The present invention relates to a process and apparatus for producing a yarn, and a gland packing, and more particularly to a process and apparatus for producing a yarn which is to be used in a braided type gland packing, a string-like gasket, refractory cloth, or the like, and a gland packing which is produced by using the yarn produced by the production apparatus or the production process.
As a conventional art relating to a gland packing which is to be used in a shaft seal part of a fluid apparatus or the like, and a yarn used in the packing, known is a technique in which expanded graphite is used as a base material as disclosed in Patent Reference 1 and Patent Reference 2. Patent References 1 and 2 disclose that a yarn for a gland packing is formed by filling the interior of a tubular member configured by braiding a fibrous material (knitting, hollow knitting, or the like), with a long expanded graphite sheet. A gland packing is produced by twisting or braiding using plural yarns which are thus produced (for example, eight-strand square braiding which uses eight yarns).
The conventional art which uses a thus configured yarn made of expanded graphite is conducted with the intention that, since the outer periphery of the expanded graphite base material is covered by knitting with a reinforcing material, or the like, the tubular member configured by braiding the reinforcing material counters a tensile or torsion force which is generated in each yarn when the gland packing is produced by braiding the plural yarns, and the expanded graphite base material in the tubular member is prevented from being broken.
As a manner of producing the yarn, as shown in Patent Reference 3 (see
It is an object of the invention to realize and provide a process and apparatus for enabling a yarn formed by filling the interior of a tubular member configured by knitting or braiding a fibrous material with expanded graphite as a base material, to be produced in a state of a high productivity in order to enable the yarn to be actually used in an economical manner, or namely a process and apparatus for producing a yarn. It is another object of the invention to obtain a gland packing of a high productivity by using a yarn produced by the improved process and apparatus for producing a yarn.
The invention set forth in claim 1 provides a process of producing a yarn formed by filling an interior of a tubular member configured by knitting or braiding a fibrous material with expanded graphite, wherein
the process comprises: a fine cutting step of cutting an expanded graphite sheet which is continuously supplied in a state where the sheet has a predetermined width, to a small width along a width direction of the sheet; and a supplying and filling step of guiding and supplying a strip-like expanded graphite material which is produced by the fine cutting step, into the tubular member to be filled into the tubular member.
The invention set forth in claim 2 is characterized in that, in the process of producing a yarn according to claim 1, in the fine cutting step, a cutting blade which extends in the width direction is reciprocally moved in a vertical direction with respect to a sheet surface of the expanded graphite sheet, thereby continuously cutting the expanded graphite sheet to produce the strip-like expanded graphite material.
The invention set forth in claim 3 is characterized in that, in the process of producing a yarn according to claim 1 or 2, in the supplying and filling step, the strip-like expanded graphite material which is supplied through the fine cutting step is droppingly guided and supplied into the tubular member by using a funnel.
The invention set forth in claim 4 is characterized in that, in the process of producing a yarn according to any one of claims 1 to 3, in the supplying and filling step, the expanded graphite material which is supplied through the fine cutting step is droppingly guided and supplied into the tubular member in a sequence of supply, whereby a plurality of the expanded graphite materials are supplied into the tubular member in a state where end positions of the materials are shifted from one another by a predetermined distance in a longitudinal direction of the tubular member.
The invention set forth in claim 5 is characterized in that, in the process of producing a yarn according to claim 4, at least one of a speed of supplying the expanded graphite sheet to the fine cutting step, and a waiting time from an operation of cutting the expanded graphite sheet to a next cutting operation is variably adjusted, whereby at least one of the width of the expanded graphite material and the shifting distance of the end positions is variably adjusted.
The invention set forth in claim 6 provides a gland packing characterized in that plural yarns which are produced by the yarn production process according to any one of claims 1 to 5 are bundled and twisted or braided to be configured into a string-like shape.
The invention set forth in claim 7 provides an apparatus for producing a yarn formed by filling an interior of a tubular member configured by knitting or braiding a fibrous material with expanded graphite, wherein
the apparatus has: an expanded graphite supplying mechanism which can continuously supply an expanded graphite sheet having a predetermined width; a conveying mechanism which conveys the expanded graphite sheet supplied from the expanded graphite supplying mechanism, toward a fine cutting mechanism; the fine cutting mechanism which can cut the expanded graphite sheet conveyed by the conveying mechanism, into small width portions along a width direction of the sheet; and a guiding and supplying mechanism which guides and supplies the strip-like expanded graphite material produced by the fine cutting mechanism, into the tubular member.
