JP2015162357A - Cell stack device, fuel cell module and fuel cell device - Google Patents

Cell stack device, fuel cell module and fuel cell device Download PDF

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JP2015162357A
JP2015162357A JP2014036840A JP2014036840A JP2015162357A JP 2015162357 A JP2015162357 A JP 2015162357A JP 2014036840 A JP2014036840 A JP 2014036840A JP 2014036840 A JP2014036840 A JP 2014036840A JP 2015162357 A JP2015162357 A JP 2015162357A
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plate
power receiving
cell stack
receiving plate
fuel cell
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JP6175385B2 (en
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光博 中村
Mitsuhiro Nakamura
光博 中村
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Kyocera Corp
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    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
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Abstract

PROBLEM TO BE SOLVED: To provide a cell stack device in which the characteristics, required for a power receiving plate and a protective plate, can be satisfied easily and simultaneously, and to provide a fuel cell module and a fuel cell device.SOLUTION: A cell stack device includes a cell stack 2, a pair of conductive members 5 arranged at both ends of the cell stack 2 in an arrangement direction x of fuel cells 3, so as to sandwich the cell stack 2 with end collector members 4b, bonded to the fuel cell 3, interposed therebetween, and a gas tank 7 for fixing the lower end of the fuel cell 3 and supplying reaction gas thereto. The conductive member 5 includes a power receiving plate 5a bonded to the end collector member 4b, and a protective plate 5b provided on the outside of a power receiving plate 5a1 in the arrangement direction x. Lower end of the power receiving plate 5a is fixed to the gas tank 7, and the lower end of the protective plate 5b is held by the lower end of the power receiving plate 5a.

Description

本発明は、複数個の柱状の燃料電池セルを電気的に接続してなるセルスタック装置、燃料電池モジュールおよび燃料電池装置に関する。   The present invention relates to a cell stack device, a fuel cell module, and a fuel cell device in which a plurality of columnar fuel cells are electrically connected.

近年、次世代エネルギーとして、セルスタック装置を、収納容器に収納してなる燃料電池装置が提案されている(例えば、特許文献1参照)。   In recent years, as a next-generation energy, a fuel cell device in which a cell stack device is stored in a storage container has been proposed (see, for example, Patent Document 1).

この特許文献1のセルスタック装置は、複数個の燃料電池セルを集電部材を介して立設させた状態で配列するとともに、その配列方向の両端部に端部集電部材を介して導電部材を配置し、燃料電池セルの下端部と、導電部材の下端部とをガスタンクに固定して構成されている。   In the cell stack device of Patent Document 1, a plurality of fuel cells are arranged in a standing state via current collecting members, and conductive members are arranged at both ends in the arrangement direction via end current collecting members. The lower end of the fuel cell and the lower end of the conductive member are fixed to the gas tank.

そして、導電部材は、端部集電部材に接合された受電部と、受電部を保護するための保護部とを具備して構成されており、受電部には電流引出部が一体的に設けられている。受電部と保護部は一枚板で構成され、一枚板を所定形状に切断し、折曲することで構成されている。セルスタック装置の周囲には、セルスタック装置を高温に保持するため断熱材が配置されるが、この断熱材が受電部に直接接触することによる悪影響を防止するため、保護部が設けられている。   The conductive member includes a power receiving unit joined to the end current collecting member and a protection unit for protecting the power receiving unit, and the current extracting unit is provided integrally with the power receiving unit. It has been. The power reception unit and the protection unit are configured by a single plate, and are configured by cutting and bending the single plate into a predetermined shape. Around the cell stack device, a heat insulating material is arranged to keep the cell stack device at a high temperature, but a protective unit is provided to prevent an adverse effect of the heat insulating material coming into direct contact with the power receiving unit. .

特開2010−129270号公報JP 2010-129270 A

特許文献1のセルスタック装置では、導電部材が一枚板で構成されていたため、受電部に要求される特性(例えば剛性が低い)と、保護部に要求される特性(例えば剛性が高い)とを同時に満足する導電部材を得ることが困難であった。また、導電部材が一枚板で構成されていたため、その加工が困難であった。   In the cell stack device of Patent Document 1, since the conductive member is composed of a single plate, characteristics required for the power receiving unit (for example, low rigidity) and characteristics required for the protection unit (for example, high rigidity) It was difficult to obtain a conductive member satisfying the above. In addition, since the conductive member is composed of a single plate, it is difficult to process the conductive member.

本発明は、受電板および保護板に要求される特性を同時にかつ容易に満足できるセルスタック装置、燃料電池モジュールおよび燃料電池装置を提供することを目的とする。   An object of the present invention is to provide a cell stack device, a fuel cell module, and a fuel cell device that can simultaneously and easily satisfy characteristics required for a power receiving plate and a protective plate.

本発明のセルスタック装置は、柱状の燃料電池セルを集電部材を介して複数個立設させた状態で配列して電気的に接続してなるセルスタックと、前記燃料電池セルの配列方向における前記セルスタックの両端に、前記燃料電池セルに接合された端部集電部材を介して前記セルスタックを狭持するように配置された一対の導電部材と、前記燃料電池セルの下端部を固定するとともに前記燃料電池セルに反応ガスを供給するためのガスタンクとを具備するセルスタック装置であって、前記導電部材は、前記端部集電部材に接合された受電板と、該受電板の前記配列方向における外側に設けられた保護板とを具備するとともに、前記受電板の下端部が前記ガスタンクに固定されており、前記保護板の下端部が前記受電板の下端部に保持されていることを特徴とする。   A cell stack device according to the present invention includes a cell stack in which a plurality of columnar fuel cells are arranged and electrically connected in a state of being erected via a current collecting member, and a direction in which the fuel cells are arranged. A pair of conductive members arranged so as to sandwich the cell stack via an end current collecting member joined to the fuel cell, and a lower end portion of the fuel cell are fixed to both ends of the cell stack And a gas tank for supplying a reaction gas to the fuel cell, wherein the conductive member includes a power receiving plate joined to the end current collecting member, and the power receiving plate A protective plate provided outside in the arrangement direction, the lower end of the power receiving plate is fixed to the gas tank, and the lower end of the protective plate is held by the lower end of the power receiving plate. The features.

