RESERVOIR TANK FOR COOLANT
20240077015 ยท 2024-03-07
Inventors
- Miyo KITAMURA (Tokyo, JP)
- Shinji SHIMOYAMA (Tokyo, JP)
- Keijiro KOIDE (Tokyo, JP)
- Masahiro Kato (Tokyo, JP)
- Tatsuya KURIMOTO (Tokyo, JP)
- Tatsuki TANAKA (Tokyo, JP)
- Koji Sato (Tokyo, JP)
- Takumi TOKINOYA (Tokyo, JP)
Cpc classification
F01P11/029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a reservoir tank for coolant that stores the coolant for cooling an internal combustion engine. The reservoir tank includes: a tank chamber that stores the coolant; an opening, which is disposed in an upper part of the tank chamber, through which the coolant flows in and flows out, and in a circumferential wall of which a breathing hole is formed; and a first communication passage, a second communication passage, and a third communication passage that respectively communicate with the opening and the tank chamber.
Claims
1. A reservoir tank for coolant that stores the coolant for cooling an internal combustion engine, the reservoir tank comprising: a tank chamber that stores the coolant; an opening which is arranged in an upper part of the tank chamber, through which the coolant flows in and flows out, and in a circumferential wall of which a breathing hole is formed; and a first communication passage, a second communication passage, and a third communication passage that respectively communicate with the opening and the tank chamber.
2. The reservoir tank for the coolant according to claim 1, wherein the first communication passage and the second communication passage respectively include lateral passage portions extending in a horizontal direction with end portions facing each other below the opening, and the third communication passage extends downward from below the opening.
3. The reservoir tank for the coolant according to claim 2, wherein the first communication passage further includes a vertical passage portion extending upward from a tank chamber side, and a curved portion continuous with the vertical passage portion, curved outward in a convex shape, and continuous with the lateral passage portion, and the lateral passage portion of the first communication passage and the lateral passage portion of the second communication passage are disposed to be an identical height to each other.
4. The reservoir tank for the coolant according to claim 3, wherein an upper surface of the lateral passage portion of the first communication passage is horizontal, and a lower surface of the lateral passage portion of the first communication passage is inclined downward toward the third communication passage.
5. The reservoir tank for the coolant according to claim 1, wherein a sum of passage areas of the first communication passage, the second communication passage, and the third communication passage is set to be equal to or larger than an opening area of the opening.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025] Hereinafter, preferred embodiments of the present invention will be described with reference to the drawings. A reservoir tank 1 for coolant according to the present embodiment stores the coolant for cooling, for example, an internal combustion engine mounted on a vehicle, also transfers the coolant to and from a cooling circuit in accordance with a state of temperature or pressure in the cooling circuit, and is disposed in an engine room.
[0026] As illustrated in
[0027] First to third communication passages 6 to 8 for communicating the opening 5 and the tank chamber 4 are provided between the opening 5 and the tank chamber 4. As illustrated in
[0028] To be specific, as illustrated in
[0029] The second communication passage 7 is formed to surround the outside of the collapsed portion 10 on the right side, includes a lateral passage portion 7a extending substantially horizontally, extending downward from its right end portion, and communicating with the tank chamber 4 (see
[0030] The third communication passage 8 extends downward from below the opening 5 through between the collapsed portions 9 and 10 on left and right, and communicates with the tank chamber 4 (see
[0031] As illustrated in
[0032] The hose 3 is made of a flexible material, and has a predetermined outer diameter and a predetermined inner diameter. As illustrated in
[0033] Next, a description will be given with regard to the operation of the reservoir tank 1 having the above-described configuration, in particular, the operation when vibration or impact acts on the reservoir tank 1 while the vehicle is traveling on a rough road or the like. When the large vibration or impact acts on the reservoir tank 1, the liquid surface vibration of the coolant occurs in the tank chamber 4, and the coolant moves from the tank chamber 4 through at least one of the first to third communication passages 6 to 8 to the opening 5 side on an upper side.
[0034] In this situation, in a case where the coolant moves through all the first to third communication passages 6 to 8, the coolant moves while being dispersed in the first to third communication passages 6 to 8, and also flows into below the opening 5 from three directions different from one another. Thus, the flows of the coolant interfere with one another, and the coolant hardly flows around the opening on an upper side. As described heretofore, unlike the conventional case where the coolant directly moves upward in the auxiliary chamber, the liquid surface vibration in the vertical direction can be sufficiently suppressed. Neither the liquid surface of the coolant nor a droplet reaches the breathing hole 11 formed in the opening 5. Therefore, the coolant can be prevented from leaking out of the breathing hole 11. In addition, the reservoir tank 1 in the present embodiment has a simple configuration, as compared with the conventional reservoir tank having the labyrinth structure.
[0035] Further, when the liquid surface vibrates in the tank chamber 4, in a case where the coolant flows upward from the tank chamber 4 through the first communication passage 6, the coolant is smoothly guided from the vertical passage portion 6b of the first communication passage 6 through the curved portion 6c to the lateral passage portion 6a, and then flows into the lateral passage portion 7a of the second communication passage 7, which faces the lateral passage portion 6a and which is disposed to be the same height. Accordingly, as illustrated in
[0036] In addition, since a lower surface of the lateral passage portion 6a of the first communication passage 6 is inclined downward toward the third communication passage 8, the coolant can be satisfactorily guided from the lateral passage portion 6a of the first communication passage 6 to the third communication passage 8, and can be returned to the tank chamber 4, as illustrated in
[0037] Further, the sum of the passage areas of the lateral passage portions 6a and 7a of the first and second communication passages 6 and 7 and the passage area of the third communication passage 8 is set to be equal to or larger than the opening area of the opening 5. With this configuration, when injecting the coolant from the opening 5 with the hose 3 removed from the tank main body 2 in order to fill or replenish the reservoir tank 1 with the coolant, it is possible to inject the coolant into the tank chamber 4 with no difficulty through the first to third communication passages 6 to 8 without overflowing the coolant from the opening 5, as illustrated in
[0038] Note that the present invention is not limited to the above-described embodiments, and can be implemented in various modes. For example, in one embodiment, it is assumed that the coolant moves upward through the first communication passage 6, and it is configured such that the coolant is caused to escape from the first communication passage 6 to the second communication passage 7 side and the third communication passage 8 side. The present invention is not limited to this. For example, the first to third communication passages may be arranged to be bilaterally symmetric in the reservoir tank, so that the coolant can be caused to escape from the second communication passage to the first communication passage side and the third communication passage side.
[0039] In addition,