JP3804310B2 - Air intake duct structure - Google Patents

Air intake duct structure Download PDF

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Publication number
JP3804310B2
JP3804310B2 JP35379698A JP35379698A JP3804310B2 JP 3804310 B2 JP3804310 B2 JP 3804310B2 JP 35379698 A JP35379698 A JP 35379698A JP 35379698 A JP35379698 A JP 35379698A JP 3804310 B2 JP3804310 B2 JP 3804310B2
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JP
Japan
Prior art keywords
water
air
air intake
intake duct
cab
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
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JP35379698A
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Japanese (ja)
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JP2000168374A (en
Inventor
賢二 藤森
二郎 高野
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Isuzu Motors Ltd
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Isuzu Motors Ltd
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Filing date
Publication date
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Priority to JP35379698A priority Critical patent/JP3804310B2/en
Publication of JP2000168374A publication Critical patent/JP2000168374A/en
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Description

【0001】
【発明の属する技術分野】
本発明は、水滴分離機能を有し、分離された水を確実に外気側に排出し得るエアーインテークダクト構造に関する。
【0002】
【従来の技術】
車両に装着されるエアーインテークダクトとしては極めて多くの公知技術があるが、図7,図8に示すものが一例として挙げられる。このエアーインテークダクト1aはその上面をキャブ3の高さとほぼ面一に配置し、キャブ3の背面にかくれた状態で配置される。また、図8に示すように、上部のキャップ部28とこの下方に連結する空気通路29を有するものからなり、キャップ部28の下方には空気導入口2aが下向きに形成される。また、空気通路29の内部にはこれを仕切る仕切板30が介設される。なお、空気通路29の下端にはラバーコネクタ6が取り付けられ、エンジン33のエアークリーナ32と連結される。なお、エアークリーナ32にはエアークリーナエレメント36が収納されると共に水抜き用のエアーバルブ35が設けられている。また、ラバーコネクタ6は空気通路29の下端にクリップ31等により固定される。
【0003】
【発明が解決しようとする課題】
エアーインテークダクト1aは、その上端がキャブ3の上面とほぼ面一のため、架装性の問題点はない。しかしながら、図8に示すように、空気26が下方から曲がりくねった状態で導入されるため吸気抵抗が大となり、かつキャブ3の下方側の比較的汚い空気が導入し易い。また、エンジン側の熱気も吸い込み易い問題点がある。空気導入口2aから導入された水27を含む空気26は仕切板30に沿って落下し、エアークリーナ32に入る。エアークリーナ32にはエアーバルブ35が設けられており、水27はここから排水される。しかしながら、大雨時等において水侵入量が増加するとエアーバルブ35からの排水が間に合わず、水27を含む空気26がエンジン33側に吸引されエンジンの出力を低下させる問題点があった。また、従来のものは分離機能がないため、粉雪はエアークリーナエレメントに付着し、濾過機能を低下させる問題点があった。更に、従来のエアーインテークダクト1aではキャップ28の樋34から溢水した水27がフードの外面に沿って落下し、クリップ31で緊締されていてもフードとラバーコネクタ6との微少な隙間からエンジン33側に吸引される問題点があった。また、フードの外面に付着した水27も前記隙間からエンジン33側に吸引される問題点があった。