本発明の燃料電池モジュールは、上記のセルスタック装置を収納容器内に収納してなることを特徴とする。   The fuel cell module of the present invention is characterized in that the cell stack device is housed in a housing container.

本発明の燃料電池装置は、上記の燃料電池モジュールを外装ケース内に収納してなることを特徴とする。   The fuel cell device of the present invention is characterized in that the fuel cell module described above is housed in an outer case.

本発明のセルスタック装置では、燃料電池セルの配列方向における受電板の外側に保護板が設けられ、受電板の下端部がガスタンクに固定され、この受電板の下端部に、保護板の下端部が保持されているため、例えば断熱材が受電板に接触することを保護板で阻止し、保護できるとともに、保護板と受電板とが別体であるため、例えば、セルスタックの傾斜に対して受電板を柔軟に追従させるため、受電板の厚みを薄くする一方で、保護板の厚みを厚くしたり、受電板と保護板の構成材料を異らせることができ、受電板および保護板に要求される特性を同時にかつ容易に満足できる。   In the cell stack device of the present invention, a protective plate is provided outside the power receiving plate in the arrangement direction of the fuel cells, the lower end of the power receiving plate is fixed to the gas tank, and the lower end of the protective plate is connected to the lower end of the power receiving plate. Since the protective plate prevents the heat insulating material from coming into contact with the power receiving plate, for example, and can be protected, and the protective plate and the power receiving plate are separate, for example, against the inclination of the cell stack. In order to make the power receiving plate follow flexibly, the thickness of the power receiving plate can be reduced, while the thickness of the protective plate can be increased, or the constituent materials of the power receiving plate and the protective plate can be made different. The required characteristics can be satisfied simultaneously and easily.

セルスタック装置の一例を示し、(a)はセルスタック装置を概略的に示す側面図、(b)は(a)のセルスタック装置の波線で囲った部分および導電部材を拡大した横断面図である。An example of a cell stack apparatus is shown, (a) is a side view schematically showing the cell stack apparatus, (b) is an enlarged cross-sectional view of a portion surrounded by a wavy line and a conductive member of the cell stack apparatus of (a). is there. 集電部材の一例を示し、(a)は正面図、(b)は平面図である。An example of a current collection member is shown, (a) is a front view, (b) is a plan view. 受電板と保護板とを具備する導電部材の一例を示す分解斜視図である。It is a disassembled perspective view which shows an example of the electrically-conductive member which comprises a power receiving plate and a protective plate. 受電板に対する保護板の組み付け状態を説明するもので、(a)は分解斜視図、(b)は受電板に保護板を組み付けた状態を示す斜視図、(c)は保護板の側板に設けられた凸部が、受電板の側板に設けられた開口部に嵌合している状態を示す断面図である。It explains the assembled state of the protective plate with respect to the power receiving plate, (a) is an exploded perspective view, (b) is a perspective view showing a state where the protective plate is assembled to the power receiving plate, (c) is provided on the side plate of the protective plate It is sectional drawing which shows the state by which the produced convex part was fitted in the opening part provided in the side plate of a receiving plate. (a)は間隔保持板を有しない保護板を用いた導電部材を示す分解斜視図、(b)は、凹溝を形成した受電板を用いた導電部材を示す分解斜視図である。(A) is a disassembled perspective view which shows the electrically-conductive member using the protection board which does not have a space | interval holding plate, (b) is an exploded perspective view which shows the electrically-conductive member using the power receiving plate in which the ditch | groove was formed. 導電部材および燃料電池セルの下端部をガスタンクに接合した状態を示す断面図である。It is sectional drawing which shows the state which joined the electrically conductive member and the lower end part of the fuel cell to the gas tank. 燃料電池モジュールの一例を示す外観斜視図である。It is an external appearance perspective view which shows an example of a fuel cell module. 燃料電池装置の一例を示す分解斜視図である。It is a disassembled perspective view which shows an example of a fuel cell apparatus.

図1は、セルスタック装置1の一例を示すもので、(a)はセルスタック装置1を概略的に示す側面図、(b)は(a)のセルスタック装置1の一部拡大横断面図である。また、同一の部材については同一の符号を付するものとし、以下同様とする。なお、(b)において(a)で示した破線で囲った部分に対応する部分を明確とするために矢印にて示している。   FIG. 1 shows an example of a cell stack device 1, (a) is a side view schematically showing the cell stack device 1, and (b) is a partially enlarged cross-sectional view of the cell stack device 1 of (a). It is. The same members are denoted by the same reference numerals, and so on. In addition, in (b), in order to clarify, the part corresponding to the part enclosed with the broken line shown by (a) is shown with the arrow.

ここで、セルスタック装置1は、一対の対向する平坦面をもつ柱状の導電性支持体12(以下、支持体12と略す場合がある。)の一方側の平坦面上に内側電極層としての燃料側電極層8と、固体電解質層9と、外側電極層としての酸素側電極層10とを順に積層してなる柱状(中空平板型)の燃料電池セル3を有している。そして、燃料電池セル3の複数個を立設するとともに、隣接する燃料電池セル3間を集電部材4aを介して電気的に直列に接続してセルスタック2を構成し、燃料電池セル3の下端部を、燃料電池セル3に燃料ガスを供給するためのガスタンク7の開口部に電気絶縁性のシール材Sで接合固定して構成されている。   Here, the cell stack device 1 is provided as an inner electrode layer on a flat surface on one side of a columnar conductive support 12 having a pair of opposed flat surfaces (hereinafter sometimes abbreviated as support 12). It has a columnar (hollow flat plate) fuel cell 3 in which a fuel-side electrode layer 8, a solid electrolyte layer 9, and an oxygen-side electrode layer 10 as an outer electrode layer are sequentially laminated. A plurality of fuel cells 3 are erected, and adjacent fuel cells 3 are electrically connected in series via current collecting members 4 a to form a cell stack 2. The lower end portion is configured to be joined and fixed to an opening portion of a gas tank 7 for supplying fuel gas to the fuel cell 3 with an electrically insulating sealing material S.

