BATTERY PACK WITH IMPROVED FIRE PROTECTION PERFORMANCE
20230275315 · 2023-08-31
Assignee
Inventors
- Seung-Hyun Kim (Daejeon, KR)
- Yu-Dam KONG (Daejeon, KR)
- Jin-Kyu SHIN (Daejeon, KR)
- Young-Hoo OH (Daejeon, KR)
- Seung-Min OK (Daejeon, KR)
- Sang-Hyun JO (Daejeon, KR)
- Sung-Goen HONG (Daejeon, KR)
Cpc classification
H01M50/24
ELECTRICITY
H01M50/358
ELECTRICITY
H01M50/325
ELECTRICITY
H01M2220/10
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
H01M50/204
ELECTRICITY
H01M50/35
ELECTRICITY
H01M50/308
ELECTRICITY
H01M50/367
ELECTRICITY
International classification
H01M50/204
ELECTRICITY
H01M50/24
ELECTRICITY
Abstract
Discussed is a battery pack that can effectively suppress a fire even when high-temperature gas or sparks are generated in some battery modules. The battery pack may include at least one battery module having at least one secondary battery and configured to store and release energy, a duct provided to at least one side of the at least one battery module and configured discharge hole configured to discharge a gas generated from the at least one battery module, when the generated gas flows toward the discharge hole, and an opening/closing member located at the discharge hole of the duct and configured to open the discharge hole when an internal pressure of the duct is at or above a predetermined level and to close the discharge hole when the internal pressure of the duct is at or below the predetermined level.
Claims
1. A battery pack, comprising: at least one battery module having at least one secondary battery and configured to store and release energy; a duct provided to at least one side of the at least one battery module and including a discharge hole configured to discharge a gas generated from the at least one battery module, when the generated gas flows toward the discharge hole; and an opening/closing member located at the discharge hole of the duct and configured to open the discharge hole when an internal pressure of the duct is at or above a predetermined level and to close the discharge hole when the internal pressure of the duct is at or below the predetermined level.
2. The battery pack according to claim 1, wherein in a closed state, the opening/closing member is configured to block an inflow of oxygen from an outside of the duct into the duct.
3. The battery pack according to claim 1, wherein the discharge hole has a plurality of openings, and wherein the opening/closing member has a plurality of unit opening/closing portions so that a unit opening/closing portion is located at each opening, respectively.
4. The battery pack according to claim 3, wherein the opening/closing member is configured such that at least two unit opening/closing portions among the plurality of unit opening/closing portions open respective openings of the plurality of openings at different pressure levels.
5. The battery pack according to claim 4, wherein the plurality of openings are arranged in a vertical direction of the duct, and wherein the opening/closing member is configured such that a unit opening/closing portion located at an upper side among the at least two unit opening/closing portions opens an opening among the plurality of openings at a higher pressure level than that of a unit opening/closing portion located at a lower side among the at least two unit opening/closing portions.
6. The battery pack according to claim 5, wherein the at least two unit opening/closing portions each includes an elastic member, respectively, and the unit opening/closing portion located at the upper side among the at least two unit opening/closing portions is configured to include an elastic member having a higher elastic modulus than the unit opening/closing portion located at the lower side among the at least two unit opening/closing portions.
7. The battery pack according to claim 1, wherein the opening/closing member includes an inner opening/closing portion and an outer opening/closing portion.
8. The battery pack according to claim 1, wherein in a closed state, the opening/closing member is configured to move only in one direction to be changed into an opened state.
9. The battery pack according to claim 1, wherein at least one of the duct and the opening/closing member has a sealing portion formed to surround a periphery of the discharge hole.
10. An energy storage system, comprising the battery pack according to claim 1.
Description
DESCRIPTION OF DRAWINGS
[0027] The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing.
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
BEST MODE
[0042] Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Prior to the description, it should be understood that the terms used in the specification and the appended claims should not be construed as limited to general and dictionary meanings, but interpreted based on the meanings and concepts corresponding to technical aspects of the present disclosure on the basis of the principle that the inventor is allowed to define terms appropriately for the best explanation.