【0004】
本発明は、以上の問題点を解決するもので、水滴分離が効果的に行われると共に、分離された水がエンジン側に侵入することが防止され、かつエアーインテークダクトから外気側に排出された水もエンジン側に吸引されることがなく、更に、外気側への水の排出が常に確実に行われるエアーインテークダクト構造を提供することを目的とする。
【0005】
【課題を解決するための手段】
本発明は、以上の目的を達成するために、請求項1の発明は、車両のキャブ3の背面に沿って上下方向に延在し、その上端を前記キャブ3の高さと面一にし、側端を前記キャブ3の側面と面一にし、前面側の側端と側面側の前端の上方に空気導入口2を形成し、下方にエンジン側に連結するラバーコネクタ6の取り付ける開口部を形成するダクト本体7を有するエアーインテークダクト1であって、このダクト本体7内部に上方に尖った頂点を有して下方に向かって末広がりとなる形状を有した1以上のVリブ19が形成されて、前記ダクト本体7の前記開口部を挟む下端には前記Vリブ19を伝わって前記ダクト本体7内を流下する水滴の溜る水溜り部9,10が設けられ、該水溜り部9,10には外気側に連通する水抜き孔17,18が形成されることを特徴とする。また、請求項2の発明は、水抜き孔17,18が、下向きに形成される孔と横向きに形成される孔とからなることを特徴とする。
【0006】
本発明のエアーインテークダクトはキャブの背面に配設され、上方側の前面及び側面に設けた空気導入口から導入された水等と空気を分離し、分離された空気をエンジン側に導入するものであるが、分離された水滴はダクト本体内を流下し、ダクト本体のラバーコネクタの取り付けられる開口部を挟んだ水溜り部に集約され、その水抜き孔から外気側に排出される。この水抜き孔は開口部から離れているから排水のエンジン側への侵入はなく、エンジンの吸引力によるラバーコネクタの取り付け部からの水の侵入もない。また、水抜き孔は下向きに形成されているため外気側への排出は円滑に行われる。仮りにこの水抜き孔が塵埃等により詰まっても横向きの水抜き孔があるため、水は常時必ず外気側に排出される。
【0007】
【発明の実施の形態】
以下、本発明のエアーインテークダクト構造の実施の形態を図面を参照して詳述する。図1及び図2に示すように、車両におけるキャブ3と荷台4との間には空間5が形成される。本発明のエアーインテークダクト1はこの空間5内に介設され、図1に示すようにキャブ3の両側面の幅一杯にその側端を一致させると共にキャブ3の上面とその上端を一致させて配設される。従って、荷台4の前方上部に張り出し部4aがあってもエアーインテークダクト1は張り出し部4aに干渉しない。また、図示のように、エアーインテークダクト1の下端に取り付けられるラバーコネクタ6はエンジン33のエアークリーナ32(図9)と連結される。なお、図1に示すように、キャブ3の両側端の上方側には弧状面3aが形成されるため、エアーインテークダクト1は弧状面3aの背後において露出して配設される。従って、この露出部には直接空気等が当る。なお、この露出部にエアーインテークダクト1の空気導入口2が形成されている。
【0008】
次に、図3乃至図5により、本発明のエアーインテークダクト1の構造を説明する。エアーインテークダクト1は、図に示すように、ブロー成形により一体的に成形されたやや複雑な構造の樹脂製のダクト本体7と、その下部に取り付けられたラバーコネクタ6等から構成される。まず、ダクト本体7の前面側の側端の上方と側面側の前端の上方には空気導入口2′,2″が形成される。なお、空気導入口2′及び2″は一体構造のものからなり、ダクト本体7に着脱可能に固定されるものからなる。また、図5に示すように、空気導入口2′の裏側にはフィルタ8が着脱可能に貼着される。ダクト本体7の内部は、ラバーコネクタ6が取り付けられる下方の開口部を除き密閉空間を形成するものからなり、空気導入口2からの空気が前記密閉空間内を連通し、エンジン33側に導入される。
【0009】
図3及び図6に示すように、ダクト本体7の下端には開口部16が形成され、この開口部16にはラバーコネクタ6が取り付けられる。ダクト本体7の下端の開口部16を挟む両側には水溜り部9,10が形成される。図6に示すように、この水溜り部9,10にはエアーインテークダクト1をキャプ3等に装着するための取り付け孔13が設けられると共に、この取り付け孔13のまわりには同心状の膨出部11,12が形成される。勿論、この膨出部11,12の内面は水溜り部9,10とは連通する。また、水溜り部9,10の上方には、水溜り部9,10と連通する開口部14,15がそれぞれ形成される。水溜り部9,10には水抜き孔17,18が複数個設けられている。この水抜き孔17は最下方に形成されているが水抜き孔18はこれより上方に形成される。これは水溜り部9,10に泥等が溜り水抜き孔17がふさがった場合でも水抜き孔18から水抜きが円滑に行われるようにするためである。
