The present invention relates to a heat insulator and a fastening structure for the heat insulator.
A vehicle such as an automobile is provided with a heat insulator, which is arranged to cover the exhaust manifold. The heat insulator shields heat radiated from the exhaust manifold of the internal combustion engine so that the heat does not affect other components. The heat insulator is fastened to a fastening target object at predetermined fastening target sections not to fall off from the vehicle. Patent Document 1 discloses a bead formed for absorbing a vibration around fastened portions of the heat insulator.
Patent Document 1: Japanese Laid-Open Patent Publication No. 2007-113479
In a case in which a heat insulator is fastened to a number of fastening target object sections, if fastened portions of the heat insulator vibrate in different phases, the amounts and the timings of displacement of the fastened portions toward and away from the fastening target sections are different from one another. As a result, it is unavoidable that torsion, tension, and compression occur between the fastened portions of the heat insulator. The torsion, tension, and compression may result in cracks between the fastened portions.
It is an objective of the present invention to provide a heat insulator and a fastening structure that limit the formation of cracks between the fastened portions of the heat insulator.
To achieve the objective, a heat insulator fastening structure includes a heat insulator adapted to cover an exhaust manifold and a plurality of fasteners adapted to fasten the heat insulator to a fastening target object in a manner in which the heat insulator is movable within a predetermined range. The heat insulator includes a first area, which is adapted to vibrate in a single phase, and a second area, which is different from the first area and is adapted to vibrate in a single phase. The first area is fastened to the fastening target object with at least one of the fasteners. The second area is fastened to the fastening target object with at least another one of the fasteners.
To achieve the objective, a heat insulator is adapted to cover an exhaust manifold and be fastened to a fastening target object with a plurality of fasteners in a manner in which the heat insulator is movable within a predetermined range. The heat insulator includes a first area having a fastened portion adapted to vibrate in a single phase and be fastened to the fastening target object with at least one of the fasteners and a second area having a fastened portion adapted to vibrate in a single phase and be fastened to the fastening target object with at least another one of the fasteners.
The fastening structure of a heat insulator according to one embodiment will now be described with reference to
As shown in
As shown in
Operation of the fastening structure in the heat insulator 1 will now be described.
In contrast, the solid line of
However, the heat insulator 1 is merely fastened to the fastening target sections P1-P4 of the exhaust manifold 2 in the single first area A1 and the single second area A2. Moreover, the first area A1 and the second area A2 of the heat insulator 1 are fastened to the fastening target sections P1-P4 with the fasteners 3. In this fastened state, the heat insulator 1 can be displaced within the range defined by the fasteners 3.
A vibration of the first area A1 and a vibration of the second area A2 cause the fastened portions to be displaced toward and away from the fastening target sections P1-P4. Even if the amounts and the timings of such displacement vary between the fastened portions, the incidence of excessive torsion, tension, and compression is limited between the fastened portions in the first area A1 and the fastened portions in the second area A2. As a result, a stress applied to the location PX of the heat insulator 1 is maintained low as shown in
The above-illustrated embodiment achieves the following advantages.
(1) When the heat insulator 1 is fastened to the fastening target sections P1-P4 with the fasteners 3, excessive torsion, tension, and compression between the fastened portions of the heat insulator 1 may result in cracks, but the formation of such cracks is limited. Since the formation of cracks is limited, the heat insulator 1 can be formed with a thin and soft material.
(2) The number of parts for fastening the heat insulator 1, i.e., fasteners 3, is reduced.
(3) The first area A1 is located in an upper part of the heat insulator 1, while the second area A2 is located in the center in the up-down direction of the heat insulator 1. In this case, the distance between the fastened portions in the first area A1 and the fastened portions in the second area A2 of the heat insulator 1 is increased. Thus, even if vibrations of the first area A1 and the second area A2 cause differences in the amount and the timing of displacement of the fastened portions toward and away from the fastening target sections P1-P4, the influence caused by the differences does not easily affect the portion between the fastened parts in the first area A1 and the fastened parts in the second area A2.
(4) The heat insulator 1 has two positions in the first area A1 that are fastened to the fastening target sections P1 and P2 with the fasteners 3, and has two positions in the second area A2 that are fastened to the fastening target sections P3 and P4 with the fasteners 3. Since the first area A1 and the second area A2 each have two positions to be fastened, the heat insulator 1 is fastened to the fastening target sections P1-P4 without a stress concentrating around only one fastener 3 in each of the areas A1 and A2.
(5) The heat insulator 1 is fastened with the fasteners 3 to the fastening target sections P1-P4, which are located on the exhaust manifold 2. A vibration transmitted from the internal combustion engine, a vibration transmitted from the muffler, and temperature changes by receiving heat of exhaust gas associated with the cylinders of the internal combustion engine complicate the vibrations in the exhaust manifold 2. For this reason, vibrations in the first area A1 and the second area A2 of the heat insulator 1 are likely to cause differences in the amount and the timing of displacement of the fastened portions toward and away from the fastening target sections P1-P4. The difference may result in excessive torsion, tension, and compression between the fastened portions in the first area A1 and the fastened portions in the second area A2 to cause cracks, but the formation of such cracks is limited.
The embodiment may be modified in the following forms.
The heat insulator 1 may be fastened to the internal combustion engine and the body of the vehicle. In other words, the heat insulator 1 may be fastened to a fastening target object other than the exhaust manifold 2.
The heat insulator 1 may be fastened with fasteners 3 at two positions in the first area A1 and at only one position in the second area A2. Alternatively, the heat insulator 1 may be fastened with fasteners 3 at two positions in the second area A2 and at only one position in the first area A1.
The heat insulator 1 may be fastened with fasteners 3 at three or more positions in the first area A1 or at three or more positions in the second area A2.
Number | Date | Country | Kind |
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2013-107282 | May 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/063204 | 5/19/2014 | WO | 00 |