STEEL PIPE PILE WITH SPIRAL BLADES, COMPOSITE PILE, AND CONSTRUCTION METHOD OF COMPOSITE PILE
20170089024 ยท 2017-03-30
Assignee
Inventors
Cpc classification
E02D2250/0023
FIXED CONSTRUCTIONS
E02D5/46
FIXED CONSTRUCTIONS
International classification
Abstract
There is disclosed a steel pipe pile with spiral blades which is capable of effectively improving comparatively soft ground in which a clay layer and the like are present at deep positions of several ten meters beneath the surface of the ground. A steel pipe pile 1 with spiral blades comprises a steel pipe pile main body 10 and one or more spiral blades 20 attached to the steel pipe pile main body 10, and a diameter D of the spiral blade 20 is set to three times or more as large as a diameter d of the steel pipe pile main body 10.
Claims
1. A steel pipe pile with spiral blades comprising: a steel pipe pile main body; and one or more spiral blades attached to the steel pipe pile main body, wherein a diameter of the spiral blade is set to three times or more as large as a diameter of the steel pipe pile main body.
2. The steel pipe pile with the spiral blades according to claim 1, wherein the diameter of the spiral blade is set to three times or more and four times or less as large as the diameter of the steel pipe pile main body.
3. The steel pipe pile with the spiral blades according to claim 1, wherein the spiral blades are constituted of a distal blade attached to a distal portion of the steel pipe pile main body, and intermediate blades attached to portions of the steel pipe pile main body excluding the distal portion thereof; a length between the distal blade and the intermediate blade present at the lowermost end is set to 2.0 m or more; a length between the intermediate blades is set to 3.0 m or more; and a length between the intermediate blade present at the uppermost end and a pile head portion of the steel pipe pile main body is set to 0.3 m or more and 0.5 m or less.
4. The steel pipe pile with the spiral blades according to claim 3, wherein the length between the distal blade and the intermediate blade present at the lowermost end is set to twice or more as large as the length between the intermediate blade present at the uppermost end and the pile head portion of the steel pipe pile main body; and the length between the intermediate blades is set to three times or more as large as the length between the intermediate blade present at the uppermost end and the pile head portion of the steel pipe pile main body.
5. The steel pipe pile with the spiral blades according to claim 1, which comprises a plurality of plate-like reinforcing ribs arranged radially around the steel pipe pile main body on an upper surface of the spiral blade.
6. The steel pipe pile with the spiral blades according to claim 5, wherein each of the reinforcing ribs possesses a substantially trapezoidal shape in planar view, each of the ribs is disposed so that a first side as its long side abuts on an outer peripheral surface of the steel pipe pile main body, the rib is disposed so that a second side as its short side is separated from the steel pipe pile main body, the rib is disposed so that a third side which is at right angles with the first side and the second side abuts on the upper surface of the spiral blade, and a notch portion is formed in a corner portion formed by the first side and the third side.
7. A construction method of a composite pile which comprises a step of inserting the steel pipe pile with the spiral blades according to claim 1 into a soil cement column body constructed in the ground.
8. A composite pile which is formed by inserting the steel pipe pile with the spiral blades according to claim 1 into a soil cement column body constructed in the ground.
9. The composite pile according to claim 8, wherein a length from the deepest position of the soil cement column body to a distal end position of the steel pipe pile with the spiral blades is set to 0.2 m or more.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
DESCRIPTION OF EMBODIMENTS
[0038] Hereinafter, embodiments of the present invention will be described with reference to the drawings. It is to be noted that the following embodiments are merely preferable application examples, and a scope in which the present invention is applied is not limited to these examples.
[0039] First, a constitution of a steel pipe pile 1 with spiral blades according to the present embodiment (hereinafter referred to as the present steel pipe pile) will be described with reference to
[0040] The steel pipe pile main body 10 can be constituted of steel containing five elements (common elements) of carbon (C), silicon (Si), manganese (Mn), phosphorous (P) and sulfur (S). Furthermore, for the purpose of improving a weather resistance and an acid resistance, the steel pipe pile main body 10 may be constituted of steel to which special elements such as copper (Cu), nickel (Ni), chromium (Cr) and molybdenum (Mo) are added. At this time, as a ratio (a weight) of each of the special elements to be added, for example, each of the ratios of copper (Cu), nickel (Ni) and chromium (Cr) can be set to about 0.40%, and the ratio of molybdenum (Mo) can be set to about 0.15%.