The invention set forth in claim 8 is characterized in that, in the yarn producing apparatus according to claim 7, the expanded graphite supplying mechanism is configured by a structure where a reel around which a strip-like expanded graphite sheet is woundable is rotatably supported in a direction along which the expanded graphite sheet wound around the reel is unwoundable.
The invention set forth in claim 9 is characterized in that, in the yarn producing apparatus according to claim 7 or 8, the conveying mechanism is configured by a structure where the expanded graphite sheet supplied from the expanded graphite supplying mechanism is clamped by a pair of rollers, and at least one of the rollers is driven to rotate.
The invention set forth in claim 10 is characterized in that, in the yarn producing apparatus according to any one of claims 7 to 9, the fine cutting mechanism is configured by a structure where a cutting blade which extends in the width direction is reciprocally moved in a vertical direction with respect to a sheet surface of the expanded graphite sheet.
The invention set forth in claim 11 is characterized in that, in the yarn producing apparatus according to any one of claims 7 to 10, the guiding and supplying mechanism is configured by a structure where a funnel in which a large-diameter upper end opening is placed in an end portion of the fine cutting mechanism, and a small-diameter lower end opening is placed in an upper end portion of the tubular member that is placed in a vertically directed posture is disposed.
The invention set forth in claim 12 is characterized in that, in the yarn producing apparatus according to any one of claims 7 to 11, the guiding and supplying mechanism is configured so that the expanded graphite material produced by the fine cutting mechanism is guided and supplied into the tubular member in a sequence of cutting, and a plurality of the expanded graphite materials are supplied into the tubular member in a state where end positions of the materials are shifted from one another by a predetermined distance in a longitudinal direction of the tubular member.
The invention set forth in claim 13 is characterized in that, in the yarn producing apparatus according to claim 12, the apparatus comprises adjusting and setting means for variably adjusting and setting the width of the expanded graphite material and/or the shifting distance of the end positions, by variably adjusting a speed of conveying the expanded graphite sheet by the conveying mechanism, and/or a waiting time from an cutting operation in the fine cutting mechanism to a next cutting operation.
The invention set forth in claim 14 provides a gland packing characterized in that plural yarns which are produced by the yarn producing apparatus according to any one of claims 7 to 13 are bundled and twisted or braided to be configured into a string-like shape.
According to the invention set forth in claim 1, since the process has the step of forming a small-width expanded graphite material by cutting an expanded graphite sheet having a predetermined width along the width direction of the sheet, the strip-like expanded graphite material can be continuously produced by continuing the fine cutting step, and the supplying and filling step of supplying the expanded graphite material into the tubular member is performed, whereby a yarn can be continuously produced. Namely, the process can be configured as a yarn production process which is suitable for mass production. A long expanded graphite sheet has a characteristic that the tensile strength in the width direction is superior to that in the longitudinal direction. Therefore, there is an advantage that it is possible to obtain a yarn having a mechanical strength which is superior than that obtained by a method where a longer expanded graphite material is formed by, for example, cutting an expanded graphite sheet along the longitudinal direction and then supplied to a tubular material.
Furthermore, a situation where a yarn is bent as in braiding or the like will be considered. Expanded graphite can be hardly expected to elongate. In the case where the above-mentioned longer expanded graphite material is used, therefore, the situation can be coped with only by breaking of the expanded graphite material. Since the expanded graphite material in the invention has a strip-like shape, the material can follow bending deformation when adjacent materials are mutually moved. It is advantageous because a failure of breaking hardly occurs. As a result, it is possible to realize and provide a yarn production process in which a yarn formed by filling the interior of a tubular member configured by knitting or braiding a fibrous material with expanded graphite as a base material can be produced in a state where the yarn can be actually used in an economical manner and the productivity is excellent while the mechanical strength is made advantageous.