また、セルスタック装置1は、燃料電池セル3の配列方向xの両端から端部集電部材4bを介してセルスタック2を挟持するように、ガスタンク7に下端部がシール材Sで固定された導電部材5を具備している。   Further, the cell stack device 1 has a lower end fixed to the gas tank 7 with a sealing material S so as to sandwich the cell stack 2 from both ends in the arrangement direction x of the fuel cells 3 via the end current collecting members 4b. A conductive member 5 is provided.

さらに、支持体12の他方側の平坦面上にはインターコネクタ11が設けられており、支持体12の内部には、燃料電池セル3に燃料ガスを流すためのガス流路13が複数設けられている。   Furthermore, an interconnector 11 is provided on the other flat surface of the support 12, and a plurality of gas flow paths 13 for flowing fuel gas to the fuel cells 3 are provided inside the support 12. ing.

また、インターコネクタ11の外面(上面)にはP型半導体層14が設けられている。集電部材4a(端部集電部材4b)を、P型半導体層14を介してインターコネクタ11に接続させることにより、両者の接触がオーム接触となり、電位降下を少なくし、集電性能の低下を有効に回避することが可能となる。   A P-type semiconductor layer 14 is provided on the outer surface (upper surface) of the interconnector 11. By connecting the current collecting member 4a (the end current collecting member 4b) to the interconnector 11 via the P-type semiconductor layer 14, the contact between them becomes an ohmic contact, the potential drop is reduced, and the current collecting performance is reduced. Can be effectively avoided.

また、支持体12を燃料側電極層8を兼ねるものとし、その一方側表面上に固体電解質層9および酸素側電極層10を順次積層して燃料電池セル3を構成することもできる。   Alternatively, the fuel cell 3 can be configured by using the support 12 also as the fuel-side electrode layer 8 and sequentially laminating the solid electrolyte layer 9 and the oxygen-side electrode layer 10 on the surface of one side thereof.

なお、燃料電池セル3としては、各種燃料電池セルが知られているが、発電効率のよい燃料電池セル3とする上で、固体酸化物形の燃料電池セル3とすることができる。それにより、単位電力に対して燃料電池装置を小型化することができるとともに、家庭用燃料電池で求められる変動する負荷に追従する負荷追従運転を行なうことができる。   Various fuel cells are known as the fuel cell 3. However, when the fuel cell 3 has high power generation efficiency, it can be a solid oxide fuel cell 3. Accordingly, the fuel cell device can be reduced in size with respect to unit power, and a load following operation that follows a fluctuating load required for a household fuel cell can be performed.

以下に、図1において示すセルスタック装置1を構成する各部材について説明する。   Below, each member which comprises the cell stack apparatus 1 shown in FIG. 1 is demonstrated.

燃料側電極層8は、一般的に公知のものを使用することができ、多孔質の導電性セラミックス、例えば希土類元素酸化物が固溶しているZrO(安定化ジルコニアと称し、部分安定化ジルコニアも含む)とNiおよび/またはNiOとから形成することができる。 As the fuel-side electrode layer 8, generally known ones can be used, and porous conductive ceramics, for example, ZrO 2 in which a rare earth element oxide is dissolved (referred to as stabilized zirconia, partially stabilized). Including zirconia) and Ni and / or NiO.

固体電解質層9は、電極間の電子の橋渡しをする電解質としての機能を有していると同時に、燃料ガスと酸素含有ガスとのリークを防止するためにガス遮断性を有することが必要とされ、3〜15モル%の希土類元素酸化物が固溶したZrOから形成される。なお、上記特性を有する限りにおいては、他の材料等を用いて形成してもよい。 The solid electrolyte layer 9 has a function as an electrolyte that bridges electrons between the electrodes, and at the same time, has to have a gas barrier property in order to prevent leakage between the fuel gas and the oxygen-containing gas. 3 to 15 mol% of rare earth element oxide is formed from ZrO 2 as a solid solution. In addition, as long as it has the said characteristic, you may form using another material etc.

酸素側電極層10は、一般的に用いられるものであれば特に制限はなく、例えば、いわゆるABO型のペロブスカイト型酸化物からなる導電性セラミックスから形成することができる。酸素側電極層10はガス透過性を有していることが必要であり、開気孔率が20%以上、特に30〜50%の範囲にあることが好ましい。 The oxygen-side electrode layer 10 is not particularly limited as long as it is generally used. For example, the oxygen-side electrode layer 10 can be formed from a conductive ceramic made of a so-called ABO 3 type perovskite oxide. The oxygen-side electrode layer 10 needs to have gas permeability, and the open porosity is preferably 20% or more, particularly preferably in the range of 30 to 50%.

インターコネクタ11は、導電性セラミックスから形成することができるが、燃料ガス(水素含有ガス)および酸素含有ガス(空気等)と接触するため、耐還元性及び耐酸化性を有することが必要であり、それゆえランタンクロマイト系のペロブスカイト型酸化物(LaCrO系酸化物)が好適に使用される。インターコネクタ11は支持体12に形成されたガス流路13を流通する燃料ガス、および燃料電池セル3の外側を流通する酸素含有ガスのリークを防止するために緻密質でなければならず、93%以上、特に95%以上の相対密度を有していることが好ましい。 Although the interconnector 11 can be formed from conductive ceramics, it needs to have reduction resistance and oxidation resistance because it comes in contact with a fuel gas (hydrogen-containing gas) and an oxygen-containing gas (air, etc.). Therefore, a lanthanum chromite-based perovskite oxide (LaCrO 3 -based oxide) is preferably used. The interconnector 11 must be dense in order to prevent leakage of fuel gas flowing through the gas flow path 13 formed in the support 12 and oxygen-containing gas flowing outside the fuel cell 3, and 93 It is preferable to have a relative density of 95% or more, particularly 95% or more.