【0010】
一方、図3に示すように、ダクト本体7の後面には逆V字形状のVリブ19と調整用リブ22が形成され、表面には横リブ20,縦リブ21が設けられると共にダクト本体7の内部はリブ23,24,25により画成されてレゾネータが形成されている。Vリブ19は上方に尖った頂点を有すると共に該頂点から左右方向に下方に向かって末広がりしている。
【0011】
次に、本発明のエアーインテークダクト構造の作用を説明する。空気導入口2からダクト本体7内に導入された水26を含む空気27は、ダクト本体7内で分離される。分離された水26は図3に示したVリブ19等に付着し、図6に示すようにVリブ19の形状に沿って流下する。Vリブ19の左右の下端は水溜り部9,10の開口部14,15のほぼ上方に配置されているため、Vリブ19を伝わって流下した水27は開口部14,15から水溜り部9,10内に導入される。また、Vリブ19以外のダクト本体7内のリブや内壁等に付着した水27もこれ等に沿って流下するが、最終的には水溜り部9,10内に導入される。一方、分離された空気26は開口部16からラバーコネクタ6を介しエアークリーナ32(図9)側に導入される。
【0012】
水溜り部9,10内には膨出部11,12が水溜り部9,10に連通して配置されるため、水27は膨出部11,12に進む。図7に示すようにこの膨出部11,12等からなる水溜り箇所には水抜き孔17,18が連通しているため、この水溜り箇所に導入された水27は水抜き孔17,18から外気側に排出される。以上により、ダクト本体内に導入された水27は、すべて外気側に排出されエンジン33側には侵入しない。
【0013】
本実施の形態では水抜き孔17,18の双方が形成されているが、水抜き孔17だけでもよく、更に多くの水抜き孔を有するものでもよい。しかしながら、水抜き孔17のみの場合には、前記したようにこの水抜き孔17が地面側からの塵埃やドロ等により詰まった場合に水27の排出ができなくなる。従って、複数の水抜き孔が必要であり、特に、横向きの水抜き孔18は設けることが望ましい。
【0014】
図3,図6に示すように、水溜り部9,10はダクト本体7の開口部16を挟んで配置され、離れた位置にある。また、水抜き孔17,18も離れた位置にある。そのため、エンジン33からの吸引力が開口部33に作用しても、水抜き孔17,18から排出されている水27がラバーコネクタ6内に吸い込まれることがない。よって、エンジン33側への水27の侵入は完全に防止される。
【0015】
水溜り部9,10や膨出部11,12はダクト本体7のブロー成形時において一体的に形成されるものであり、安価に製作することができる。なお、これ等の形状は図示のものに限定するものではないことは勿論である。
【0016】
【発明の効果】
1)本発明の請求項1に記載のエアーインテークダクト構造によれば、ダクト本体の下端開口部を挟んで左右に水溜り部が形成され、ダクト本体内の水滴は最終的にこの水溜り部に集約されるため、水溜り部に形成される水抜き孔を介してすべての水が外気側へ排出される。従って、エンジン側への水の侵入が完全に防止される。
2)本発明の請求項2に記載のエアーインテークダクト構造によれば、水抜き孔が下向きのものと横向きのものの複数のものからなり、いずれかの水抜き孔が詰まっても常に水抜きが行われ、ダクト本体内に水がいつまでも蓄溜されることはない。
【図面の簡単な説明】
【図1】本発明のエアーインテークダクトを設けたキャブの部分正面図。
【図2】図1の側面図。
【図3】本発明のエアーインテークダクトの背面図。
【図4】図3の側面図。
【図5】図3の上面図。
【図6】ダクト本体の下端に形成される水溜り部を示す模式図。
【図7】従来のエアーインテークダクトを設けたキャブを示す模式図。
【図8】図7におけるエアーインテークダクトの詳細構造を示す正面図。
【符号の説明】
1 エアーインテークダクト
2 空気導入口
2′ 空気導入口
2″ 空気導入口
3 キャブ
3a 弧状面
4 荷台
4a 張り出し部
5 空間
6 ラバーコネクタ
7 ダクト本体
8 フィルタ
9 水溜り部
10 水溜り部
11 膨出部
12 膨出部
13 取り付け孔
14 開口部
15 開口部
16 開口部
17 水抜き孔
18 水抜き孔
19 Vリブ
20 横リブ
21 縦リブ
22 調整用リブ
23 リブ
24 リブ
25 リブ
26 空気
27 水
[0001]
BACKGROUND OF THE INVENTION
The present invention relates to an air intake duct structure having a water droplet separating function and capable of reliably discharging separated water to the outside air side.
