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(11) | EP 2 336 702 A1 |
(12) | EUROPEAN PATENT APPLICATION |
published in accordance with Art. 153(4) EPC |
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(54) | REFRIGERANT EVAPORATOR AND AIR-CONDITIONING DEVICE UTILIZING THE SAME |
(57) A refrigerant evaporator (1), in which one of a plurality of blocks is a U-turn block
portion (15), includes a plurality of refrigerant-distribution holes (4M, 5M), which
communicate between first tank portions (6, 8) and second tank portions (7, 9), provided
in the U-turn block portion (15) and in partition walls (4C, 5C) therein that partition
the first tank portions (6, 8) and the second tank portions (7, 9) of top and bottom
tanks (4, 5). For the refrigerant-distribution holes (4M, 5M), assuming the distance
between the plurality of holes as b, the hole length in the hole-row direction as
a, and the thickness of the partition wall as t, a/b is set to a/b ≤ - 0.0697 × t2 + 0.3274 × t + 0.4594, where t = 1 to 2 mm. |
{Technical Field}
{Background Art}
{Citation List}
{Patent Literature}
{Patent Literature 1} The Publication of Japanese Patent No. 3637314.
{Patent Literature 2} The Publication of Japanese Patent No. 3391339.
{Summary of Invention}
{Technical Problem}
{Solution to Problem}
{Brief Description of Drawings}
{Fig. 1} Fig. 1 is a perspective view of a refrigerant evaporator according to a first embodiment of the present invention.
{Fig. 2} Fig. 2 is an exploded perspective view of the refrigerant evaporator shown in Fig. 1.
{Fig. 3A} Fig. 3A is a front view of the refrigerant evaporator shown in Fig. 1.
{Fig. 3B} Fig. 3B is a right side view of the refrigerant evaporator shown in Fig. 1.
{Fig. 4} Fig. 4 is a side view of a partition wall to be provided in a top tank and a bottom tank of the refrigerant evaporator shown in Fig. 1.
{Fig. 5} Fig. 5 is a plan view showing the refrigerant distribution in a U-turn block portion in the refrigerant evaporator shown in Fig. 1.
{Fig. 6} Fig. 6 is a plan view showing the refrigerant distribution in a U-turn block portion in a refrigerant evaporator according to a second embodiment of the present invention.
{Fig. 7} Fig. 7 is an analytical graph showing the relationship between the break-down pressure P of tank partition portions and a ratio a/b of hole length a in the hole-row direction of a plurality of refrigerant-distribution holes to distance b between the plurality of holes provided in a partition wall of the refrigerant evaporator according to the present invention.
{Fig. 8} Fig. 8 is a graph in which the graph shown in Fig. 7 is converted so as to express thickness t of the partition wall on the horizontal axis and the ratio a/b on the vertical axis.
{Description of Embodiments}
{First Embodiment}
{Second Embodiment}
{Reference Signs List}
1: refrigerant evaporator
2: refrigerant tube
2A: refrigerant channel
4: top tank
5: bottom tank
4C, 5C: partition wall
4G: refrigerant outlet
4H, 5H: partition plate
4M, 5M: refrigerant-distribution hole
4m, 5m: elongated hole
5G: refrigerant inlet
6, 8: first tank portion
7, 9: second tank portion
14: first block
15: second block (U-turn block)
16: third block
a: hole length of refrigerant-distribution hole (elongated hole) in hole-row direction
b: distance between plurality of refrigerant-distribution holes (elongated holes)
numerous refrigerant tubes that have refrigerant channels for flowing refrigerant in a vertical direction, that are numerously arranged in parallel in a direction orthogonal to a flow direction of an external fluid that flows outside of the refrigerant channels, and that are arranged in a plurality of rows, front-to-back, parallel to the flow direction of the external fluid; and
a pair of top and bottom tanks that are arranged in the direction orthogonal to the flow direction of the external fluid and connected at top and bottom ends of the numerous refrigerant tubes, the interior of which is partitioned in a row direction corresponding to the plurality of rows of the refrigerant tubes into a first tank portion and a second tank portion by a partition wall, and that distribute or collect the refrigerant,
the tanks being provided with a refrigerant inlet and a refrigerant outlet, and the refrigerant that has flowed in from the refrigerant inlet sequentially flowing through the refrigerant tubes of a plurality of blocks divided by partition plates provided in a plurality of locations in the tanks, after which the refrigerant flows out from the refrigerant outlet, wherein
one of the plurality of blocks is a U-turn block portion in which the refrigerant flows into the first tank portion or the second tank portion of the top tank from a direction parallel to the partition wall and, from there, flows into the other tank portion, thereby being distributed to the plurality of refrigerant tubes from the first tank portion and the second tank portion, respectively,
on the partition walls that partition the first tank portions and the second tank portions of the top and bottom tanks in the U-turn block portion, a plurality of refrigerant-distribution holes, which communicate between the first tank portions and the second tank portions, are provided parallel to the length direction of the partition walls, and
for the refrigerant-distribution holes, assuming the distance between the plurality of holes as b, the hole length in the hole-row direction as a, and the thickness of the partition wall as t, a/b is set to a/b ≤ -0.0697 × t2 + 0.3274 × t + 0.4594, where t = 1 to 2 mm.
numerous refrigerant tubes that have refrigerant channels for flowing refrigerant in a vertical direction, that are numerously arranged in parallel in a direction orthogonal to a flow direction of an external fluid that flows outside of the refrigerant channels, and that are arranged in a plurality of rows front-to-back parallel to the flow direction of the external fluid; and
a pair of top and bottom tanks that are arranged in the direction orthogonal to the flow direction of the external fluid and connected at top and bottom ends of the numerous refrigerant tubes, the interior of which is partitioned in a row direction corresponding to the plurality of rows of the refrigerant tubes into a first tank portion and a second tank portion by a partition wall, and that distribute or collect the refrigerant,
the tanks being provided with a refrigerant inlet and a refrigerant outlet, and the refrigerant that has flowed in from the refrigerant inlet sequentially flowing through the refrigerant tubes of a plurality of blocks divided by partition plates provided in a plurality of locations in the tanks, after which the refrigerant flows out from the refrigerant outlet, wherein
one of the plurality of blocks is a U-turn block portion in which the refrigerant flows into the first tank portion or the second tank portion of the top tank from a direction parallel to the partition wall and, from there, flows into the other tank portion, thereby being distributed to the plurality of refrigerant tubes from the first tank portion and the second tank portion, respectively,
on the partition walls that partition the first tank portions and the second tank portions of the top and bottom tanks in the U-turn block portion, a plurality of refrigerant-distribution holes, which communicate between the first tank portion and the second tank portion, are provided parallel to the length direction of the partition wall, and
the refrigerant-distribution holes are elongated holes made longer in a direction orthogonal to the hole-row direction of the refrigerant-distribution holes.
REFERENCES CITED IN THE DESCRIPTION
Patent documents cited in the description