[0041] As shown in
[0042] In the present embodiment, a diameter D of each of the spiral blades 20 is set to three times or more as large as a diameter d of the steel pipe pile main body 10. In this case, a peripheral area of a composite pile constructed by using the present steel pipe pile 1 can be enlarged. In a conventional steel pipe pile 100 with spiral blades (hereinafter referred to as the conventional pile), as shown in
[0043] The diameter D of each of the spiral blades 20 is preferably set to three times or more and four times or less as large as the diameter d of the steel pipe pile main body 10. In this case, a proper support force can be acquired while relatively reducing the diameter d of the steel pipe pile main body 10 and decreasing the manufacturing cost. When the diameter D of the spiral blade 20 is in excess of four times as large as the diameter d of the steel pipe pile main body 10 (the steel pipe pile main body 10 is excessively made thin), the proper support force would not be acquired, which is unfavorable.
[0044] Furthermore, in the present embodiment, a length L.sub.1 between the distal blade 21 and an intermediate blade 22 present at the lowermost end is set to 2.0 m or more (e.g., 2.5 m), and a length L.sub.m between the intermediate blades 22 is set to 3.0 m or more (e.g., 3.0 m). Furthermore, a length L.sub.2 between the intermediate blade 22 present at the uppermost end and a pile head portion 12 of the steel pipe pile main body 10 is set to 0.3 m or more and 0.5 m or less (e.g., 0.5 m). In the conventional pile 100, as shown in
[0045] When the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 is smaller than 2.0 m and the length L.sub.m between the intermediate blades 22 is smaller than 3.0 m, the number of the spiral blades 20 to the pile length unfavorably increases. When the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12 is smaller than 0.3 m, it unfavorably becomes difficult to interpose a member such as a pile cap between the uppermost-end intermediate blade 22 and the pile head portion 12. On the other hand, when the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12 is in excess of 0.5 m, the resistance force to the horizontal load cannot sufficiently be acquired, which is unfavorable.
[0046] The length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 is preferably set to twice or more (e.g., five times) as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12. Furthermore, the length L.sub.m between the intermediate blades 22 is preferably set to three times or more (e.g., six times) as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12. In this case, both of the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 and the length L.sub.m between the intermediate blades 22 are set to be comparatively long. Therefore, the number of the spiral blades 20 to the pile length can be decreased to improve a construction performance. Furthermore, the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12 is set to be comparatively short, and hence the resistance force to the horizontal load can be enlarged.
[0047] When the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 is smaller than twice as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12 and when the length L.sub.m between the intermediate blades 22 is smaller than three times as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12, the number of the spiral blades 20 to the pile length is unfavorably increased.
[0048] In the present embodiment, a flat and smooth bottom lid (not shown in the drawing) is attached to the distal portion 11 of the steel pipe pile main body 10, in place of an auxiliary metal fitting for drilling which has a pointed distal end. The auxiliary metal fitting for drilling is omitted in this manner, so that the ground or the soil cement column body 2 (
[0049] Furthermore, in the present embodiment, such a reinforcing rib 70 as shown in
[0050] Meanwhile, when the reinforcing ribs 70 are attached to the steel pipe pile main body 10 and the spiral blades 20, the first sides 71 abut on the steel pipe pile main body 10, and the third sides 73 abut on the spiral blades 20. In this case, it is feared that, when the present steel pipe pile 1 is twisted into the soil cement column body 2, cement or the like is retained in a corner portion formed by the first side 71 and the third side 73 of each of the reinforcing ribs 70, and the insertion resistance increases. To solve such a problem, in the present embodiment, a notch portion 74 is formed in the corner portion formed by the first side 71 and the third side 73 of the reinforcing rib 70. Thus, the notch portion 74 is formed, and hence, when the present steel pipe pile 1 is twisted, it is possible to inhibit the cement or the like from being retained in the corner portion formed by the first side 71 and the third side 73 of the reinforcing rib 70, and it is possible to decrease the insertion resistance.
[0051] Next, a method of constructing a composite pile by use of the present steel pipe pile 1 will be described with reference to
[0052] First, as shown in
[0053] In addition to the drilling blade 51, the stirring blades 52 and the stirring shaft 53, as shown in
[0054] After the column body constructing step is performed, as shown in
[0055] In the present embodiment, a length (a column extra length) from the deepest position of the soil cement column body 2 to a distal end position of the present steel pipe pile 1 in the constructed composite pile is set to 0.2 m or more. Therefore, a distal end support force of the composite pile can sufficiently be acquired. When the column extra length is smaller than 0.2 m, the sufficient distal end support force cannot be acquired, which is unfavorable.
First Embodiment
[0056] Subsequently, the result (a first embodiment) of a perpendicular loading test of composite piles constructed by using the present steel pipe pile 1 and the conventional pile 100, respectively, will be described with reference to
[0057] In the present steel pipe pile 1 employed in the present test, the diameter d of the steel pipe pile main body 10 is set to 165.2 mm, the diameter D of the spiral blade 20 is set to 500 mm (D=3.027d), and a pile length is set to 6000 mm. On the other hand, in the conventional pile 100 employed in the present test, a diameter d of the steel pipe pile main body 110 is set to 216.3 mm, the diameter D of the spiral blade 120 is set to 500 mm (D=2.312d), and a pile length is set to 6000 mm. The present steel pipe pile 1 and the conventional pile 100 were employed to construct composite piles each having a column diameter of 700 mm, and the perpendicular loading test was conducted.