[0002]
[Prior art]
As an air intake duct to be mounted on a vehicle, there are an extremely large number of well-known techniques, and examples shown in FIGS. 7 and 8 are given as examples. The air intake duct 1 a is arranged such that its upper surface is substantially flush with the height of the cab 3 and is hidden behind the cab 3. Further, as shown in FIG. 8, the upper cap part 28 and an air passage 29 connected to the lower part of the cap part 28 are provided, and an air inlet 2 a is formed downwardly below the cap part 28. A partition plate 30 is provided inside the air passage 29 to partition the air passage 29. A rubber connector 6 is attached to the lower end of the air passage 29 and is connected to the air cleaner 32 of the engine 33. The air cleaner 32 is provided with an air cleaner element 36 and an air valve 35 for draining water. The rubber connector 6 is fixed to the lower end of the air passage 29 by a clip 31 or the like.
[0003]
[Problems to be solved by the invention]
Since the upper end of the air intake duct 1 a is substantially flush with the upper surface of the cab 3, there is no problem with the mountability. However, as shown in FIG. 8, since the air 26 is introduced in a meandering manner from below, the intake resistance is increased, and relatively dirty air on the lower side of the cab 3 is easily introduced. In addition, there is a problem that hot air on the engine side is easily sucked. The air 26 including the water 27 introduced from the air inlet 2 a falls along the partition plate 30 and enters the air cleaner 32. The air cleaner 32 is provided with an air valve 35 from which water 27 is drained. However, when the amount of water intrusion increases during heavy rain or the like, there is a problem that the drainage from the air valve 35 is not in time, and the air 26 including the water 27 is sucked into the engine 33 and the output of the engine is reduced. Further, since the conventional one does not have a separation function, there is a problem that powdered snow adheres to the air cleaner element and lowers the filtration function. Further, in the conventional air intake duct 1 a, the water 27 overflowing from the ridge 34 of the cap 28 falls along the outer surface of the hood, and even if it is tightened by the clip 31, the engine 33 passes through the minute gap between the hood and the rubber connector 6. There was a problem of being sucked to the side. Further, there is a problem that the water 27 adhering to the outer surface of the hood is also sucked from the gap to the engine 33 side.
[0004]
The present invention solves the above problems, and water droplet separation is effectively performed, and the separated water is prevented from entering the engine side and discharged from the air intake duct to the outside air side. An object of the present invention is to provide an air intake duct structure in which water is not sucked to the engine side and water is always reliably discharged to the outside air side.
[0005]
[Means for Solving the Problems]
In order to achieve the above object, the present invention is characterized in that the invention of claim 1 extends in the vertical direction along the rear surface of the cab 3 of the vehicle, and its upper end is flush with the height of the cab 3. The end is flush with the side surface of the cab 3, the air introduction port 2 is formed above the front end on the front side and the front end on the side surface, and the opening for attaching the rubber connector 6 connected to the engine side is formed below. The air intake duct 1 having the duct body 7 is formed with one or more V-ribs 19 having a shape with an apex pointed upward and diverging downward in the duct body 7, At the lower end of the duct body 7 across the opening, there are provided water pool portions 9 and 10 for collecting water droplets that flow down the duct main body 7 along the V rib 19. Drain holes 17 and 18 communicating with the outside air side Characterized in that it is made. The invention according to claim 2 is characterized in that the drain holes 17 and 18 are composed of holes formed downward and holes formed horizontally.