[0043] Therefore, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the scope of the disclosure.
[0044]
[0045] Referring to
[0046] The battery module 100 may be configured to include at least one secondary battery to store and release an energy. In addition, one or more battery modules 100 may be included in the battery pack. In particular, in order to improve the capacity and/or output of the battery pack, a plurality of battery modules 100 may be included in the battery pack as shown in
[0047] An example of a more specific configuration of the battery module 100 is shown in more detail in
[0048]
[0049] Referring to
[0050] Here, the secondary battery 110 may include an electrode assembly, an electrolyte and a battery case. Although the pouch-type secondary battery is illustrated in
[0051] The secondary battery 110 may be included in plurality. For example, as shown in the drawings, the battery assembly may be configured such that a plurality of pouch-type secondary batteries 110 are stacked in a vertical direction. In this case, electrode leads 111 of the batteries may be in direct contact with each other or may be electrically connected through a bus bar or the like.
[0052] The module case 120 may be configured to accommodate at least one secondary battery 110 in an inner space thereof. For example, the module case 120 may include an upper plate 121, a lower plate 122, a side plate 123 and a rear plate 124, as shown in the drawings. In addition, the plurality of plates may be coupled to each other to accommodate the battery assembly in a limited inner space. Here, some plates included in the module case 120, such as the lower plate 122 and the side plate 123, may be configured to be integrated with each other. In this case, the integrated shape of the lower plate 122 and the side plate 123 may be approximately a U shape.
[0053] In particular, the module case 120 may be configured in a sealed form other than the front portion. Alternatively, the module case 120 may be configured such that the front and rear portions are open, and the other portions are closed.
[0054] The bus bar assembly 130 may be coupled to the front open portion of the module case 120. The electrode lead 111 of the battery assembly may be located at the front portion of the module case 120. In addition, the bus bar assembly 130 may be coupled to the electrode lead 111. As a more specific example, the bus bar assembly 130 may include a bus bar housing 131 and a module bus bar 132 as shown in
[0055] Here, the bus bar housing 131 may be made of an electrically insulating material, for example a plastic material. In addition, the bus bar housing 131 may be configured such that the module bus bar 132 is seated and fixed thereon. In addition, the module bus bar 132 may be made of an electrically conductive material, for example, a metal material. In addition, the module bus bar 132 may be configured to electrically connect the electrode leads 111 to each other or to be connected to the electrode lead 111 to transmit sensing information to a control unit such as a battery management system (BMS).
[0056] The battery module 100 included in the battery pack according to the present disclosure may be configured such that only one side, namely the front side, is opened and the remaining portions are closed. For example, as shown in
[0057] Furthermore, the bus bar assembly 130 may be positioned at the open portion of the battery module 100, for example the front side. In addition, the bus bar assembly 130 may have a slit to allow the electrode lead 111 to pass therethrough. Therefore, through the slit, the gas or spark inside the module may be discharged to the outside of the module. At this time, the gas discharge direction may be regarded as being the same as the +Y-axis direction in the drawing.
[0058] The duct 200 may be provided to at least one side of the battery module 100. In particular, the duct 200 may be located at the side where the gas is discharged from the battery module 100. That is, as described above, the battery module 100 may be configured such that, when gas is generated therein, the generated gas is discharged only in a specific direction. At this time, the duct 200 may be located at a portion where gas is to be discharged from the battery module 100.
