The present invention relates to a muffler for an air-conditioning apparatus and an air-conditioning apparatus including the muffler for an air-conditioning apparatus.
In general, a refrigerant circuit of an air-conditioning apparatus includes a compressor, a condenser, an expansion valve, and an evaporator. The air-conditioning apparatus is configured to suck, compress, and discharge refrigerant repeatedly by the compressor. Through repeated operation of the air-conditioning apparatus, the refrigerant is discharged in a pulsed manner, with the result that pressure of the refrigerant fluctuates. This phenomenon is called a pressure pulsation. There is a problem in that the pressure pulsation may be transmitted from the compressor through a discharge pipe of the compressor to an indoor-side heat exchanger, and cause resonance with the structure of the indoor-side heat exchanger, resulting in generation of noise, This noise is referred to as a pulsation noise.
Thus, in the refrigerant circuit of the air-conditioning apparatus, a muffler is mounted to a pipe extending from a discharge port of the compressor to the indoor-side heat exchanger to reduce the pulsation noise.
When basic characteristics of the muffler are taken into account, in order to enhance a muffling effect, a cross sectional area ratio of an expansion chamber of a muffler main body to a pipe connected to a muffler main body needs to be set large. In view of such circumstance, for example, there has been proposed a muffler employing a configuration in which an inner diameter of the muffler main body is set large so that the muffling effect is enhanced when the cross sectional area of the pipe is fixed (see, for example, Patent Literature 1).
Further, in order to achieve downsizing of the muffler, there has been proposed a muffler downsized by changing a length and a diameter of an insertion pipe inserted into the muffler main body (see, for example, Patent Literature 2). In the muffler according to Patent Literature 2, a muffling property is enhanced by reducing an inner diameter of an inlet pipe connected to an inlet of the muffler main body before the inlet pipe enters the muffler main body, and by positioning a distal end of a portion of the inlet pipe, which is inserted into the muffler main body, at a center of the muffler main body.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. Hei 9-203386 (Page 2, Page 3, and
Patent Literature 2: Japanese Unexamined Patent Application Publication No. 2011-12869 (Page 2 and
In the muffler proposed in Patent Literature 1, in order to enhance the muffling effect, the cross sectional area ratio of the expansion chamber of the muffler main body to the pipe connected to the muffler main body needs to be set large. Thus, there is a problem in that, when the inner diameter of the pipe connected to the muffler main body cannot be changed, the inner diameter of the muffler main body may disadvantageously increase.
In the muffler proposed in Patent Literature 2, in order to downsize the muffler while the muffling effect is maintained, an inner diameter of the inlet pipe is reduced also before the portion which is inserted into the muffler main body, and a length of an inserted pipe portion which is inserted into the muffler main body is set large to reach the vicinity of the center of the muffler main body. However, there is a problem in that a pressure loss of the refrigerant may increase.
The present invention has been made to solve the above-mentioned problems, and an object of the present invention is to obtain a muffler for an air-conditioning apparatus, which is downsized and has an enhanced muffling effect while the pressure loss of the refrigerant is suppressed to maintain efficiency of a heat exchange, and an air-conditioning apparatus including the muffler for an air-conditioning apparatus.
According to one embodiment of the present invention, there is provided a muffler for an air-conditioning apparatus, including: a tubular muffler main body which has small diameter portions on an inlet side and an outlet side, the small diameter portions having inner diameters smaller than an inner diameter of a central portion of the tubular muffler main body; an inlet pipe connected to the small diameter portion on the inlet side of the tubular muffler main body; and an outlet pipe connected to the small diameter portion on the outlet side of the tubular muffler main body, in which the inlet pipe is inserted into the tubular muffler main body, and has a distal end positioned at a center of a length from an inlet to an outlet of the tubular muffler main body, and in which the distal end side of the inlet pipe inserted into the tubular muffler main body has an inner diameter smaller than an inner diameter of the inlet pipe on upstream of the distal end side.
According to the muffler for an air-conditioning apparatus of one embodiment of the present invention, the pressure loss of the refrigerant can be suppressed to be smaller than that of the related art while the muffling effect is maintained without increasing a size of the muffler main body, by positioning the distal end of the inlet pipe at the center of the length from the inlet to the outlet of the muffler main body and by setting the inner diameter of the inlet pipe on the distal end portion side smaller than the inner diameter of the inlet pipe on upstream of the distal end side.
The inlet pipe 9 is inserted through the inlet small diameter portion 8a of the muffler main body 8 into the muffler main body 8, and has an inserted pipe portion 10 having a length L1 from a starting point 8bs of the enlarged diameter portion 8b of the muffler main body 8. A distal end of the inserted pipe portion 10 is positioned at a center of a length from an inlet to an outlet of the muffler main body 8. The inserted pipe portion 10 has an upper inserted pipe portion 11 and a lower inserted pipe portion 12. The upper inserted pipe portion 11 is a portion of a length L2 from the starting point 8bs of the enlarged diameter portion 8b of the muffler main body 8. The upper inserted pipe portion 11 has an inner diameter equal to that of an upstream portion of the inlet pipe 9 with respect to the inlet small diameter portion 8a of the main body 8. The lower inserted pipe portion 12 is a portion of a length L3, which is continuous with the upper inserted pipe portion 11. The inner diameter of the lower inserted pipe portion 12 is set smaller than that of the upper inserted pipe portion 11. Thus, as the inlet pipe 9, there is employed a refrigerant pipe reduced in diameter at a portion of the lower inserted pipe portion 12.
In the muffler 1 having the configuration described above, a ratio of an inner diameter D of the muffler main body 8 to an inner diameter D2 of the lower inserted pipe portion 12 is set to satisfy D/D2>5.7.
