Breather pipe structure for liquid reducing agent storage tank
09964015 ยท 2018-05-08
Assignee
Inventors
- Shin Amagasaki (Fujisawa, JP)
- Takuya Mito (Fujisawa, JP)
- Tatsuo Mashiko (Fujisawa, JP)
- Kazuhiro Kodaira (Fujisawa, JP)
- Akihiro Tozuka (Fujisawa, JP)
Cpc classification
F01N2610/1413
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/1466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Provided is a breather pipe structure for a liquid reducing agent storage tank which ensures that a liquid reducing agent can be supplied without trouble even if a breather pipe in the liquid reducing agent storage tank is clogged with frozen liquid reducing agent. In a breather pipe structure for a liquid reducing agent storage tank (10) which stores a liquid reducing agent (5) and which has a breather pipe (20) for introducing/discharging air attached on top of the liquid reducing agent storage tank (10), a lower end (20c) of the breather pipe (20) in the liquid reducing agent storage tank (10) is arranged to extend along a liquid reducing agent defrosting piping (16) provided in the liquid reducing agent storage tank (10).
Claims
1. A system comprising: a liquid reducing agent storage tank which stores a liquid reducing agent; and a breather pipe for introducing/discharging air attached on top of the liquid reducing agent storage tank; wherein a liquid reducing agent defrosting piping is provided to defrost the liquid reducing agent in the liquid reducing agent storage tank; wherein an upper end of the breather pipe is located outside the liquid reducing agent storage tank and is open to the atmosphere; wherein the breather pipe extends from a top of the liquid reducing agent storage tank into the liquid reducing agent storage tank; wherein a lower end part of the breather pipe extends along the liquid reducing agent defrosting piping provided in the liquid reducing agent storage tank; wherein the breather pipe is provided with a bent portion which is bent above the lower end part of the breather pipe that extends along the liquid reducing agent defrosting piping; wherein the breather pipe is provided with an air vent orifice above the bent portion; and wherein the air vent orifice and the bent portion are provided in the breather pipe inside the liquid reducing agent storage tank and are positioned above a full-tank liquid surface of the liquid reducing agent stored in the liquid reducing agent storage tank.
2. The system according to claim 1, wherein the lower end of the breather pipe is positioned between a liquid surface level at which a lower open end of the filler pipe is closed and a liquid surface level at which the liquid overflows from an inlet at the upper end of the filler pipe.
3. The system according to claim 1, wherein the air vent orifice is formed to have such a diameter that air in the liquid reducing agent storage tank is not pushed out through the breather pipe during injection of the liquid reducing agent.
4. The system according to claim 1, wherein the liquid reducing agent defrosting piping is constituted by an engine coolant piping for feeding an engine coolant.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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BEST MODE FOR CARRYING OUT THE INVENTION
(5) A preferred embodiment of the invention will be described in detail with reference to the accompanying drawings.
(6)
(7) Although omitted in
(8) Although in
(9) A pipe unit 15 is provided on the topwall 10t of the liquid reducing agent storage tank 10, and the pipe unit 15 is provided with a liquid reducing agent defrosting piping for defrosting the frozen liquid reducing agent 5 in the liquid reducing agent storage tank 10. This liquid reducing agent defrosting piping is constituted by a piping having a heater provided therein, or by an engine coolant piping 16 formed into a U-shape, as shown in
(10) The pipe unit 15 is provide with a breather pipe 20 for introducing and discharging air into and from a gas-phase region G in the liquid reducing agent storage tank 10. An end 20b of the breather pipe 20 that is located outside the liquid reducing agent storage tank 10 is open to the atmosphere, while a breather pipe section 20a located within the tank is bent so as to extend along the supply-side engine coolant piping 16s. The lower end 20c of the breather pipe section 20a within the tank is positioned at the same level as the liquid surface L when the tank is full.
(11) The position of the lower end 20c of the breather pipe 20 is set to be equal to or higher than the liquid surface level L.sub.min where the lower open end 12a of the filler pipe 12 is closed, and to be equal to or lower than the liquid surface level L.sub.max where the liquid overflows from the inlet 12f at the upper end of the filler pipe 12, and this position of the lower end 20c is defined as the full-tank liquid surface L.
(12) An air vent orifice 22 is further provided in the breather pipe section 20a above the full-tank liquid surface L. As shown in
(13) Next, functions of the invention will be described.
(14) When the urea SCR system is being operated by a SCR device during ordinary use thereof, the liquid reducing agent 5 is supplied to upstream of the SCR device, and the liquid surface level of the liquid reducing agent 5 in the liquid reducing agent storage tank 10 descends. Nevertheless, the pressure in the liquid reducing agent storage tank 10 is maintained at the atmospheric pressure since air is supplied into the gas-phase region G through the breather pipe 20.
(15) When the lower end 20c of the breather pipe 20 is clogged with frozen liquid reducing agent 5c, as shown in
(16) In contrast, in the case of the conventional breather pipe 14 shown in
(17) Further, in this invention, an air vent orifice 22 is provided in the breather pipe 20 at a position above the full-tank liquid surface L in preparation for an emergency until the clog in the breather pipe 20 is cleared, and this air vent orifice 22 has such a diameter that the air in the liquid reducing agent storage tank 10 is not pushed out through the breather pipe 20 when the liquid reducing agent is injected. This makes it possible to breathe through the air vent orifice 22 and to prevent hermetic sealing of the gas-phase region G. Thus, the SCR system is ensured to be able to suck the liquid reducing agent 5 in an emergency.
(18) Further, since the air vent orifice 22 is formed to have such a diameter that the air in the liquid reducing agent storage tank 10 is not pushed out through the breather pipe 20, this air vent orifice 22 functions as resistance when the air in the gas-phase region G is discharged from the breather pipe 20 through the air vent orifice 22 when the liquid reducing agent 5 is injected from the filler pipe 12 and the liquid surface reaches the level of the lower end 20c of the breather pipe 20, that is, the full-tank liquid surface L. This makes it possible to control the position of the full-tank liquid surface L.
(19) While the air vent orifice 22 functions as resistance during discharge of air and makes it possible to control the position of the full-tank liquid surface L, it is possible to breathe through the air vent orifice 22. Therefore, the liquid reducing agent 5 can be injected into the tank 10 until the liquid surface reaches the full-tank liquid surface L even if the breather pipe 20 is clogged with frozen liquid reducing agent 5c. In this case, the liquid reducing agent 5 can be injected gradually from the filler pipe 12 after the liquid surface reaches the liquid surface level L.sub.min where the lower end of the filler pipe 12 is closed, so that the air can be discharged through the air vent orifice 22 to enable the liquid reducing agent 5 to be injected until its liquid surface level reaches the full-tank liquid surface L.
(20) According to this invention as described above, the breather pipe 20 for introducing/discharging air in the liquid reducing agent storage tank 10 according to change of the surface level of the liquid reducing agent 5 in the tank is provided such that its lower end 20c extends along a liquid reducing agent defrosting piping such as the engine coolant piping 16. Thus, even if the liquid reducing agent 5c is frozen in the lower end 20c to clog the breather pipe 20, the frozen liquid reducing agent 5c can be defrosted. Since air can be introduced into the gas-phase region G from the breather pipe 20 via the air vent orifice 22 until the frozen liquid reducing agent 5c is defrosted, the urea SCR system is ensured to be able to suck the liquid reducing agent 5 for an emergency.
(21) Although the invention above has been described in connection with preferred embodiments of the invention, it will be evident for a person skilled in the art that several modifications are conceivable without departing from the invention as defined by the following claims.