支持体12としては、燃料ガスを燃料側電極層8まで透過するためにガス透過性であること、さらには、インターコネクタ11を介して集電するために導電性であることが要求される。したがって、支持体12としては、かかる要求を満足するものを材質として採用する必要があり、例えば導電性セラミックスやサーメット等を用いることができる。燃料側電極層8または固体電解質層9との同時焼成により支持体12を作製する場合においては、鉄属金属成分と特定希土類酸化物とから支持体12を形成することが好ましい。また、支持体12は、燃料ガス透過性を備えるために開気孔率が30%以上、特に35〜50%の範囲にあるのが好適であり、そしてまたその導電率は300S/cm以上、特に440S/cm以上であるのが好ましい。   The support 12 is required to be gas permeable in order to allow the fuel gas to pass through to the fuel side electrode layer 8 and to be conductive in order to collect current via the interconnector 11. Therefore, as the support 12, it is necessary to adopt a material satisfying such a requirement as a material, and for example, conductive ceramics, cermet, or the like can be used. When the support 12 is produced by simultaneous firing with the fuel-side electrode layer 8 or the solid electrolyte layer 9, it is preferable to form the support 12 from an iron group metal component and a specific rare earth oxide. The support 12 preferably has an open porosity of 30% or more, particularly 35 to 50% in order to have fuel gas permeability, and its conductivity is 300 S / cm or more, particularly It is preferable that it is 440 S / cm or more.

また図1に示した燃料電池セル3において、柱状の支持体12は、燃料電池セル3の長さ方向y(立設方向)に細長く延びる板状片であり、一対の対向する平坦面と半円形状の両側面を有する中空平板状である。そして燃料電池セル3の下端部と後述する導電部材5の下端部とが、燃料電池セル3に燃料ガスを供給するガスタンク7の開口部に、例えば耐熱性に優れたシール材S(ガラスシール材等)によって固定され、支持体12に設けられたガス流路13が、燃料ガス室(図示せず)に通じている。   In the fuel cell 3 shown in FIG. 1, the columnar support 12 is a plate-like piece elongated in the length direction y (standing direction) of the fuel cell 3, and has a pair of opposed flat surfaces and a half It is a hollow flat plate shape having circular side surfaces. And the lower end part of the fuel cell 3 and the lower end part of the conductive member 5 to be described later are provided in the opening of the gas tank 7 for supplying the fuel gas to the fuel cell 3, for example, a sealing material S (glass sealing material) having excellent heat resistance. Etc.) and a gas flow path 13 provided in the support 12 communicates with a fuel gas chamber (not shown).

さらに、P型半導体層14としては、遷移金属のペロブスカイト型酸化物からなる層を例示することができる。具体的には、インターコネクタ11を構成するランタンクロマイト系のペロブスカイト酸化物(LaCrO)よりも電子伝導性の高いもの、例えばBサイトにMn、Fe、Co等が存在するLaCrO系酸化物などの少なくとも一種からなるP型半導体セラミックスを使用することができる。このようなP型半導体層14の厚みは、一般に、30〜100μmの範囲にあることが好ましい。 Further, as the P-type semiconductor layer 14, a layer made of a perovskite oxide of a transition metal can be exemplified. Specifically, a high electron conductivity than the perovskite oxide of lanthanum chromite system constituting the interconnector 11 (LaCrO 3), such as B site Mn, Fe, LaCrO 3 based oxide such as Co is present, such as P-type semiconductor ceramics made of at least one of the above can be used. In general, the thickness of the P-type semiconductor layer 14 is preferably in the range of 30 to 100 μm.

そして、燃料電池セル3は集電部材4aおよび端部集電部材4bを介して電気的に直列に接続されている。なお、集電部材4aおよび端部集電部材4bは、弾性を有する金属または合金からなる部材あるいは金属繊維または合金繊維から成るフェルトに所要の表面処理を加えた部材から構成することができる。   The fuel cells 3 are electrically connected in series via the current collecting member 4a and the end current collecting member 4b. The current collecting member 4a and the end current collecting member 4b can be formed of a member made of an elastic metal or alloy, or a member obtained by adding a required surface treatment to a felt made of metal fiber or alloy fiber.

図2は、燃料電池セル3間を電気的に接続するための集電部材4aの一例を示したものである。図2に示した集電部材4aは、隣接する一方の燃料電池セル3の酸素側電極層10に当接する一方の接触部16と、隣接する他方の燃料電池セル3のP型半導体層14(P型半導体層14がない場合にはインターコネクタ11)に当接する他方の接触部16と、これら一対の接触部16の両端同士をそれぞれ接合する接続部17とを基本構成の導電片として具備する。より詳細には左右に配置される接続部17間に渡された複数の帯状をした接触部16を、図2(b)に示すように、接続部17に対して交互に(紙面に対して上下方向)に突出させるように折り曲げて導電片を構成し、この導電片の複数個を、導電性連結片19を介して燃料電池セル3の長さ方向yに沿って連続的に形成することにより、燃料電池セル3の長さ方向yに延在する一繋がりの集電部材4aを形成している。集電部材4a、端部集電部材4bは、導電性接着剤で燃料電池セル3に接合している。   FIG. 2 shows an example of a current collecting member 4 a for electrically connecting the fuel cells 3. The current collecting member 4a shown in FIG. 2 includes one contact portion 16 that contacts the oxygen-side electrode layer 10 of one adjacent fuel cell 3 and a P-type semiconductor layer 14 ( In the absence of the P-type semiconductor layer 14, the other contact portion 16 that contacts the interconnector 11) and the connection portion 17 that joins both ends of the pair of contact portions 16 are provided as conductive pieces having a basic configuration. . More specifically, as shown in FIG. 2B, a plurality of strip-shaped contact portions 16 passed between the connection portions 17 arranged on the left and right are alternately arranged with respect to the connection portions 17 (with respect to the paper surface). A conductive piece is formed by bending so as to protrude in the vertical direction), and a plurality of the conductive pieces are continuously formed along the length direction y of the fuel cell 3 via the conductive connecting piece 19. Thus, a continuous current collecting member 4a extending in the length direction y of the fuel battery cell 3 is formed. The current collecting member 4a and the end current collecting member 4b are joined to the fuel cell 3 with a conductive adhesive.

このような集電部材4aは、集電効率のよい集電部材(すなわち、燃料電池セル3との接触面積が多い集電部材)であるため、セルスタック装置1において有用となる。端部集電部材4bとしては、集電部材4aと同じものを使用できるが、集電部材4aよりも変形し易いものが望ましい。   Such a current collecting member 4a is a current collecting member with high current collecting efficiency (that is, a current collecting member having a large contact area with the fuel cell 3), and thus is useful in the cell stack device 1. As the end current collecting member 4b, the same material as the current collecting member 4a can be used, but it is preferable that the end current collecting member 4b be more easily deformed than the current collecting member 4a.