[0006]
The air intake duct of the present invention is disposed on the rear surface of the cab and separates water and air introduced from air inlets provided on the upper front and side surfaces and introduces the separated air to the engine side. However, the separated water droplets flow down in the duct body, are collected in a water pool portion sandwiching an opening portion to which a rubber connector of the duct body is attached, and are discharged from the drain hole to the outside air side. Since the drain hole is away from the opening, there is no intrusion of drainage into the engine side, and there is no intrusion of water from the rubber connector mounting portion due to the suction force of the engine. Moreover, since the drain hole is formed downward, the discharge to the outside air is performed smoothly. Even if this drain hole is clogged with dust or the like, there is a lateral drain hole, so water is always discharged to the outside air side.
[0007]
DETAILED DESCRIPTION OF THE INVENTION
Hereinafter, embodiments of the air intake duct structure of the present invention will be described in detail with reference to the drawings. As shown in FIGS. 1 and 2, a space 5 is formed between the cab 3 and the loading platform 4 in the vehicle. The air intake duct 1 of the present invention is interposed in the space 5, and as shown in FIG. 1, the side ends of the cab 3 are made to coincide with the full width of the cab 3, and the upper surface of the cab 3 is made to coincide with the upper end thereof. Arranged. Therefore, the air intake duct 1 does not interfere with the overhanging portion 4a even if the overhanging portion 4a is present at the upper front portion of the loading platform 4. Further, as shown in the figure, the rubber connector 6 attached to the lower end of the air intake duct 1 is connected to an air cleaner 32 (FIG. 9) of the engine 33. As shown in FIG. 1, since an arcuate surface 3a is formed on the upper side of both side ends of the cab 3, the air intake duct 1 is disposed exposed behind the arcuate surface 3a. Therefore, the exposed portion is directly exposed to air or the like. Note that an air inlet 2 of the air intake duct 1 is formed in the exposed portion.
[0008]
Next, the structure of the air intake duct 1 of the present invention will be described with reference to FIGS. As shown in the figure, the air intake duct 1 includes a resin-made duct body 7 that is integrally formed by blow molding and has a slightly complicated structure, a rubber connector 6 attached to the lower portion thereof, and the like. First, air inlets 2 'and 2 "are formed above the front end of the duct body 7 and above the front end of the side face. The air inlets 2' and 2" are of an integral structure. It consists of what is fixed to the duct main body 7 so that attachment or detachment is possible. As shown in FIG. 5, a filter 8 is detachably attached to the back side of the air inlet 2 '. The inside of the duct body 7 is configured to form a sealed space except for a lower opening to which the rubber connector 6 is attached. The
[0009]
As shown in FIGS. 3 and 6, an opening 16 is formed at the lower end of the duct body 7, and the rubber connector 6 is attached to the opening 16. Pools 9 and 10 are formed on both sides of the opening 16 at the lower end of the duct body 7. As shown in FIG. 6, the water reservoirs 9 and 10 are provided with attachment holes 13 for attaching the air intake duct 1 to the cap 3 and the like, and concentric bulges around the attachment holes 13. Portions 11 and 12 are formed. Of course, the inner surfaces of the bulging portions 11 and 12 communicate with the water pool portions 9 and 10. In addition, openings 14 and 15 communicating with the water reservoirs 9 and 10 are formed above the water reservoirs 9 and 10, respectively. The water reservoirs 9 and 10 are provided with a plurality of drain holes 17 and 18. The drain hole 17 is formed at the lowermost position, but the drain hole 18 is formed above the drain hole 18. This is so that water can be smoothly drained from the drain hole 18 even when mud or the like accumulates in the water pools 9 and 10 and the drain hole 17 is blocked.