A length of the inserted pipe portion 10 is represented by L1. A length of the upper inserted pipe portion 11 of the inserted pipe portion 10 is represented by L2. A length of the lower inserted pipe portion 12 of the inserted pipe portion 10 is represented by L3. The relationship among those lengths is set to satisfy 1.5<L3/L2<3.
As in the related-art muffler according to Patent Literature 1, there is a problem in that, when a diameter of the inserted pipe portion 10 is reduced from the inlet (corresponding to the starting point 8bs of this embodiment) of the muffler main body 8 (that is, L2=0 in this embodiment), a pressure loss of the refrigerant in the refrigerant circuit may increase, with the result that a heat exchange efficiency of the air-conditioning apparatus may be lowered. However, in this embodiment, the ratio of the inner diameter D of the muffler main body 8 to the inner diameter D2 of the lower inserted pipe portion 12 is set to satisfy D/D2>5.7, and a ratio of the length of the lower inserted pipe portion 12 to the length of the upper inserted pipe portion 11 is set to satisfy 1.5<L3/L2<3. Thus, compared to the muffler in which the diameter of the inserted pipe portion 10 is reduced from the inlet of the muffler main body 8 as in Patent Literature 1, the pressure loss can be reduced by 66% to a maximum. In this comparison, both of this embodiment and Patent Literature 1 have the same values in the length L of the muffler main body 8, the inner diameter D of the muffler main body 8, the length L1 of the inserted pipe portion 10, and the inner diameter D1 of the inlet pipe 9. For example, in a general compact muffler for an air-conditioning apparatus, the inner diameter D of the muffler main body 8 is 28 mm to 32 mm, the length L of the muffler main body 8 is 60 mm to 100 mm, and the length L1 of the inserted pipe portion 10 is 30 mm to 50 mm. In the muffler having the dimensions within those ranges, when the ratio of the inner diameter D of the muffler main body 8 to the inner diameter D2 of the lower inserted pipe portion 12 is a fixed value, the ratio of the length L3 of the lower inserted pipe portion 12 to the length L2 of the upper inserted pipe portion 11, which can be manufactured, satisfies 1.5<L3/L2<3. Under such a condition, when the pressure loss of the muffler in this embodiment is compared to that of the muffler having the inserted pipe portion 10 reduced in diameter from the inlet of the muffler main body 8, it is verified that the pressure loss is reduced by 33% to 66%. In the general compact muffler for an air-conditioning apparatus, as the ratio of the inner diameter D of the muffler main body 8 to the inner diameter D2 of the lower inserted pipe portion 12 increases within a range of 5.7<D/D2, a muffling effect is enhanced. However, in that case, the pressure loss increases. Meanwhile, when the ratio of the length L3 of the lower inserted pipe portion 12 to the length L2 of the upper inserted pipe portion 11 is set to satisfy L3/L2=1.5, the pressure loss can be reduced by 66%. Therefore, even when the ratio D/D2 of the inner diameter D of the muffler main body 8 to the inner diameter D2 of the lower inserted pipe portion 12 is set to be as large as 6.7, there can be obtained a muffler having the pressure loss equivalent to that of the muffler in which the diameter of the inserted pipe portion 10 is reduced from the inlet of the muffler main body 8 while D/D2=5.7 is satisfied.
Further, regarding the muffling effect of the mufflers 1, as the ratio of the inner diameter D of the muffler main body 8 to the inner diameter D2 of the lower inserted pipe portion 12 increases, a muffling amount increases. Therefore, when the ratio is set to satisfy D/D2>5.7 as described above, the muffling effect is enhanced, Here, when a refrigerant pipe in which a distal end side of the inserted pipe portion 10 is not reduced in diameter is employed as in the another related-art muffler (that is, L3=0 in this embodiment), itis verified that, in order to obtain the muffling effect as in this embodiment, the inner diameter of the muffler main body 8 needs to be set about 1.3 times larger than that of this embodiment. That is, in this embodiment, the muffling effect can be enhanced by reducing the inner diameter of the lower inserted pipe portion 12 without increasing the size of the muffler main body 8. Therefore, when the muffler 1 of this embodiment is employed, the muffler for an air-conditioning apparatus having an enhanced muffling effect can be introduced into an existing air-conditioning apparatus without newly designing a configuration of refrigerant circuit pipes of the air-conditioning apparatus.
Next, description is made of calculation results of the muffling effect of the muffler for an air-conditioning apparatus, which are calculated with the following conditions using an acoustic impedance.
the inner diameter D of the muffler main body=32 mm, the inner diameter of the inserted pipe portion
D
1
=D
2
, D/D
2=4.2 (1)
the inner diameter D of the muffler main body=32 mm, the inner diameter of the inserted pipe portion
D
1
>D
2
, D/D
2=5.8 (2)
the inner diameter D of the muffler main body=44.1 mm, the inner diameter of the inserted pipe portion
D
1
=D
2
, D/D
2=5.8 (3)
<Evaluation with Air-conditioning Apparatus>
1 muffler (for air-conditioning apparatus) 3 compressor 4 four-way valve 5 expansion valve 6 indoor heat exchanger 7 outdoor heat exchanger 8 muffler main body 8a inlet small diameter portion 8b enlarged diameter portion 8bs starting point of enlarged diameter portion 8c large diameter portion 8d reduced diameter portion 8e outlet small diameter portion 9 inlet pipe 10 inserted pipe portion 11 upper inserted pipe portion 12 lower inserted pipe portion 13 outlet pipe
Number | Date | Country | Kind |
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2014-213880 | Oct 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/077953 | 10/1/2015 | WO | 00 |