[0059] For example, seeing the embodiment of
[0060]
[0061] Referring to
[0062] In this configuration, when gas is generated from the battery module 100, the generated gas may be introduced into the inner space of the duct 200 through the inlet hole 220. At this time, the internal pressure of the duct 200 may increase. Here, since the discharge hole 210 is formed at one side of the duct 200, the gas inside the duct 200 may move toward the discharge hole 210. That is, the duct 200 may be configured such that the gas generated from the battery module 100 flows toward the discharge hole 210, as indicated by arrows in
[0063] The opening/closing member 300 may be located at the discharge hole 210 of the duct 200. In addition, the opening/closing member 300 may be configured to open and close the discharge hole 210 of the duct 200. The opening/closing member 300 will be described in more detail with reference to
[0064]
[0065] The opening/closing member 300 may close the duct 200 as shown in
[0066] Meanwhile, the opening/closing member 300 may be configured to close the discharge hole 210 when the internal pressure of the duct 200 is in a certain level or below. In particular, when gas is generated from the battery module 100 so that the internal pressure of the duct 200 increases and then the gas is discharged to the discharge hole 210 so that the internal pressure of the duct 200 falls below a certain level, the opening/closing member 300 may be changed from the opened state of
[0067] According to this configuration of the present disclosure, when gas is generated due to a situation such as thermal propagation inside the battery pack, the gas may be smoothly discharged to the outside through the duct 200. Accordingly, it is possible to prevent high-temperature gas from continuously staying inside the battery pack, and also it is possible to lower the pressure inside the battery pack to prevent fire or explosion of the battery pack.
[0068] The opening/closing member 300 may include an elastic member to perform the opening/closing operation. For example, the opening/closing member 300 may include an elastic member such as a spring, and may be configured to open and close using the elastic force of the spring, namely the restoring force. As an example, the opening/closing member 300 may include a spring such as a leaf spring or a coil spring. At this time, the opening/closing member 300 may be configured to elastically deform when being changed from a closed state to an opened state. Therefore, the opening/closing member 300 may come into an opened state when the force by the internal pressure of the duct 200 becomes greater than the force by the spring, and may come into a closed state when the force by the internal pressure of the duct 200 becomes smaller than the force by the spring.
[0069] In particular, in the battery pack according to the present disclosure, the opening/closing member 300 may be configured to block the inflow of gas at the outside of the duct 200 into the duct 200 in a closed state. Moreover, the opening/closing member 300 may block the inflow of oxygen at the outside of the duct 200 into the duct 200 in a closed state. This will be described in more detail with reference to
[0070]
[0071] First, referring to
[0072] Next, referring to
[0073] Therefore, according to this configuration of the present disclosure, by blocking the inflow of oxygen into the duct 200, it is possible to effectively prevent a fire from occurring inside the battery pack. In particular, heat sources such as sparks and combustibles such as gas or battery components may exist inside the battery pack. However, if the inflow of oxygen is blocked as in this embodiment, one of the three elements of combustion does not exist inside the battery pack, so it is possible to prevent a fire from occurring inside the battery pack in advance.
[0074] In the battery pack according to the present disclosure, the discharge hole 210 formed in the duct 200 may include a plurality of openings 211 as shown in
[0075] According to this configuration of the present disclosure, the gas discharge operation (opening) or the oxygen inflow blocking operation (closing) of the discharge hole 210 may be performed more quickly and reliably. In particular, in this case, the weight and/or movement distance of each opening/closing member 300 may be reduced. Accordingly, the opening/closing member 300 may perform an opening operation and a closing operation more quickly.
[0076] For example, the opening/closing member 300 may be configured such that one side is coupled to a component such as the duct 200 and the other side performs an opening/closing operation by moving away from and close to the discharge hole 210 of the duct 200, as shown in
[0077] In this configuration, as the size of the opening/closing member 300 is smaller, the rotation radius at which the opening/closing member 300 moves to open and close the discharge hole 210 may be smaller. Therefore, in this case, a faster opening/closing operation may be made. Moreover, after the gas is discharged from the duct 200, when the internal pressure of the duct 200 is lowered to a certain level or below again, the opening/closing member 300 needs to block the inflow of external oxygen by a quick closing operation. Here, according to this configuration, since the rotation radius of each unit opening/closing portion 310 may be reduced, it may be possible to more rapidly block the inflow of oxygen. In addition, according to this configuration, even though the area of each opening 211 may be reduced, since a plurality of openings 211 are provided, the summed area for the plurality of openings 211 may be increased, so that the gas discharge performance may be secured in a certain level or above.
[0078] Moreover, according to the embodiment as described above, it may be easy to individually configure or set each opening 211 or each unit opening/closing portion 310. Accordingly, the gas releasing effect or the oxygen blocking effect may be implemented more efficiently.