When, as in claim 2, the expanded graphite sheet is finely cut in the fine cutting step by vertical movements of the cutting blade extending in the width direction with respect to the sheet surface, even the simple reciprocal movement of the cutting blade enables the operation of cutting the expanded graphite sheet to produce the strip-like expanded graphite material to be continuously performed. Therefore, it is possible to obtain a fine cutting step which is suitable for mass production.
According to the invention set forth in claim 3, when the supplying and filling step is configured so that the produced strip-like expanded graphite material is supplied into the tubular member by using a funnel, the process can be provided as a high-efficient and economical production process in which the fine cut expanded graphite material can be efficiently filled into the tubular member by using only a behavior that the expanded graphite material drops.
According to the invention set forth in claim 4, since the expanded graphite materials are supplied into the tubular member in the sequence of cutting in the fine cutting step, the length of the shifting between end positions of adjacent expanded graphite materials in the supply to the tubular member, i.e., the shifting distance can be set by using the interval between the cutting operation in the fine cutting step and the next cutting operation. Therefore, large-scale means for additionally disposing a dedicated step of setting the shifting distance is not required. Although the guiding and filling step is made simple and economical, the expanded graphite material can be supplied into the tubular member while forming shifting of a predetermined distance.
According to the invention set forth in claim 5, the width of the expanded graphite material and the shifting distance of the end positions of adjacent expanded graphite materials can be arbitrarily set by adjusting the speed of supplying the expanded graphite sheet to the fine cutting step, and/or the waiting time from the operation of cutting the expanded graphite sheet to the next cutting operation. Therefore, a large-scale facility for additionally disposing a dedicated step of adjusting and setting a shifting distance is not required. It is possible to provide a yarn production process in which, although the guiding and filling step is made simple and economical, the shifting distance of expanded graphite materials supplied into a tubular member can be arbitrarily adjusted and set, and which is convenient and easy to use.
According to the invention set forth in claim 6, by using a yarn which exerts any one of the effects of the above-described inventions set forth in claims 1 to 5, it is possible to produce and obtain a gland packing having an excellent sealing property.
According to the invention set forth in claim 7, because of means for cutting an expanded graphite sheet having a predetermined width along the width direction to form a small-width expanded graphite material, when the conveying mechanism and the cutting mechanism are continued to be operated, a strip-like expanded graphite material can be continuously produced, and, when the expanded graphite material is supplied into the tubular member, a yarn can be continuously produced. Namely, the apparatus can be configured as a yarn producing apparatus which is suitable for mass production. A long expanded graphite sheet has a characteristic that the tensile strength in the width direction is superior to that in the longitudinal direction. Therefore, there is an advantage that it is possible to obtain a yarn having a mechanical strength which is superior than that obtained by a method where a longer expanded graphite material is formed by, for example, cutting an expanded graphite sheet along the longitudinal direction and then supplied to a tubular material.
Furthermore, a situation where a yarn is bent as in braiding or the like will be considered. Expanded graphite can be hardly expected to elongate. In the case where a longer expanded graphite material is used, therefore, the situation can be coped with only by breaking of the expanded graphite material. Since the expanded graphite material in the invention has a strip-like shape, the material can follow bending deformation when adjacent materials are mutually moved. It is advantageous because a failure of breakage hardly occurs. As a result, it is possible to realize and provide a yarn production apparatus in which a yarn formed by filling the interior of a tubular member configured by knitting or braiding a fibrous material with expanded graphite as a base material can be produced in a state where the yarn can be actually used in an economical manner and the productivity is excellent while the mechanical strength is made advantageous.
When, as in claim 8, the expanded graphite supplying mechanism is configured so that the expanded graphite sheet 9 which is wound around the rotatable reel is supplied by unwinding rotation of the reel, the mechanism can be configured as a rational expanded graphite supplying mechanism which can hold a large amount of expanded graphite sheets, which is suitable for mass production, and which can be configured relatively economically. When, as in claim 9, the conveying mechanism is configured so that the expanded graphite sheet is clamped by a pair of rollers, and at least one of the rollers is driven to rotate, the mechanism can be configured as a conveying mechanism in which, although the structure is simple, a sure conveying function is obtained.
