The present disclosure relates to an accumulator, and in particular to an accumulator for a damper and a method of manufacturing the accumulator.
A damper includes a piston and a piston rod received within a chamber. A volume of the piston rod is generally compensated by using an accumulator. Conventional accumulators are of different types. For example, piston accumulators include a piston in a cylindrical accumulator vessel for separating a hydraulic fluid from a gas. The gas is compressed to store energy from the hydraulic fluid flowing into the vessel. Metal bellow accumulators include a metal bellows to separate the hydraulic fluid from the gas. Gas bag accumulators use a bag to separate the hydraulic fluid from the gas, while diaphragm accumulators use a diaphragm to separate the hydraulic fluid from the gas.
Piston accumulators typically have high internal friction. Diaphragm accumulators may not have adequate performance over a long period. Metal bellows accumulators may involve high weight and cost. Existing gas bag accumulators may have limited design variants. Further, the challenge with gas bags is that there are chances of folding lines which may deteriorate a bag material and can lead to leakage between a gas side and a hydraulic fluid side. Therefore, there exists a need for an accumulator that can overcome the aforementioned drawbacks of conventional accumulator designs.
According to a first aspect there is provided an accumulator for a damper. The accumulator includes a housing, a fluid connector and a bag. The housing defines a longitudinal axis. The fluid connector is at least partially received within the housing. The bag includes a plurality of annular discs received within the housing and disposed adjacent to each other along the longitudinal axis of the housing. Each annular disc includes an inner diameter defining a through aperture and an outer diameter. The plurality of annular discs includes a first end disc disposed adjacent to the fluid connector, a second end disc disposed distal to the fluid connector and one or more intermediate discs. Each intermediate disc is disposed between two adjacent annular discs. The inner diameter of the first end disc is connected to the fluid connector. The inner diameter of each intermediate disc is connected to the inner diameter of one adjacent annular disc. The outer diameter of each intermediate disc is connected to the outer diameter of the other adjacent annular disc. The bag further includes a cover disc connected to the outer diameter of the second end disc. The cover disc is a solid disc without any apertures. The plurality of discs and the cover disc define a first volume therebetween. The connector fluidly communicates the first volume with a chamber of the damper. The housing defines a second volume surrounding the bag.
In another aspect of the disclosure, a damper is provided. The damper includes a tube and an accumulator. The tube defines a chamber therein and the chamber receives a hydraulic fluid therein. The accumulator includes a housing, a fluid connector and a bag. The housing defines a longitudinal axis. The fluid connector is at least partially received within the housing. The bag includes a plurality of annular discs received within the housing and disposed adjacent to each other along the longitudinal axis of the housing. Each annular disc includes an inner diameter defining a through aperture and an outer diameter. The plurality of annular discs includes a first end disc disposed adjacent to the fluid connector, a second end disc disposed distal to the fluid connector and one or more intermediate discs. Each intermediate disc is disposed between two adjacent annular discs. The inner diameter of the first end disc is connected to the fluid connector. The inner diameter of each intermediate disc is connected to the inner diameter of one adjacent annular disc. The outer diameter of each intermediate disc is connected to the outer diameter of the other adjacent annular disc. The bag further includes a cover disc connected to the outer diameter of the second end disc. The cover disc is a solid disc without any apertures. The plurality of discs and the cover disc define a first volume therebetween. The connector fluidly communicates the first volume with the chamber of the damper such that the first volume receives the hydraulic fluid therein. The housing defines a second volume surrounding the bag and receiving a gas therein. The first volume is configured to change based on a direction of flow of the hydraulic fluid between the chamber of the damper and the first volume.
In yet another aspect of the disclosure, a method of manufacturing an accumulator is provided. The method includes providing a housing defining a longitudinal axis and receiving a fluid connector at least partially within the housing. The method further includes receiving a plurality of annular discs within the housing and disposed adjacent to each other along the longitudinal axis of the housing. Each annular disc includes an inner diameter defining a through aperture and an outer diameter. The plurality of annular discs includes a first end disc disposed adjacent to the fluid connector, a second end disc disposed distal to the fluid connector and one or more intermediate discs. Each intermediate disc is disposed between two adjacent annular discs. The method further includes connecting an inner diameter of the first end disc to the fluid connector. The method further includes connecting the inner diameter of each intermediate disc to the inner diameter of one adjacent annular disc. The method further includes connecting the outer diameter of each intermediate disc to the outer diameter of the other adjacent annular disc. The method further includes connecting the outer diameter of the second end disc to a cover disc. The cover disc is a solid disc without any apertures.
Further areas of applicability of the present invention will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention.
Wherever possible, the same reference numbers will be used throughout the drawings to refer to same or like parts.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. There is shown in
Referring to
As shown in
The bag 300 includes a plurality of annular discs 302 received within the housing 202. The plurality of annular discs 302 are disposed adjacent to each other along the longitudinal axis 204 of the housing 202. Each annular disc 302 includes an inner diameter 214 defining a through aperture 304 and an outer diameter 216. The bag 300 further includes a cover disc 306.