[0010]
On the other hand, as shown in FIG. 3, an inverted V-shaped V-rib 19 and an adjusting rib 22 are formed on the rear surface of the duct body 7, and a lateral rib 20 and a longitudinal rib 21 are provided on the surface, and the duct body 7. Is defined by ribs 23, 24, and 25 to form a resonator. The V rib 19 has an apex that is pointed upward, and spreads downward from the apex in the left-right direction.
[0011]
Next, the operation of the air intake duct structure of the present invention will be described. Air 27 including water 26 introduced into the duct body 7 from the air inlet 2 is separated in the duct body 7. The separated water 26 adheres to the V rib 19 shown in FIG. 3 and flows down along the shape of the V rib 19 as shown in FIG. Since the left and right lower ends of the V-rib 19 are disposed substantially above the openings 14 and 15 of the water reservoirs 9 and 10, the water 27 that has flowed down along the V-rib 19 flows from the openings 14 and 15 into the water reservoir. 9 and 10 are introduced. Further, water 27 adhering to the ribs and inner walls of the duct body 7 other than the V ribs 19 also flows down along these, but is finally introduced into the water reservoirs 9 and 10. On the other hand, the separated air 26 is introduced from the opening 16 to the air cleaner 32 (FIG. 9) through the rubber connector 6.
[0012]
Since the bulging portions 11 and 12 are arranged in the water pool portions 9 and 10 so as to communicate with the water pool portions 9 and 10, the water 27 proceeds to the bulging portions 11 and 12. As shown in FIG. 7, the water draining holes 17, 18 communicate with the water pool locations including the bulging portions 11, 12, so that the water 27 introduced into the water pool locations is the water drain holes 17, 18. 18 is discharged to the outside air side. Thus, all the water 27 introduced into the duct body is discharged to the outside air side and does not enter the engine 33 side.
[0013]
Although both drain holes 17 and 18 are formed in the present embodiment, only the drain holes 17 may be provided, or more drain holes may be provided. However, in the case of only the drain hole 17, as described above, the water 27 cannot be discharged when the drain hole 17 is clogged with dust or dirt from the ground side. Accordingly, a plurality of drain holes are required, and it is particularly desirable to provide the lateral drain holes 18.
[0014]
As shown in FIG. 3 and FIG. 6, the water reservoirs 9 and 10 are arranged with the opening 16 of the duct body 7 interposed therebetween and are in a separated position. Moreover, the drain holes 17 and 18 are also in a position away from each other. Therefore, even if the suction force from the engine 33 acts on the opening 33, the water 27 discharged from the drain holes 17 and 18 is not sucked into the rubber connector 6. Therefore, intrusion of the water 27 into the engine 33 side is completely prevented.
[0015]
The water reservoirs 9 and 10 and the bulging portions 11 and 12 are integrally formed when the duct body 7 is blow-molded, and can be manufactured at low cost. Of course, these shapes are not limited to those shown in the drawings.
[0016]
【The invention's effect】
1) According to the air intake duct structure of the first aspect of the present invention, the water reservoir is formed on the left and right with the lower end opening of the duct main body interposed therebetween, and the water droplets in the duct main body finally form the water reservoir Therefore, all the water is discharged to the outside air through the drain hole formed in the water reservoir. Therefore, water can be completely prevented from entering the engine.
2) According to the air intake duct structure according to claim 2 of the present invention, the water drainage hole is composed of a plurality of water draining holes facing downward and laterally facing, and even if any water draining hole is clogged, the water draining is always performed. This is done and water is not stored in the duct body indefinitely.
[Brief description of the drawings]
FIG. 1 is a partial front view of a cab provided with an air intake duct of the present invention.
FIG. 2 is a side view of FIG.
FIG. 3 is a rear view of the air intake duct of the present invention.
4 is a side view of FIG. 3;
FIG. 5 is a top view of FIG. 3;
FIG. 6 is a schematic view showing a water reservoir formed at the lower end of the duct body.