[0079] In addition, in the embodiment in which the opening/closing member 300 includes a plurality of unit opening/closing portions 310 as described above, the opening/closing member 300 may be configured to open each opening 211 at a different pressure level with respect to the at least two unit opening/closing portions 310.
[0080] For example, at least some unit opening/closing portions 310 among the plurality of unit opening/closing portions 310 may be configured to open at an internal pressure level of P1 [psi] or above, and at least some unit opening/closing portions 310 among the other unit opening/closing portions 310 may be configured to open at an internal pressure level of P2 [psi] or above. Here, P1 and P2 are different pressure values.
[0081] According to this configuration of the present disclosure, by allowing at least some unit opening/closing portions 310 to be set to have different opening pressure levels, gas discharge and/or oxygen blocking performance may be achieved more effectively. Moreover, depending on the location of the opening 211, the pressure at which gas is discharged or the degree of oxygen inflow may vary, but according to this embodiment, a more adaptive response may be possible according to each situation. For example, for an opening 211 where a relatively large amount of gas is discharged or a lot of oxygen may be introduced, the unit opening/closing portion 310 may be configured open at a relatively high internal pressure level, compared to other openings 211.
[0082] In particular, as shown in the former several drawings, the plurality of openings 211 forming the discharge hole 210 may be arranged in a vertical direction. In addition, the opening/closing member 300 is configured such that a unit opening/closing portion 310 located at an upper side among the at least two unit opening/closing portions 310 opens the opening 211 at a level higher pressure than the unit opening/closing portion 310 located at a lower side.
[0083] For example, as shown in
[0084] According to this configuration of the present disclosure, the opening/closing performance may be more uniformly maintained for the plurality of unit opening/closing portions 310 arranged in a vertical direction. In particular, the gas discharged from the inside of the battery module 100 is often at a high temperature, and the high-temperature gas may be located more at the upper portion inside the duct 200 rather than at the lower portion. Accordingly, a greater force may be applied to the unit opening/closing portion 310 located at the upper side than to the unit opening/closing portion 310 located at the lower side. However, when this force is applied several times or more, the restoring force of the unit opening/closing portion 310 located at the upper side may be lowered compared to that of the unit opening/closing portion 310 located at the lower side. In addition, after the internal gas is discharged, the lowered restoring force may deteriorate the speed or force of the unit opening/closing portion 310 located at the upper side to close the opening 211, which may cause a problem, for example deteriorating the oxygen blocking performance or the like.
[0085] However, according to this embodiment, since the elastic modulus of the unit opening/closing portion 310 located at the upper side is increased, it is possible to prevent the performance of the unit opening/closing portion 310 located at the upper side to close the opening 211 from being reduced compared to the unit opening/closing portion 310 located at the lower side. Therefore, in this case, the performance such as oxygen blocking for the plurality of openings 211 may be kept more constant.
[0086] Moreover, in this embodiment, each of the plurality of unit opening/closing portions 310 may have an elastic member. In addition, the unit opening/closing portion 310 located at the upper side among the at least two unit opening/closing portions 310 included in the plurality of unit opening/closing portions 310 may be configured to include an elastic member having a higher elastic modulus, compared to the unit opening/closing portion 310 located at the lower side.
[0087] For example, each of the plurality of unit opening/closing portions 310 may include an elastic member to open and close the corresponding opening 211. At this time, the unit opening/closing portion 310 located at the upper side based on the central portion in the vertical direction may include an elastic member having a higher elastic modulus, compared to the unit opening/closing portion 310 located at the lower side.
[0088] As a more specific example, when ten unit opening/closing portions 310 are arranged in the vertical direction so that each unit opening/closing portion 310 has a spring, five unit opening/closing portions 310 at the upper side may be configured to have a higher spring constant than five unit opening/closing portions 310 located at the lower side. As another example, when ten unit opening/closing portions 310 are arranged in the vertical direction, the spring constant of each spring may be gradually increased from the bottom to the top.
[0089] According to this configuration of the present disclosure, even with a simple configuration, the gas discharge performance and the oxygen blocking performance of the unit opening/closing portions 310 arranged in the vertical direction may be more stably secured.