A top view of one of the annular discs 302 is shown in
A top view of the cover disc 306 is shown in
Referring back to
In the illustrated embodiments, the bag 300 includes seven annular discs 302 (i.e., n=7). Therefore, the annular disc 3027 is the second end disc. The intermediate discs 3022 to 3026 are together disposed between the annular discs 3021 and 3027.
As shown in
In general, the outer diameter 216 of the intermediate disc 302j (j is an even number less than n) is connected to the outer diameter 216 of the annular disc 302j−1. Further, the inner diameter 214 of the intermediate disc 302j (2≤j is an even number less than n) is connected to the inner diameter 214 of the annular disc 302j+1. For example, the outer diameter 216 of the intermediate disc 3024 is connected to the outer diameter 216 of the intermediate disc 3023. The inner diameter 214 of the intermediate disc 3024 is connected to the inner diameter 214 of the intermediate disc 3025.
In general, the outer diameter 216 of the intermediate disc 302k (k is an odd number greater than 1 and less than n) is connected to the outer diameter 216 of the annular disc 302k+1. Further, the inner diameter 214 of the intermediate disc 302k (k is an odd number greater than 1 and less than n) is connected to the inner diameter 214 of the annular disc 302k−1. For example, the outer diameter 216 of the intermediate disc 3023 is connected to the outer diameter 216 of the intermediate disc 3024. The inner diameter 214 of the intermediate disc 3023 is connected to the inner diameter 214 of the intermediate disc 3022.
The bag 300 further includes a cover disc 306. The cover disc has a diameter 218. The cover disc 306 is a solid disc without any apertures or openings. The diameter 218 of the cover disc 306 is connected to the outer diameter 216 of the second end disc 302n. In some embodiments, the cover disc 306 is connected to the second end disc 302n by thermal sealing. In some embodiments, the cover disc 306 is connected to the second end disc 302n by induction heated thermal sealing.
The plurality of annular discs 302 and the cover disc 306 define a first volume 402 therebetween. The fluid connector 206 fluidly communicates the first volume 402 with a chamber of the damper 120 (shown in
Referring to
The housing 202 is illustrated as rectangular with rounded edges. However, the housing 202 may have any suitable shape as per application requirements, such as circular, elliptical, polygonal, etc. The relative positioning of the fluid connector 206 and the gas filling connection 208 may also be varied.
Furthermore, in an example, each of the cover disc 306 and the first end disc 3021 may be made of a material that is different from that of the material of each annular disc 302. In some embodiments, each of the cover disc 306 and the first end disc 3021 may include a thicker polyamide disc with higher amount of stiffness and robustness as compared to the material of each annular disc 302.
At step 506, the method 500 includes receiving the plurality of annular discs 302 within the housing 202. The plurality of annular discs 302 are disposed adjacent to each other along the longitudinal axis 204 of the housing 202. Each annular disc 302 includes the inner diameter 214 defining the through aperture 304 and the outer diameter 216. The plurality of annular discs 302 includes the first end disc 3021, one or more intermediate discs 3022 to 302n−1 and the second end disc 302n. The first end disc 3021 is disposed adjacent to the fluid connector 206 and the second end disc 302n is disposed distal to the fluid connector 208. Each intermediate disc 3022 to 302n−1 is disposed between two adjacent annular discs 302.
At step 508, the inner diameter 214 of the first end disc 3021 is connected to the fluid connector 206. At step 510, the inner diameter 214 of each intermediate disc 3022 to 302n−1 is connected to the inner diameter 214 of one adjacent annular disc 302. At step 512, the outer diameter 216 of each intermediate disc 3022 to 302n−1 is connected to the outer diameter 216 of the other adjacent annular disc 302. In some embodiments, each intermediate disc 3022 to 302n−1 is connected to the adjacent annular discs 302 by thermal sealing. At step 514, the outer diameter 216 of the second end disc 302n is connected to the cover disc 306. In some embodiments, the second end disc 302n is connected to the cover disc 306 by thermal sealing.
The method 500 may further include filling the housing 202 with the gas surrounding the plurality of annular discs 302 and the cover disc 306. The method 500 may further includes receiving, via the fluid connector 206, the hydraulic fluid within the first volume 402 defined by the plurality of annular discs302 and the cover disc 306.
The accumulator 200 may have low friction and provide adequate performance over a long period. The accumulator 200 may be lightweight and may involve low manufacturing cost. Further, generation of folding lines in the bag 300 may be substantially prevented due to the construction of the bag from the annular discs 302 and the cover disc 306. Therefore, deterioration of a material of the bag 300 and resultant leakage between the first volume 402 and the second volume 404 can be avoided.
The present disclosure explains application of the accumulator 200 with the monotube damper 120. However, the present disclosure can be readily implemented with any other type of damper, such as dual tube damper or a triple tube damper.
While aspects of the present disclosure have been particularly shown and described with reference to the embodiments above, it will be understood by those skilled in the art that various additional embodiments can be contemplated by the modification of the disclosed machines, systems and methods without departing from the spirit and scope of what is disclosed. Such embodiments should be understood to fall within the scope of the present disclosure as determined based upon the claims and any equivalents thereof.