When, as in claim 10, the fine cutting mechanism is configured so that the expanded graphite sheet is finely cut by vertical movements of the cutting blade extending in the width direction with respect to the sheet surface, a step of finely cutting an expanded graphite sheet to a strip-like expanded graphite material by the simple reciprocal movement of the cutting blade can be easily continued. Therefore, it is possible to obtain a fine cutting mechanism which is suitable for mass production. According to the invention set forth in claim 11, when the guiding and supplying mechanism is configured so that the strip-like expanded graphite material is supplied into the tubular member by using the funnel, the mechanism can be configured as a high-efficient and economical guiding and supplying mechanism in which the fine cut expanded graphite material can be efficiently filled into the tubular member by using only a behavior that the expanded graphite material drops.
According to the invention set forth in claim 12, when the guiding and supplying mechanism is configured so that the expanded graphite materials are supplied into the tubular member in the sequence of cutting in the fine cutting mechanism, the length of the shifting between end positions of adjacent expanded graphite materials in the supply to the tubular member, i.e., the shifting distance can be set by using the interval between the cutting operation in the fine cutting mechanism and the next cutting operation. Therefore, a large-scale configuration for additionally disposing dedicated means for setting the shifting distance is not required. Although the guiding and supplying mechanism is made simple and economical, the expanded graphite material can be supplied into the tubular member while forming shifting at a small step.
According to the invention set forth in claim 13, when the constituents of the conveying mechanism and the fine cutting mechanism are adjusted, the width and shifting distance of the expanded graphite material can be arbitrarily set, and this is convenient. As in claim 14, it is possible also to produce a gland packing having an excellent sealing property, by using a yarn produced by the producing apparatuses of the inventions set forth in claims 7 to 13.
a) to 3(c) are functional diagrams showing a first half of the situation where the shifting distance is formed.
a) and 4(b) are functional diagrams showing a second half of the situation where the shifting distance is formed.
1 yarn
2 fibrous material
3 tubular member
4 expanded graphite material
5 gland packing
9 expanded graphite sheet
9a sheet surface
10 reel
11, 12 roller
14 cutting blade
17 funnel
17a upper end opening
17b lower end opening
a expanded graphite supplying mechanism
b conveying mechanism
c fine cutting mechanism
d guiding and supplying mechanism
k supplying and filling step
s fine cutting step
A yarn producing apparatus
T waiting time
V speed of supplying expanded graphite sheet
Hereinafter, embodiments of the yarn production process of the invention, the yarn producing apparatus which is a facility for the process, the yarn which is produced by the production process, and the gland packing which is produced by using the yarn will be described with reference to the drawings.
The expanded graphite supplying mechanism a is configured by disposing a reel 10 around which the strip-like expanded graphite sheet 9 is woundable, so as to be rotatable about an axis P in both the forward and reverse directions. When the reel 10 is rotated in the direction of the arrow A1 shown in
The conveying mechanism b is configured by a structure where the expanded graphite sheet 9 supplied from the expanded graphite supplying mechanism a is clamped by a pair of upper and lower rollers 11, 12, and at least one of the rollers 11, 12 is driven to rotate by a conveying driving portion 13. Namely, the expanded graphite sheet 9 is laterally transported in a horizontal direction, and the reel 10 is followingly rotated by the forced conveying of the expanded graphite sheet 9 by the conveying mechanism b, so as to unwind the expanded graphite sheet 9.
The fine cutting mechanism c is configured by: a cutting blade 14 which extends in the width direction of the expanded graphite sheet 9 that is conveyed in the horizontal direction; a fine cut driving portion 15 which reciprocally moves the blade in the vertical direction with respect to the sheet surface 9a of the expanded graphite sheet 9; and a table 16 which is a counterpart of the cutting blade 14. The reference numerals 21, 22 in
The guiding and supplying mechanism d is configured by disposing a funnel 17 in which a large-diameter upper end opening 17a is placed in an end portion of the fine cutting mechanism c, and a small-diameter lower end opening 17b is placed in an upper end portion of the tubular member that is placed in a vertically directed posture, and which is placed in a vertically directed posture. Namely, the guiding and supplying mechanism d functions so that the small-width strip-like expanded graphite material 4 produced by the fine cutting mechanism c is guided and supplied into the tubular member 3 in the sequence of cutting while dropping to bump against the funnel inner surface 17c which is inclined in a bowl-like manner, thereby changing the posture from the horizontal posture to the vertical posture. The guiding and supplying mechanism is configured so that plural expanded graphite materials 4 are supplied into the tubular member 3 in a state where end positions thereof are shifted from one another by a predetermined distance in the longitudinal direction of the tubular member 3, i.e., the vertical direction.