[0090]
[0091] Referring to
[0092] In particular, with respect to at least two openings 211, the area of the opening 211 located at an upper side may be relatively larger than the area of the opening 211 located at a lower side. For example, as shown in
[0093] According to this configuration of the present disclosure, it is possible to stably secure the gas discharge performance through the plurality of openings 211. In particular, at the lower side of the duct 200, the density of the high-temperature gas may be lower than that at the upper side. According to this embodiment, in the opening 211 located at the lower side, the gas may be discharged to the outside even with a small internal pressure due to the small area. Therefore, the gas existing in the inner space of the duct 200 may be uniformly discharged to the outside at both the upper and lower positions.
[0094]
[0095] Referring to
[0096] More specifically, in the configuration of
[0097] In this configuration, if the gas generated from the battery module 100 flows into the inner space of the duct 200, particularly the inner duct Db indicated by Db, to increase the internal pressure, the inner opening/closing portion 310b may be opened first. In addition, if the gas passing through the inner opening 211b flows into the outer duct indicated by Da to increase the internal pressure, the outer opening/closing portion 310a may be opened. In addition, if both the inner opening/closing portion 310b and the outer opening/closing portion 310a are opened as described above, the gas inside the duct 200 may be discharged to the outside of the duct 200 as indicated by an arrow in
[0098] According to this embodiment configuration, the oxygen inflow blocking performance may be further improved. In particular, in this embodiment, the opening/closing member 300 is located in multiple in the gas discharge direction, and the inflow of oxygen into the duct 200 may be more reliably blocked by the multiple opening/closing members 300.
[0099] In particular, in this embodiment, the outer opening/closing portion 310a and the inner opening/closing portion 310b may be configured to open and close in different forms.
[0100] For example, as shown in
[0101] According to this configuration of the present disclosure, the inflow path of oxygen may not be formed in a straight line but may be formed in a curved or bent shape. Therefore, in this case, the inflow of oxygen may be blocked more reliably.
[0102] Also, the outer opening/closing portion 310a and the inner opening/closing portion 310b may be configured to open the openings 211 in different pressure levels. In particular, the inner opening/closing portion 310b may be configured to open the opening 211 in a higher pressure level than the outer opening/closing portion 310a.
[0103] For example, when the outer opening/closing portion 310a and the inner opening/closing portion 310b are configured to include leaf springs 320a, 320b as elastic members as shown in
[0104] According to this configuration of the present disclosure, when the gas is discharged from the duct 200 to the outside, the inner opening/closing portion 310b may be closed first. Accordingly, since the inner opening/closing portion 310b is first closed while the gas is discharged from the outer duct Da to the outside of the duct 200, it is possible to more reliably block the oxygen at the outside of the duct 200 from flowing into the inner duct Db. That is, according to this embodiment, the oxygen blocking performance may be further improved.
[0105] The opening/closing member 300 may be configured to be changed from a closed state to an opened state by moving only in one direction.
[0106] For example, as shown in
[0107] In particular, the opening/closing member 300 may include a stopper to prevent further movement in the inner direction when being in a state of closing the opening 211, as shown in
[0108] According to this configuration of the present disclosure, when the opening/closing member 300 is closed again after the gas inside the duct 200 is discharged to the outside as the opening/closing member 300 is opened, the closed state may be maintained more stably. In particular, according to this embodiment, when the opening/closing member 300 is changed from the opened state to the closed state, it is possible to more reliably block the inflow of oxygen or the like through the discharge hole 210.
[0109]
[0110] Referring to
[0111] Here, when the opening/closing member 300 moves in the arrow direction by the restoring force of the leaf spring 320 to close the duct 200, the sealing portions S1, S2 may improve the sealing performance of the duct 200 by the opening/closing member 300. To this end, the sealing portions S1, S2 may be made of an elastic material such as rubber or polymer.