[0058] A vertical axis in a graph of
[0059] A pile head load Pou when the distal end displacement amount Sp reaches 10% (50 mm) of the diameter D (500 mm) of the spiral blade is 509 kN in the composite pile constructed by using the conventional pile 100, but is 548 kN in the composite pile constructed by using the present steel pipe pile 1 as shown in
Second Embodiment
[0060] Subsequently, the result (a second embodiment) of a perpendicular loading test of a composite pile constructed by using the present steel pipe pile 1 will be described in comparison with a composite pile having an ideal support force with reference to
[0061] In the present steel pipe pile 1 employed in the present test, the diameter d of the steel pipe pile main body 10 was set to 219.1 mm, the diameter D of the spiral blade 20 was set to 700 mm (D=3.195d), and a pile length was set to 6000 mm. In the present test, the present steel pipe pile 1 was employed to construct a composite pile having a column diameter of 1000 mm, and the perpendicular loading test was conducted.
[0062] A vertical axis in a graph of
[0063] It has been clarified that the Sp-Po curve of the composite pile constructed by using the present steel pipe pile 1 approximately overlaps with the ideal curve up to a value (about 3000 kN) which is noticeably above a virtual long-term support force (set to of the virtual ultimate support force of 5860 kN). Furthermore, it has been clarified that the composite pile constructed by using the present steel pipe pile 1 has a margin ratio of about 30% to the virtual long-term support force (1950 kN) also in an employed design support force (1350 kN), and it has been clarified by the present test that the distal end displacement amount Sp is equal to that of the composite pile having the ideal support force.
Third Embodiment
[0064] Subsequently, an FEM analysis result (a third embodiment) of a perpendicular loading test of composite piles constructed by using the present steel pipe piles 1 (two types) will be described with reference to
[0065] In a first present steel pipe pile (a first steel pipe pile) 1A employed in the present analysis, the diameter d of the steel pipe pile main body 10 was set to 175.0 mm, the diameter D of the spiral blade 20 was set to 700 mm (D=4.0d), and a pile length was set to 6000 mm. On the other hand, in a second present steel pipe pile (a second steel pipe pile) 1B employed in the present analysis, the diameter d of the steel pipe pile main body 10 was set to 140.0 mm, the diameter D of the spiral blade 20 was set to 700 mm (D=5.0d), and a pile length was set to 6000 mm. There was conducted the FEM analysis of the perpendicular loading test in a case where a composite pile having a column diameter of 1000 mm was constructed by employing each of these two types of steel pipe piles (the first steel pipe pile 1A and the second steel pipe pile 1B).
[0066] A vertical axis in a graph of
[0067] It has been clarified that the Sp-Po curve of the composite pile constructed by using the first steel pipe pile 1A (D=4.0d) of the present embodiment approximately overlaps with the Sp-Po curve of the composite pile constructed by using the present steel pipe pile 1 of the second embodiment. That is, it has been clarified by the present analysis that the distal end displacement amount Sp of the composite pile constructed by using the first steel pipe pile 1A (D=4.0d) is equal to (or is slightly smaller than) that of the present steel pipe pile 1 of the second embodiment in the employed design support force (1350 kN).
[0068] The Sp-Po curve of the composite pile constructed by using the second steel pipe pile 1B (D=5.0d) of the present embodiment is also close to the Sp-Po curve of the composite pile constructed by using the present steel pipe pile 1 of the second embodiment. However, it has been clarified by the present analysis that the distal end displacement amount Sp of the composite pile constructed by using the second steel pipe pile 1B (D=5.0d) is slightly larger than that of the present steel pipe pile 1 of the second embodiment in the employed design support force (1350 kN). That is, it is seen that the first steel pipe pile 1A (D=4.0d) of the present embodiment has a higher support force than the second steel pipe pile 1B (D=5.0d).