図3、図4は、導電部材5の一例を示したもので、導電部材5は、受電板5aと、この受電板5aよりも燃料電池セル3の配列方向xに沿った外側に設けられた保護板5bとを具備して構成されており、図5に示すように、受電板5aの下端部がガスタンク7に固定され、保護板5bの下端部が受電板5aの下端部に保持固定されている。   3 and 4 show an example of the conductive member 5. The conductive member 5 is provided on the power receiving plate 5a and outside the power receiving plate 5a along the arrangement direction x of the fuel cells 3. As shown in FIG. 5, the lower end portion of the power receiving plate 5a is fixed to the gas tank 7, and the lower end portion of the protective plate 5b is held and fixed to the lower end portion of the power receiving plate 5a. ing.

すなわち、受電板5aは、端部集電部材4bが接合された平板板5a1と、この平板5a1の下端部に設けられた側板5a2と、燃料電池セル3の配列方向xに沿って外側に延びる帯状の電流引出部5a3とを具備して構成されている。また、保護板5bは、受電板5aの平板5a1とほぼ平行に設けられた平板部5b1と、この平板部5b1の下端部に設けられた側板5b2とを具備している。   That is, the power receiving plate 5a extends outward along the arrangement direction x of the fuel cells 3 and the flat plate 5a1 to which the end current collecting member 4b is joined, the side plate 5a2 provided at the lower end of the flat plate 5a1. A belt-shaped current extraction portion 5a3 is provided. The protective plate 5b includes a flat plate portion 5b1 provided substantially parallel to the flat plate 5a1 of the power receiving plate 5a, and a side plate 5b2 provided at the lower end portion of the flat plate portion 5b1.

受電板5aの側板5a2と、保護板5bの側板5b2は、受電板5aの平板板5a1、保護板5bの平板部5b1の幅方向両端に、それぞれ設けられている。一対の側板5a2
間の距離は、一対の側板5a2間に一対の側板5b2が入り込むだけの間隔を有している。
The side plate 5a2 of the power receiving plate 5a and the side plate 5b2 of the protective plate 5b are respectively provided at both ends in the width direction of the flat plate 5a1 of the power receiving plate 5a and the flat plate portion 5b1 of the protective plate 5b. A pair of side plates 5a2
The distance between them is such that the pair of side plates 5b2 enters between the pair of side plates 5a2.

受電板5aの側板5a2が、対向する保護板5b側に向けて延びており、保護板5bの側板5b2が、対向する受電板5a側に向けて延びている。受電板5aの側板5a2には開口部5a21が形成され、保護板5bの側板5b2には、外側に突出し、開口部5a21に嵌合する凸部5b21が形成され、図4(c)に示すように、受電板5aの側板5a2の開口部5a21に、保護板5bの側板5b2の凸部5b21が嵌合している。   The side plate 5a2 of the power receiving plate 5a extends toward the opposing protective plate 5b, and the side plate 5b2 of the protective plate 5b extends toward the opposing power receiving plate 5a. An opening 5a21 is formed in the side plate 5a2 of the power receiving plate 5a, and a convex portion 5b21 that protrudes outward and fits into the opening 5a21 is formed in the side plate 5b2 of the protection plate 5b, as shown in FIG. Further, the convex portion 5b21 of the side plate 5b2 of the protection plate 5b is fitted into the opening 5a21 of the side plate 5a2 of the power receiving plate 5a.

また、保護板5bの側板5b2には、受電板5a側に突出する突起5b22が設けられており、受電板5aの平板5aの幅方向の側面には凹部5a11が設けられ、保護板5bの突起5b22が受電板5aの凹部5a11に係合し、保護板5bが受電板5a側に倒れることを阻止している。   Further, the side plate 5b2 of the protection plate 5b is provided with a projection 5b22 that protrudes toward the power receiving plate 5a, the recess 5a11 is provided on the side surface in the width direction of the flat plate 5a of the power receiving plate 5a, and the projection of the protection plate 5b. 5b22 engages with the recess 5a11 of the power receiving plate 5a to prevent the protective plate 5b from falling to the power receiving plate 5a side.

さらに、受電板5aの開口部5a21に、保護板5bの凸部5b21が嵌合すると同時に、保護板5bの突起5b22が受電板5aの凹部5a11に係合し、さらに保護板5bの側板5b2の受電板5a側の面が、受電板5aの平板5a1に当接し、受電板5aの下端部に保護板5bの下端部が保持固定されている。   Further, the projection 5b21 of the protective plate 5b is fitted into the opening 5a21 of the power receiving plate 5a, and at the same time, the protrusion 5b22 of the protective plate 5b is engaged with the concave portion 5a11 of the power receiving plate 5a, and further, the side plate 5b2 of the protective plate 5b is engaged. The surface on the power receiving plate 5a side is in contact with the flat plate 5a1 of the power receiving plate 5a, and the lower end portion of the protective plate 5b is held and fixed to the lower end portion of the power receiving plate 5a.

また、保護板5bの平板5b1には、受電板5aの平板5a1側に延び、かつ保護板5bの平板5b1と受電板5aの平板5a1との間隔を一定に保持するための間隔保持板5b11が上下に所定間隔をおいて2個設けられている。上側の間隔保持板5b11は、保護板5bの平板5b1にコ字状の切り込みを形成し、その部分を受電板5a側に折り曲げて構成されており、間隔保持板5b11を折り曲げた部分の平板5b1は開口している。下側の間隔保持板5b11は、保護板5bの平板5b1の端面に切り込みを入れ、その部分を受電板5a側に折り曲げて構成されている。   Further, the flat plate 5b1 of the protection plate 5b has a spacing plate 5b11 that extends toward the flat plate 5a1 side of the power receiving plate 5a and that keeps the distance between the flat plate 5b1 of the protective plate 5b and the flat plate 5a1 of the power receiving plate 5a constant. Two are provided at predetermined intervals in the vertical direction. The upper spacing plate 5b11 is formed by forming a U-shaped cut in the flat plate 5b1 of the protective plate 5b, and bending the portion to the power receiving plate 5a side. The flat plate 5b1 of the portion where the spacing plate 5b11 is folded. Is open. The lower spacing plate 5b11 is formed by cutting the end surface of the flat plate 5b1 of the protective plate 5b and bending the portion to the power receiving plate 5a side.