[0112] In particular, when both the sealing portion (the first sealing portion S1) of the duct 200 and the sealing portion (the second sealing portion S2) of the opening/closing member 300 are provided, the first sealing portion S1 and the second sealing portion S2 may be configured such that any one sealing portion is surrounded by the other sealing portion. This will be described in more detail with reference to
[0113]
[0114] Referring to
[0115] According to this configuration of the present disclosure, when the opening/closing member 300 closes the discharge hole 210, the sealing force by the sealing portions S1, S2 may be further improved. That is, in a state where the opening/closing member 300 closes the discharge hole 210, in order for external oxygen to flow into the discharge hole 210, the external oxygen must move as indicated by the arrow in
[0116] Moreover, in this embodiment, the first sealing portion S1 and the second sealing portion S2 may be configured to contact each other as a whole. In this case, the sealing force may be further increased due to the elastic pressing force of the first sealing portion S1 and the second sealing portion S2. Therefore, in this case, the oxygen blocking effect may be further improved.
[0117] The battery pack according to an embodiment of the present disclosure may further include an oxygen absorbing member (not shown).
[0118] The oxygen absorbing member may be configured to include an oxygen absorbing material in the inner space thereof. Here, the oxygen absorbing member may employ various oxygen absorbing materials known at the time of filing of this application. The oxygen absorbing member may be attached to the duct 200 and/or the opening/closing member 300. In particular, the oxygen absorbing member may be located in the inner space of the duct 200. For example, the oxygen absorbing member may be attached to the inner surface of the duct 200. In this case, even if a small amount of oxygen is introduced into the inner space of the duct 200, the oxygen may be completely removed from the duct 200 by the oxygen absorbing member. Therefore, in this case, the possibility of fire may be further reduced because oxygen does not approach the heat source.
[0119] Moreover, in the embodiment of
[0120] Meanwhile, in the above embodiments, it is described that the opening/closing member 300 performs the opening/closing operation in a hinge-pivoting manner, but the present disclosure is not necessarily limited to this opening/closing operation. For example, the opening/closing member 300 may be configured to open or close the discharge hole 210 by moving in a sliding manner. In addition, the opening/closing member 300 may be configured to perform the opening/closing operation by a separately provided motor or the like.
[0121] In addition, in the former various embodiments, it is shown and described that the duct 200 is formed only at one side of the battery pack, but the present disclosure is not necessarily limited to these embodiments.
[0122] For example, the duct 200 may be formed at both sides of the battery pack. As a more specific example, in the configuration of
[0123] In addition, in this case, the opening/closing member 300 may be located at both the front duct and the rear duct. At this time, since several features related to the configuration of the opening/closing member 300 or the duct 200 as described above may be applied in the same or similar manner to this embodiment, and thus will not be described in detail again.
[0124] An energy storage system according to the present disclosure may include at least one battery pack according to the present disclosure. In particular, the energy storage system may include a plurality of battery packs according to the present disclosure in the form of being electrically connected to each other in order to have a large energy capacity. In addition, the energy storage system according to the present disclosure may further include other various components of the energy storage system known at the time of filing of this application. Moreover, the energy storage system may be used in various places or devices, such as a smart grid system or an electric charging station.
[0125] Meanwhile, in this specification, terms indicating directions such as “upper”, “lower”, “left”, “right”, “front”, and “rear” are used, but these terms are just for convenience of explanation, and it is obvious to those skilled in the art that these terms may vary depending on the location of an object or the position of an observer.
[0126] The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only, since various changes and modifications within the scope of the disclosure will become apparent to those skilled in the art from this detailed description.
REFERENCE SIGNS
[0127] 100: battery module [0128] 110: secondary battery [0129] 111: electrode lead [0130] 120: module case [0131] 121: upper plate, 122: lower plate, 123: side plate, 124: rear plate [0132] 130: bus bar assembly [0133] 131: bus bar housing, 132: module bus bar [0134] 200: duct [0135] 210: discharge hole [0136] 211: opening [0137] 211a: outer opening, 211b: inner opening [0138] 220: inlet hole [0139] 300: opening/closing member [0140] 310: unit opening/closing portion [0141] 310a: outer opening/closing portion, 310b: inner opening/closing portion [0142] 320, 320a, 320b: leaf spring [0143] Da: outer duct, Db: inner duct [0144] S1: first sealing portion, S2: second sealing portion