Refrigerant hammer arrestor and refrigerant loop incorporating that refrigerant hammer arrestor
10591100 ยท 2020-03-17
Assignee
Inventors
Cpc classification
B60H1/00892
PERFORMING OPERATIONS; TRANSPORTING
F25B2500/07
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B40/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2519
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/00485
PERFORMING OPERATIONS; TRANSPORTING
F25B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L55/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A refrigerant hammer arrestor includes a housing having an internal compartment communicating with a refrigerant line, a piston received in the housing and dividing the internal compartment into a first chamber and a second chamber and a damping mechanism to dampen displacement of the piston within the housing. Various refrigerant loops are also described incorporating a refrigerant hammer arrestor.
Claims
1. A refrigerant loop, comprising: a compressor; a condenser downstream from said compressor; a first expansion device downstream from said condenser; a first evaporator between said first expansion device and said compressor; a first shutoff valve between said condenser and said first evaporator; a first refrigerant hammer arrestor between said first shutoff valve and said condenser; a battery chiller, a battery chiller expansion device and a battery chiller shutoff valve between said condenser and said compressor and in parallel with said first evaporator, said first expansion device and said first shutoff valve; and a second refrigerant hammer arrestor between said battery chiller shutoff valve and said condenser.
2. The refrigerant loop of claim 1, wherein said first refrigerant hammer arrestor includes a housing including an internal compartment communicating with a refrigerant line; a piston received in said housing and dividing said internal compartment into a first chamber and a second chamber; and a damping mechanism to dampen displacement of said piston within said housing.
3. The refrigerant loop of claim 2, wherein said damping mechanism is selected from a group of damping mechanisms consisting of an electromechanical damping mechanism, a fluid damping mechanism, a mechanical damping mechanism and combinations thereof.
4. The refrigerant loop of claim 2, wherein said damping mechanism is selected from a group of damping mechanisms consisting of a piezoelectric material, a magnetic fluid, an air damping fluid, a liquid damping fluid, a gaseous damping fluid, a spring, a rubber damping element, a foam damping element and combinations thereof.
5. The refrigerant loop of claim 1, further including an internal heat exchanger between said first refrigerant hammer arrestor and said condenser and between said first evaporator and said compressor.
6. The refrigerant loop of claim 1, further including a second evaporator, a second expansion device and a second shutoff valve between said condenser and said compressor and in parallel with said first evaporator, said first expansion device and said first shutoff valve.
7. The refrigerant loop of claim 6, wherein said first refrigerant hammer arrestor is also between said second shutoff valve and said condenser.
8. A refrigerant loop, comprising: a compressor; a condenser downstream from said compressor; a battery chiller expansion device downstream from said condenser; a battery chiller between said battery chiller expansion device and said compressor; a battery chiller shutoff valve between said condenser and said battery chiller; a battery chiller refrigerant hammer arrestor between said battery chiller shutoff valve and said condenser wherein said battery chiller refrigerant hammer arrestor includes a housing including an internal compartment communicating with a refrigerant line, a piston received in said housing and dividing said internal compartment into a first chamber and a second chamber and a damping mechanism to dampen displacement of said piston within said housing; a first shutoff valve, a first expansion device and a first evaporator between said condenser and said compressor; and a second shutoff valve, a second expansion device and a second evaporator between said condenser and said compressor and parallel to said first shutoff valve, said first expansion device and said first evaporator.
9. The refrigerant loop of claim 8, wherein said damping mechanism is selected from a group of damping mechanisms consisting of an electromechanical damping mechanism, a fluid damping mechanism, a mechanical damping mechanism and combinations thereof.
10. The refrigerant loop of claim 8, wherein said damping mechanism is selected from a group of damping mechanisms consisting of a piezoelectric material, a magnetic fluid, an air damping fluid, a liquid damping fluid, a gaseous damping fluid, a spring, a rubber damping element, a foam damping element and combinations thereof.