なお、保護板5bの側板5b2の上方に位置する平板5b1には、側板5b3が設けられ、強度向上を図っている。この側板5b3は、側板5b2よりも外側に突出している。   The flat plate 5b1 located above the side plate 5b2 of the protective plate 5b is provided with a side plate 5b3 to improve the strength. The side plate 5b3 protrudes outward from the side plate 5b2.

受電板5aは、図5に示すように、開口部5a21の下方がシール材Sで接合されており、保護板5bの下端部はシール材Sでは接合されていない。   As shown in FIG. 5, the power receiving plate 5 a is bonded to the lower portion of the opening 5 a 21 with the sealing material S, and the lower end portion of the protection plate 5 b is not bonded to the sealing material S.

以上のように構成されたセルスタック装置では、燃料電池セル3の配列方向xにおける受電板5aの外側に保護板5bが設けられ、受電板5aの下端部がガスタンク7に固体され、この受電板5aの下端部の側板5a2に設けられた開口部5a21に、保護板5bの下端部の側板5b2に設けられた凸部5b21が嵌合しており、また、保護板5bの下端部の側板5b2に設けられた突起5b22が、受電板5aの下端部の平板5a1に設けられた凹部5a11に係合し、さらに保護板5bの側板5b2の受電板5a側の面が、受電板5aの平板5aに当接しているため、受電板5aと保護板5bとが一体になっており、例えば断熱材が受電板5aに接触することを阻止し、保護できるとともに、保護板5bと受電板5aとが別体であるため、例えば、受電板5aをセルスタック2の傾斜に柔軟に対応させるために、保護板5bよりも薄くしたり、保護板5bとは構成材料を異ならせることができ、受電板5aと保護板5bとに要求される特性を同時にかつ容易に満足できる。   In the cell stack device configured as described above, the protective plate 5b is provided outside the power receiving plate 5a in the arrangement direction x of the fuel cells 3, and the lower end of the power receiving plate 5a is solidified in the gas tank 7, and this power receiving plate The convex part 5b21 provided in the side plate 5b2 of the lower end part of the protective plate 5b is fitted in the opening part 5a21 provided in the side plate 5a2 of the lower end part of 5a, and the side plate 5b2 of the lower end part of the protective plate 5b. The protrusion 5b22 provided on the lower surface of the power receiving plate 5a engages with the concave portion 5a11 provided on the flat plate 5a1, and the side plate 5b2 of the protective plate 5b has a surface on the power receiving plate 5a side that is the flat plate 5a of the power receiving plate 5a. Since the power receiving plate 5a and the protective plate 5b are integrated with each other, for example, the heat insulating material can be prevented from contacting the power receiving plate 5a and can be protected, and the protective plate 5b and the power receiving plate 5a can be protected. Because it is a separate body For example, in order to flexibly correspond to the inclination of the cell stack 2, the power receiving plate 5a can be made thinner than the protective plate 5b, or the constituent material can be different from that of the protective plate 5b. Can satisfy the required characteristics simultaneously and easily.

図6(a)は、他の形態の導電部材を示すもので、この形態では、図3に示すような間隔保持板5b11を有していない。このようなセルスタック装置であっても、上記形態と同様な効果を得ることができる。   FIG. 6A shows another embodiment of the conductive member. In this embodiment, the gap holding plate 5b11 as shown in FIG. 3 is not provided. Even with such a cell stack device, it is possible to obtain the same effect as that of the above embodiment.

図6(b)は、さらに他の形態の導電部材を示すもので、この形態では、図3に示すよ
うな間隔保持板5b11を有しておらず、さらに、受電板5aの下端部の平板5a1に設けられた凹部5a11の位置に、平板5a1の幅方向に凹溝5a12が形成され、この部分で平板部5a1が容易に変形可能となっている。このような導電部材では、燃料電池セル3の変形に対して柔軟に対応して、受電板5aが変形することができる。
FIG. 6B shows still another form of the conductive member. In this form, the gap holding plate 5b11 as shown in FIG. 3 is not provided, and a flat plate at the lower end of the power receiving plate 5a is provided. A concave groove 5a12 is formed in the width direction of the flat plate 5a1 at the position of the concave portion 5a11 provided in 5a1, and the flat plate portion 5a1 can be easily deformed at this portion. In such a conductive member, the power receiving plate 5 a can be deformed in a flexible manner with respect to the deformation of the fuel cell 3.

図7は、燃料電池モジュール50を示すもので、直方体状の収納容器51の内部に、燃料ガスが流通するガス流路13を有する燃料電池セル3を立設させた状態で配列し、隣接する燃料電池セル3間に集電部材4aを介して電気的に直列に接続してセルスタック2を構成するとともに、燃料電池セル3の下端部をガラスシール材等のシール材Sでガスタンク7に固定してなる燃料電池セルスタック装置1を収納して構成されている。   FIG. 7 shows the fuel cell module 50, which is arranged adjacent to each other in a state where the fuel cell 3 having the gas flow path 13 through which the fuel gas flows is erected inside a rectangular parallelepiped storage container 51. The fuel cell 3 is electrically connected in series via the current collecting member 4a to form the cell stack 2, and the lower end of the fuel cell 3 is fixed to the gas tank 7 with a sealing material S such as a glass sealing material. The fuel cell stack device 1 thus constructed is housed.

なお、燃料電池セル3にて使用する燃料ガスを得るために、天然ガスや灯油等の原燃料を改質して燃料ガスを生成するための改質器55をセルスタック2の上方に配置している。そして、改質器55で生成された燃料ガスは、ガス流通管56を介してガスタンク7に供給され、ガスタンク7を介して燃料電池セル3の内部に設けられたガス流路13に供給される。   In order to obtain a fuel gas used in the fuel cell 3, a reformer 55 for reforming raw fuel such as natural gas or kerosene to generate a fuel gas is disposed above the cell stack 2. ing. The fuel gas generated by the reformer 55 is supplied to the gas tank 7 through the gas flow pipe 56 and is supplied to the gas flow path 13 provided inside the fuel battery cell 3 through the gas tank 7. .