The tubular member 3 is braided by the knitting machine e so as to extend downward. The lower end opening 17b is inserted and placed in the knitting machine e, whereby it is configured so that the expanded graphite material 4 is filled into the tubular member 3 which is sequentially produced, to produce the yarn 1. A control device 18 which controls the driving states of the conveying mechanism b, the fine cutting mechanism c, and the knitting machine e, and width setting means (an example of adjusting and setting means) for setting the width of the expanded graphite material 4, and shifting distance setting means (an example of adjusting and setting means) 20 for setting the shifting distance of end portions of the expanded graphite materials 4 dispose the control device 18 to constitute a drive control unit L.
In the yarn production process by the producing apparatus A, the yarn 1 is produced through a conveying step h, a fine cutting step s, and a supplying and filling step k. In the conveying step h, the conveying driving portion 13 is driven to drivingly rotate the pair of rollers 11, 12 which clamp the expanded graphite sheet 9, and, in accordance with this, the reel 10 followingly rotate to unwind the expanded graphite sheet 9 which is wounded. The conveying speed V (see
The fine cutting step s is a step of continuously cutting the expanded graphite sheet 9 which is continuously supplied in a state where the sheet has a predetermined width, to a small width along the width direction of the sheet. Specifically, the step performs a function of driving the fine cut driving portion 15 to cause the cutting blade 14 to repeat a downward cutting movement and an upward return movement (the cutting blade 14 is reciprocally moved in the vertical direction with respect to the sheet surface 9a of the expanded graphite sheet 9), whereby the expanded graphite sheet 9 which is conveyed is finely cut to the strip-like expanded graphite material 4 having a predetermined small width w. The expanded graphite material 4 which has been cut drops into the funnel 17 which is placed immediately below. The terms of “continuously cut to a small width” mean that the expanded graphite sheet 9 is sequentially finely cut by the cutting blade 14 through continuously operating the fine cutting mechanism c without stopping. The small width w can be arbitrarily increased or decreased by increasing or decreasing the driving speed of the mechanism. This may be defined by an expression of “intermittently cut at a small width”, when the expanded graphite sheet 9 which is the cut side is considered as the base from the viewpoint of the structure of the fine cutting mechanism c.
The supplying and filling step k is a step of guiding and supplying the strip-like expanded graphite material 4 which is produced by the fine cutting step s, into the tubular member 3 to be filled thereinto. Specifically, the step performs a function that, as shown in
As a result of the above steps of the yarn producing apparatus A (the production process), the expanded graphite sheet 9 which is wound around the reel 10 is finely cut to the small-width strip-like expanded graphite material 4, and a large number of expanded graphite materials 4 which are produced by the fine cutting are filled into the tubular member 3 which is being produced by the knitting machine e, by using the funnel 17, whereby the yarn 1 formed by filling the interior of the tubular member 3 configured by braiding the fibrous material 2 with the expanded graphite can be produced. Next, an embodiment of the yarn 1, and the control of the producing apparatus A will be described.
As shown in
As shown in
a) shows a state where the pushing on the second expanded graphite material 4b by the expanded graphite sheet 9 is completed, and the material begins to singly jump. In this state, the first expanded graphite. material 4a is slightly moved from the state of
In the above, α is a coefficient. The coefficient a is an element which is used for converting the horizontal gap W to the vertical shifting distance in the tubular member 3, and which is determined by the specifications of the system such as the guiding and supplying mechanism d. As in this case, the horizontal distance W and the coefficient α are determined by various factors such as an operation of amplifying the gap by the acceleration of gravity according to the height between the cutting position and the tubular member 3, and the frictional resistance due to the sliding down on the funnel inner surface 17c, and a detailed description thereof is omitted. The actual shifting distance D is set to 20 to 30 mm as described later, or another value.