11. The refrigerant loop of claim 8, further including a first refrigerant hammer arrestor between (a) said condenser and (b) said first shutoff valve and said second shutoff valve.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
(1) The accompanying drawing figures incorporated herein and forming a part of the specification, illustrate several aspects of the refrigerant hammer arrestor and the refrigerant loop incorporating a refrigerant hammer arrestor and together with the description serve to explain certain principles thereof.
(2)
(3)
(4) More specifically,
(5)
(6)
(7)
(8)
(9) Reference will now be made in detail to the present preferred embodiments of refrigerant hammer arrestor and the refrigerant loop incorporating a refrigerant hammer arrestor, examples of which are illustrated in the accompanying drawing figures.
DETAILED DESCRIPTION
(10) Reference is now made to
(11) A damping mechanism, generally designated by reference numeral 24, is provided to dampen displacement of the piston 16 within the housing 12. In the illustrated embodiment, the damping mechanism 24 is provided in the second chamber 20.
(12) The damping mechanism 24 is preferably a variable damping mechanism that may be electrical, mechanical, magnetic or fluid dynamic in nature. Thus, for example, the damping mechanism 24 may comprise, an electromechanical damping mechanism, a fluid damping mechanism, a mechanical damping mechanism and combinations thereof. More specifically, the damping mechanism may comprise, but is not necessarily limited to any one or more of the following: a piezoelectric material, a magnetic fluid, a variable magnetic repulsion device, an air damping fluid, a liquid damping fluid (such as a refrigerant), a gaseous damping fluid (such as nitrogen), a spring, a rubber damping element and a foam damping element.
(13) The refrigerant hammer arrestor 10 illustrated in
(14) The refrigerant hammer arrestor 10 may be incorporated into substantially any refrigerant loop in order to reduce noise, enhance the service life and extend the durability of the refrigerant loop of a climate control system. This includes a refrigerant loop and climate control system incorporated into a motor vehicle.
(15) Reference is now made to
(16)
(17) As further illustrated in
(18) The refrigerant loop 26 may also include a pressure sensor 42 for monitoring the pressure of the refrigerant in the refrigerant loop. Still further, the refrigerant loop 26 may include a second evaporator 44, a second expansion device 46 and a second shutoff valve 48 between the condenser 30 and the compressor 28 and in parallel with the first evaporator 34, the first expansion device 32 and the first shutoff valve 36.
(19) Still further, the refrigerant loop 26 illustrated in
(20) In the refrigerant loop 26 illustrated in
(21) As the first shutoff valve 36 is opened and closed to control the flow of refrigerant in the refrigerant loop 26 to the first expansion device 32 and first evaporator 34, the refrigerant hammer arrestor 38 is ideally positioned to dissipate or attenuate any shockwave or fluid hammer generated in the refrigerant by that action.
(22)
(23) The refrigerant loop 60 illustrated in
(24) It should be appreciated that the battery chiller refrigerant hammer arrestor 62 is ideally positioned in the refrigerant feed line 64 adjacent the battery chiller shutoff valve 54 to dissipate or arrest any fluid hammer pressure surge or wave caused in the refrigerant when the battery chiller shutoff valve 54 is opened or closed.
(25) Reference is now made to
(26)
(27)
(28) At the same time, the refrigerant hammer arrestor 70 provided in the common refrigerant feed line 58 leading from the condenser 30 to the first evaporator 34 and second evaporator 44 is ideally positioned to dissipate any fluid hammer, pressure surge or wave generated in the refrigerant when either the first shutoff valve 36 is opened or closed to control the flow of refrigerant to the first expansion device 32 and the first evaporator 34 or the second shutoff valve 48 is opened or closed to control the flow of refrigerant to the second expansion device 46 and second evaporator 44.
(29) The foregoing has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the embodiments to the precise form disclosed. Obvious modifications and variations are possible in light of the above teachings. All such modifications and variations are within the scope of the appended claims when interpreted in accordance with the breadth to which they are fairly, legally and equitably entitled.