なお、図7においては、収納容器51の一部(前後面)を取り外し、内部に収納されているセルスタック装置1を後方に取り出した状態を示している。ここで、図7に示した燃料電池モジュール50においては、セルスタック装置1を、収納容器51内にスライドして収納することが可能である。なお、セルスタック装置1は、改質器55を含まなくても良い。   FIG. 7 shows a state in which a part (front and rear surfaces) of the storage container 51 is removed and the cell stack device 1 stored inside is taken out rearward. Here, in the fuel cell module 50 shown in FIG. 7, the cell stack device 1 can be slid and stored in the storage container 51. Note that the cell stack device 1 may not include the reformer 55.

また収納容器51の内部に設けられた酸素含有ガス導入部材58は、図7においてはガスタンク7に並置されたセルスタック2の間に配置されるとともに、酸素含有ガスが燃料ガスの流れに合わせて、燃料電池セル3の側方を下端部から上端部に向けて流れるように、燃料電池セル3の下端部に酸素含有ガスを供給する。そして、燃料電池セル3のガス流路13より排出される燃料ガスと酸素含有ガスとを燃料電池セル3の上端部側で燃焼させることにより、燃料電池セル3の温度を上昇させることができ、セルスタック装置1の起動を早めることができる。また、燃料電池セル3の上端部側にて、燃料電池セル3のガス流路13から排出される燃料ガスと酸素含有ガスとを燃焼させることにより、燃料電池セル3(セルスタック2)の上方に配置された改質器55を温めることができる。それにより、改質器55で効率よく改質反応を行うことができる。   Further, in FIG. 7, the oxygen-containing gas introduction member 58 provided inside the storage container 51 is arranged between the cell stacks 2 juxtaposed to the gas tank 7, and the oxygen-containing gas is adapted to the flow of the fuel gas. The oxygen-containing gas is supplied to the lower end of the fuel cell 3 so that the fuel cell 3 flows laterally from the lower end toward the upper end. Then, by burning the fuel gas and the oxygen-containing gas discharged from the gas flow path 13 of the fuel battery cell 3 on the upper end side of the fuel battery cell 3, the temperature of the fuel battery cell 3 can be raised, The start-up of the cell stack device 1 can be accelerated. Further, by burning the fuel gas and the oxygen-containing gas discharged from the gas flow path 13 of the fuel cell 3 on the upper end side of the fuel cell 3, the fuel cell 3 (cell stack 2) is positioned above the fuel cell 3. It is possible to warm the reformer 55 arranged in the. Thereby, the reforming reaction can be efficiently performed in the reformer 55.

図8は、燃料電池装置60の一例を示す分解斜視図である。なお、図8においては一部構成を省略して示している。   FIG. 8 is an exploded perspective view showing an example of the fuel cell device 60. In FIG. 8, a part of the configuration is omitted.

図8に示す燃料電池装置60は、支柱66と外装板67から構成される外装ケース内を仕切板68により上下に区画し、その上方側を上述した燃料電池モジュール50を収納するモジュール収納室64とし、下方側を燃料電池モジュール50を動作させるための補機類を収納する補機収納室63として構成されている。なお、補機収納室63に収納する補機類を省略して示している。   The fuel cell device 60 shown in FIG. 8 divides the inside of an exterior case composed of a column 66 and an exterior plate 67 into upper and lower portions by a partition plate 68, and a module storage chamber 64 for storing the above-described fuel cell module 50 on the upper side. The lower side is configured as an auxiliary equipment storage chamber 63 for storing auxiliary equipment for operating the fuel cell module 50. It should be noted that auxiliary equipment stored in the auxiliary equipment storage chamber 63 is omitted.

また、仕切板68には、補機収納室63の空気をモジュール収納室64側に流すための空気流通口61が設けられており、モジュール収納室64を構成する外装板67の一部に、モジュール収納室64内の空気を排気するための排気口62が設けられている。   Further, the partition plate 68 is provided with an air circulation port 61 for flowing the air in the auxiliary machine storage chamber 63 toward the module storage chamber 64, and a part of the exterior plate 67 constituting the module storage chamber 64 is An exhaust port 62 for exhausting air in the module storage chamber 64 is provided.

このような燃料電池装置60においては、上述したように、発電効率を向上することができる燃料電池モジュール50をモジュール収納室64に収納して構成されることにより、発電効率の向上した燃料電池装置50とすることができる。   In such a fuel cell apparatus 60, as described above, the fuel cell module 50 that can improve the power generation efficiency is housed in the module housing chamber 64, thereby improving the power generation efficiency. 50.

以上、本発明について詳細に説明したが、本発明は上述の実施の形態に限定されるものではなく、本発明の用紙を逸脱しない範囲内において、種々の変更、改良等が可能である。   Although the present invention has been described in detail above, the present invention is not limited to the above-described embodiments, and various modifications and improvements can be made without departing from the paper of the present invention.

例えば、上述した燃料電池セルスタック装置1においては、燃料電池セル3内のガス流路13に燃料ガスを供給し、燃料電池セル3の外側に酸素含有ガスを供給する例を示しているが、ガス流路13に酸素含有ガスを供給し、燃料電池セル3の外側に燃料ガスを供給する構成としてもかまわない。   For example, in the fuel cell stack device 1 described above, an example in which the fuel gas is supplied to the gas flow path 13 in the fuel cell 3 and the oxygen-containing gas is supplied to the outside of the fuel cell 3 is shown. A configuration may be adopted in which an oxygen-containing gas is supplied to the gas flow path 13 and fuel gas is supplied to the outside of the fuel cell 3.

また、上記形態では、受電板5aの下端部の側板5a2に設けられた開口部5a21に、保護板5bの下端部の側板5b2に設けられた凸部5b21が嵌合した形態については説明したが、受電板の側板に凸部を設け、保護板の側板に開口部を設け、保護板の開口部に受電板の凸部を嵌合しても良い。   Moreover, although the said form demonstrated the form which the convex part 5b21 provided in the side plate 5b2 of the lower end part of the protection board 5b fitted to the opening part 5a21 provided in the side plate 5a2 of the lower end part of the receiving plate 5a. Alternatively, a convex portion may be provided on the side plate of the power receiving plate, an opening portion may be provided in the side plate of the protective plate, and the convex portion of the power receiving plate may be fitted into the opening portion of the protective plate.