The horizontal gap W between adjacent expanded graphite materials, i.e., the shifting distance D is determined by the conveying speed V of the expanded graphite sheet 9, and the waiting time T [approximately the time from the state of
A multiplication (Vth) of a conveying time Th [about the time required for transition from the state of
For reference,
Next, the shape and characteristics of the yarn 1 produced by the above-described yarn production process, several examples, and a gland packing 5 (G) produced by using the yarn 1 will be described.
As shown in
As shown in
In
As seen from the table of
The gland packing 5 shown in
A yarn of Example 1 is produced in the following manner by using the above-described production process. A large number of expanded graphite materials 4 which have a rectangular section shape of a thickness (t) of 0.38 mm×a width (w) of 1.0 mm, and which have a length of about 200 mm are inserted into the tubular member 3 configured by braiding (knitting) using an Inconel wire (or a stainless steel wire or the like) having a diameter of about 0.1 mm serving as the fibrous material 2, with shifting positions of their end portions from one another by 20 mm, thereby forming the yarn 1 having a circular (round) section shape. In the example, namely, the shifting D between end portions of the expanded graphite materials 4, 4 is set to D=20 mm. In the first yarn 1 of Example 1, the aspect ratio h of the expanded graphite material 4 was h=1.0/0.38≈2.63, and the weight was 5 g/m.
A yarn of Example 2 is produced in the following manner by using the above-described production process. The expanded graphite materials 4 having a section size of a thickness of 0.38 mm, a width of 1.0 mm, and a length of 200 mm are bundled with shifting their end portions from one another by 30 mm, thereby forming a long product. The outer periphery of the product is covered by the tubular member 3 configured by knitting the fibrous material 2 configured by an Inconel wire having a diameter of 0.1 mm, thereby forming the yarn 1 having a circular (round) section shape. In the example, namely, the shifting distance D between end portions of the expanded graphite materials 4, 4 is set to D=30 mm. In the second yarn 1 of Example 2, the aspect ratio h of the expanded graphite material 4 was h=1.0/0.38≈2.63, and the weight was 4 g/m.
Eight yarns 1 of Example 2 were braided, and expanded graphite was then applied over the surface, thereby producing the gland packing 5 having a square section of 6.5 mm in length and 6.5 mm in width (see
From the comparison table of characteristics of
In a yarn of a conventional product, expanded graphite (expanded graphite sheets, expanded graphite tapes) are randomly introduced and filled into a tubular member. Therefore, interrupted portions (see the interrupted portions f in
By contrast, in the yarn 1 of Examples 1, 2, many strip-like expanded graphite materials filled into the tubular member 3 are configured so that positions of end portions are evenly shifted in the longitudinal direction of the yarn. Therefore, the places of the interrupted portions f are evenly distributedly placed in the longitudinal direction (also in the lateral direction) of the yarn 1 as described above, and the density of the expanded graphite materials 4 in the tubular member 3 is further uniformalized. As a result, the response to elongation due to slippage between expanded graphites is uniformalized irrespective of the position in the longitudinal direction of the yarn, and therefore substantially improved (see
From the above, the yarn 1 of Examples 1, 2, and the gland packing 5 configured by it have the following advantages. 1. When the number of expanded graphite materials is changed, a yarn having an arbitrary thickness can be produced. 2. Sliding between expanded graphite materials is excellent, and hence expanded graphite is not broken, and can largely elongate. 3. A section of a fiber bundle is easily deformed to a round shape, and hence the adhesiveness to a reinforcing material is excellent, and bending easily occurs. 4. A long material is not used, and therefore production can be easily performed. 5. A yarn can be produced without using an adhesive agent.
The fine cutting mechanism c for performing the fine cutting step s may have any structure as far as it can cut the expanded graphite sheet 9 along the width direction. Therefore, a structure other than the illustrated one which uses the cutting blade 14 may be employed. The conveying mechanism b for performing the conveying step h, and the guiding and supplying mechanism d for performing the supplying and filling set k may have a structure other than the illustrated ones. Also the expanded graphite supplying mechanism a, the conveying mechanism b, and the guiding and supplying mechanism d may have a structure other than the illustrated ones.
Number | Date | Country | Kind |
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2006-008564 | Jan 2006 | JP | national |
2006-008565 | Jan 2006 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2006/326198 | 12/28/2006 | WO | 00 | 7/17/2008 |