is moreover evident that the present invention also covers embodiments not described in the detailed description and equivalent embodiments which fall within the scope of protection of the attached claims.