さらに、上記形態では、保護板5bの下端部の側板5b2に設けられた突起5b22が、受電板5aの下端部の平板5a1に設けられた凹部5a11に係合した形態について説明したが、受電板の側板に突起を設け、保護板の平板に凹部を設け、保護板の凹部に受電板の突起を係合させても良い。   Further, in the above embodiment, the description has been given of the form in which the protrusion 5b22 provided on the side plate 5b2 at the lower end of the protective plate 5b is engaged with the recess 5a11 provided at the flat plate 5a1 at the lower end of the power receiving plate 5a. A protrusion may be provided on the side plate, a recess may be provided on the flat plate of the protection plate, and the protrusion of the power receiving plate may be engaged with the recess of the protection plate.

また、上記形態では、保護板5bの側板5b2に、図3、4に示すような、凸部5b21を形成したが、本発明では、このような凸部に限定されるものではなく、開口部に嵌合するような突出した形状であれば良い。   Moreover, in the said form, although the convex part 5b21 as shown to FIG. 3, 4 was formed in the side plate 5b2 of the protection board 5b, in this invention, it is not limited to such a convex part, It is an opening part. Any projecting shape that fits into the surface may be used.

1:セルスタック装置
2:セルスタック
3:燃料電池セル
4a:集電部材
4b:端部集電部材
5:導電部材
5a:受電板
5a1:平板
5a11:凹部
5a2:側板
5a21:開口部
5a3:電流引出部
5b:保護板
5b1:平板
5b11:間隔保持板
5b2:側板
5b21:凸部
5b22:突起
50:燃料電池モジュール
60:燃料電池装置
1: Cell stack device 2: Cell stack 3: Fuel cell 4a: Current collecting member 4b: End current collecting member 5: Conductive member 5a: Power receiving plate 5a1: Flat plate 5a11: Recessed portion 5a2: Side plate 5a21: Opening portion 5a3: Current Drawer 5b: protective plate 5b1: flat plate 5b11: spacing plate 5b2: side plate 5b21: convex portion 5b22: protrusion 50: fuel cell module 60: fuel cell device

Claims (6)

柱状の燃料電池セルを集電部材を介して複数個立設させた状態で配列して電気的に接続してなるセルスタックと、前記燃料電池セルの配列方向における前記セルスタックの両端に、前記燃料電池セルに接合された端部集電部材を介して前記セルスタックを狭持するように配置された一対の導電部材と、前記燃料電池セルの下端部を固定するとともに前記燃料電池セルに反応ガスを供給するためのガスタンクとを具備するセルスタック装置であって、前記導電部材は、前記端部集電部材に接合された受電板と、該受電板の前記配列方向における外側に設けられた保護板とを具備するとともに、前記受電板の下端部が前記ガスタンクに固定されており、前記保護板の下端部が前記受電板の下端部に保持されていることを特徴とするセルスタック装置。   A cell stack formed by arranging and electrically connecting a plurality of columnar fuel cells via a current collecting member, and at both ends of the cell stack in the arrangement direction of the fuel cells, A pair of conductive members arranged so as to sandwich the cell stack via an end current collecting member joined to the fuel cell, and a lower end of the fuel cell are fixed and react to the fuel cell. A cell stack device comprising a gas tank for supplying gas, wherein the conductive member is provided on a power receiving plate joined to the end current collecting member and on an outer side in the arrangement direction of the power receiving plate. A cell stack device comprising: a protective plate; and a lower end portion of the power receiving plate fixed to the gas tank, and a lower end portion of the protective plate held by the lower end portion of the power receiving plate. . 前記保護板および前記受電板は、それぞれ前記燃料電池セルの長さ方向に延びる平板および該平板の下端部に設けられた側板を有するとともに、前記保護板および前記受電板の平板は平行に設けられ、前記保護板および前記受電板の側板がそれぞれ前記受電板または前記保護板に向けて延びており、かつ前記保護板および前記受電板の側板には開口部またはこの開口部に嵌合する凸部が形成され、前記保護板の側板の開口部または凸部が、前記受電板の側板の凸部または開口部に嵌合していることを特徴とする請求項1に記載のセルスタック装置。   The protective plate and the power receiving plate each have a flat plate extending in the length direction of the fuel battery cell and a side plate provided at a lower end portion of the flat plate, and the protective plate and the flat plate of the power receiving plate are provided in parallel. The protective plate and the side plate of the power receiving plate extend toward the power receiving plate or the protective plate, respectively, and the protective plate and the side plate of the power receiving plate have an opening or a protrusion that fits into the opening. 2. The cell stack device according to claim 1, wherein an opening or a protrusion of the side plate of the protection plate is fitted to a protrusion or an opening of the side plate of the power receiving plate. 前記受電板または前記保護板の前記側板には突起が設けられており、該突起が設けられていない前記保護板または前記受電板の前記平板には凹部が設けられ、前記突起が前記凹部に係合していることを特徴とする請求項2に記載のセルスタック装置。   A projection is provided on the side plate of the power receiving plate or the protective plate, a concave portion is provided on the flat plate of the protective plate or the power receiving plate not provided with the projection, and the projection is engaged with the concave portion. The cell stack device according to claim 2, wherein the cell stack devices are combined. 前記保護板の平板には、前記受電板の平板側に延び、かつ前記保護板の平板と前記受電板の平板との間隔を一定に保持するための間隔保持板が設けられている請求項2または3に記載のセルスタック装置。   The flat plate of the said protection plate is provided with the space | interval holding | maintenance board extended in the flat plate side of the said power receiving plate, and hold | maintaining the space | interval of the flat plate of the said protective plate and the flat plate of the said power receiving plate uniformly. Or the cell stack apparatus of 3. 請求項1乃至請求項4のうちいずれかに記載のセルスタック装置を収納容器内に収納してなることを特徴とする燃料電池モジュール。   A fuel cell module comprising the cell stack device according to any one of claims 1 to 4 housed in a housing container. 請求項5に記載の燃料電池モジュールを外装ケース内に収納してなることを特徴とする燃料電池装置。   A fuel cell device comprising the fuel cell module according to claim 5 housed in an outer case.
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