FIG. 7 is a schematic view showing a cab provided with a conventional air intake duct.
8 is a front view showing a detailed structure of the air intake duct in FIG. 7. FIG.
[Explanation of symbols]
DESCRIPTION OF SYMBOLS 1 Air intake duct 2 Air introduction port 2 'Air introduction port 2 "Air introduction port 3 Cab 3a Arc surface 4 Loading platform 4a Overhang | projection part 5 Space 6 Rubber connector 7 Duct body 8 Filter 9 Puddle part 10 Puddle part 11 Swell part 12 bulge 13 mounting hole 14 opening 15 opening 16 opening 17 drain hole 18 drain hole 19 V rib 20 horizontal rib 21 vertical rib 22 adjusting rib 23 rib 24 rib 25 rib 26 air 27 water

Claims (2)

車両のキャブ3の背面に沿って上下方向に延在し、その上端を前記キャブ3の高さと面一にし、側端を前記キャブ3の側面と面一にし、前面側の側端と側面側の前端の上方に空気導入口2を形成し、下方にエンジン側に連結するラバーコネクタ6の取り付ける開口部を形成するダクト本体7を有するエアーインテークダクト1であって、このダクト本体7内部に上方に尖った頂点を有して下方に向かって末広がりとなる形状を有した1以上のVリブ19が形成されて、前記ダクト本体7の前記開口部を挟む下端には前記Vリブ19を伝わって前記ダクト本体7内を流下する水滴の溜る水溜り部9,10が設けられ、該水溜り部9,10には外気側に連通する水抜き孔17,18が形成されることを特徴とするエアーインテークダクト構造。It extends in the vertical direction along the rear surface of the cab 3 of the vehicle, its upper end is flush with the height of the cab 3, its side edge is flush with the side surface of the cab 3, and the front side and side sides upwardly to form an air inlet 2 in the front end, a air intake duct 1 having a duct body 7 to form an opening for mounting a rubber connector 6 for connecting the engine side downward, upward inside the duct body 7 One or more V-ribs 19 having a pointed apex and having a shape that spreads downward toward the bottom are formed, and the lower end of the duct body 7 sandwiching the opening is transmitted through the V-rib 19. Water reservoirs 9 and 10 for collecting water droplets flowing down in the duct body 7 are provided, and the water reservoirs 9 and 10 are formed with drain holes 17 and 18 communicating with the outside air side. Air intake duct structure. 前記水抜き孔が、下向きに形成される孔と横向きに形成される孔とからなる請求項1に記載のエアーインテークダクト構造。The air intake duct structure according to claim 1, wherein the drainage hole includes a hole formed downward and a hole formed horizontally.
JP35379698A 1998-11-30 1998-11-30 Air intake duct structure Expired - Fee Related JP3804310B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP35379698A JP3804310B2 (en) 1998-11-30 1998-11-30 Air intake duct structure

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Application Number Priority Date Filing Date Title
JP35379698A JP3804310B2 (en) 1998-11-30 1998-11-30 Air intake duct structure

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JP3804310B2 true JP3804310B2 (en) 2006-08-02

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102009057563A1 (en) * 2009-12-09 2011-06-16 Mahle International Gmbh catcher
JP5325764B2 (en) * 2009-12-25 2013-10-23 日野自動車株式会社 Intake duct and manufacturing method thereof
DE102011101765B4 (en) * 2011-05-17 2015-10-01 Mann + Hummel Gmbh Device for separating water from the combustion air to be supplied to an internal combustion engine
JP5832879B2 (en) * 2011-12-07 2015-12-16 日野自動車株式会社 Manufacturing method of intake duct
DE102012015043B3 (en) * 2012-07-31 2013-11-28 Mann + Hummel Gmbh Air suction device for internal combustion engine of e.g. lorry, has vertical line section formed modular from suction pipes, which fluidically run in parallel and are fluidically connected with inlet- and/or outlet-side ends

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