[0069] In the steel pipe pile (the present steel pipe pile) 1 with the spiral blades according to the above-mentioned embodiment, the diameter D of the spiral blade 20 is set to three times or more as large as the diameter d of the steel pipe pile main body 10, so that a peripheral area of the composite pile constructed by using the present steel pipe pile 1 can be enlarged. Therefore, the support force of the composite pile can be enhanced, and hence the soft ground can effectively be improved. In the conventional steel pipe pile (the conventional pile) 100 with the spiral blades, the upper limit of the diameter D of the spiral blade 120 is determined in consideration of a size of the insertion resistance caused by the comparatively firm ground of our country, and the lower limit of the diameter d of the steel pipe pile main body 110 which receives and holds a horizontal load is determined from the viewpoint of an earthquake resistance. Therefore, the diameter D of the spiral blade 120 is set to be from about 1.5 times to 2.5 times as large as the diameter d of the steel pipe pile main body 110. On the other hand, in the present steel pipe pile 1 assumed for the improvement of the comparatively soft ground of another country in which a clay layer and the like are present at deep positions of several ten meters beneath the surface of the ground, the insertion resistance or the earthquake resistance does not have to be taken into consideration. Therefore, the diameter D of the spiral blade 20 can relatively be enlarged, and the diameter d of the steel pipe pile main body 10 can relatively be reduced. Consequently, manufacturing costs (a material cost, etc.) of the steel pipe pile main body 10 can be decreased.
[0070] Furthermore, in the steel pipe pile (the present steel pipe pile) 1 with the spiral blades according to the above-mentioned embodiment, the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 is set to 2.0 m or more, and the length L.sub.m between the intermediate blades 22 is set to 3.0 m or more (the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 is set to twice or more as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12, and the length L.sub.m between the intermediate blades 22 is set to three times or more as large as the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12). In this way, both of the length L.sub.1 between the distal blade 21 and the lowermost-end intermediate blade 22 and the length L.sub.m between the intermediate blades 22 are set to be comparatively long, and hence the number of the spiral blades 20 to the pile length can be decreased to improve a construction performance (rise of an insertion speed, increase of a maximum construction length, reduction of a construction period and the like can be realized). Additionally, costs for a support force performance (a material cost, a welding cost, a processing cost, etc.) can remarkably be reduced. Furthermore, the length L.sub.2 between the uppermost-end intermediate blade 22 and the pile head portion 12 is set to be comparatively short, and hence a resistance force to the horizontal load can be enlarged. As a result, it is possible to realize both of the improvement of the construction performance and maintenance of the support force. Furthermore, due to the decrease of the number of the spiral blades 20, a volume ratio of the steel pipe pile in the soil cement column body 2 decreases, and hence an amount of surplus soils to be generated decreases. As a result, a surplus soil treatment cost can be saved.
[0071] Furthermore, the steel pipe pile (present steel pipe pile) 1 with the spiral blades according to the above-mentioned embodiment comprises the plurality of plate-like reinforcing ribs 70 arranged radially around the steel pipe pile main body 10 on an upper surface of the spiral blade 20, and hence when the present steel pipe pile 1 is twisted into the soil cement column body 2, it is possible to withstand the reaction force (the bending moment) which acts from cement or the like. Therefore, the thickness of the spiral blade 20 can be decreased. Furthermore, the stirring effect can be obtained.
[0072] Furthermore, in the steel pipe pile (the present steel pipe pile) 1 with the spiral blades according to the above-mentioned embodiment, the notch portion 74 is formed in the corner portion formed by the first side 71 and the third side 73 of each of the reinforcing ribs 70. Therefore, when the present steel pipe pile 1 is twisted into the soil cement column body 2, it is possible to inhibit the cement or the like from being retained in the corner portion formed by the first side 71 and the third side 73 of the reinforcing rib 70, and it is possible to decrease the insertion resistance.
[0073] Furthermore, in the composite pile according to the above-mentioned embodiment, the length (the column extra length) from the deepest position of the soil cement column body 2 to the distal end position of the present steel pipe pile 1 is set to 0.2 m or more, and hence the distal end support force of the composite pile can sufficiently be acquired.
[0074] The present invention is not limited to the above embodiment, and this embodiment suitably designed and changed by a person skilled in the art is included in the gist of the present invention, as long as the embodiment comprises characteristics of the present invention. That is, respective elements of the above embodiment and an arrangement, materials, conditions, shapes, sizes and the like of the elements are not limited to illustrated ones and can suitably be changed (e.g., female and male spline joints can vertically be replaced). Furthermore, the respective elements of the above embodiment can be combined within a technically possible range, and any combination of these elements is also included in the gist of the present invention, as long as the characteristics of the present invention are included.
REFERENCE SIGNS LIST
[0075] 1: steel pipe pile with spiral blades [0076] 2: soil cement column body [0077] 10: steel pipe pile main body [0078] 11: distal portion [0079] 12: pile head portion [0080] 20: spiral blade [0081] 21: distal blade [0082] 22: intermediate blade [0083] 70: reinforcing rib [0084] 71: first side [0085] 72: second side [0086] 73: third side [0087] 74: notch portion [0088] d: diameter of steel pipe pile main body [0089] D: diameter of spiral blade [0090] G: ground [0091] L1: length between distal blade and lowermost-end intermediate blade [0092] L2: length between uppermost-end intermediate blade and pile head portion [0093] Lm: length between intermediate blades