Rammer
11274403 · 2022-03-15
Assignee
Inventors
Cpc classification
E02D3/046
FIXED CONSTRUCTIONS
E01C19/38
FIXED CONSTRUCTIONS
B06B1/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
E01C19/00
FIXED CONSTRUCTIONS
E01C19/38
FIXED CONSTRUCTIONS
E01C21/00
FIXED CONSTRUCTIONS
B06B1/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rammer includes: an engine; a reciprocating mechanism (3) including a crank shaft (13) and a connecting rod (14), and configure to convert a rotational force of the engine into a reciprocatory force; a leg part disposed in a forward inclined position in a traveling direction and configure to be moved up and down by the connecting rod (14); and a compacting plate disposed on a bottom end of the leg part. The crank shaft (13) is disposed orthogonally to the traveling direction. The reciprocating mechanism (3) includes a belt reduction mechanism (16) and a gear reduction mechanism (17).
Claims
1. A rammer comprising: an engine; a reciprocating mechanism including a crank shaft and a connecting rod and configured to convert a rotational force of the engine into a reciprocal force; a leg part disposed in a forward inclined position in a traveling direction and configured to be moved up and down by the connecting rod; and a compacting plate disposed on a bottom end of the leg part, wherein the crank shaft has a rotational axis disposed orthogonally to the traveling direction; wherein the reciprocating mechanism comprises: a driving pulley rotatably attached on an output shaft of the engine and having a rotational axis extending in a direction orthogonal to the traveling direction; a driven pulley larger in diameter than the driving pulley and having a rotational axis extending in the direction orthogonal to the traveling direction; a belt reduction mechanism including a belt wound between the driving pulley and the driven pulley; a gear shaft connected to the driven pulley and having a rotational axis extending in the direction orthogonal to the traveling direction; a pinion gear attached on the gear shaft and configured to rotate integrally and coaxially with the driven pulley; and a gear reduction mechanism including a large diameter gear disposed on the crank shaft and being engaged with the pinion gear.
2. The rammer according to claim 1, wherein the engine is disposed apart rearward from a case of the reciprocating mechanism and disposed on a plate member extending rearward from a lower part of the case.
3. The rammer according to claim 1 wherein the driven pulley is rotatably attached on one end side of the gear shaft, wherein the pinion gear is disposed on the other end side of the gear shaft, and wherein both ends of the gear shaft and both ends of the crank shaft are rotatably supported by the case.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
EMBODIMENTS OF THE INVENTION
(7) A rammer 1, as shown in
(8) The leg part 5 is disposed in a forward inclined position at a degree of θ to a vertical direction and includes a cylinder mechanism (not shown) including a coiled spring inside an inner cylinder and an outer cylinder. As shown in
(9) Such a cylinder mechanism, as described in the reference above, is a conventional one, and omitted from the figures.
(10) The handle 7, as shown in
(11) The engine 2 is a gasoline engine as an example. The engine 2 includes an output shaft 9 (see
(12) “Reciprocating Mechanism 3”
(13) The reciprocating mechanism 3, as shown in
(14) The belt reduction mechanism 16 includes: a driving pulley 18 rotatably attached on the output shaft 9 of the engine 2 (see
(15) In
(16) The crank shaft 13 is disposed behind the gear shaft 21 with the rotational axis of the crank shaft 13 set in the right-left direction orthogonal to the traveling direction of the rammer 1. Both the ends of the crank shaft 13 are rotatably supported by the case 4 by using bearings 26. The large diameter gear 25 is rotatably attached on the crank shaft 13 and near the right end of the crank shaft 13. The crank shaft 13 is formed with a crank pin 27, which is being offset from the rotational axis of the crank shaft 13, at the central portion in the axial direction. The crank pin 27 is connected to the upper part of the connecting rod 14 via a bush 28. The lower part of the connecting rod 14, as shown in
(17) “Operation”
(18) When the output shaft 9 of the engine 2 rotates, the gear shaft 21 rotates while being decelerated by the belt reduction mechanism 16, and then the crank shaft 13 rotates while being decelerated by the gear reduction mechanism 17. As described above, a crank movement of the connecting rod 14 results in an up-down movement of the piston 30, so that the coiled spring expands and contracts up and down, and the inner cylinder moves up and down relative to the outer cylinder. Thereby, the compacting plate 6 firmly compacts a ground.
(19) The present disclosure serves the following functions and effects.
(20) (1) The crank shaft 13 is disposed such that the rotational axis of the crank shaft 13 is set in a right-left direction, or an orthogonal direction to the traveling direction of the rammer 1. This causes the connecting rod 14 to change its position in the front-rear direction of the rammer 1, the rammer 1 is reduced in the vibration in a right-left direction during the forward travel, and the rammer 1 stably jumps forward by the gyro effect.
(21) (2) A reduction mechanism of the reciprocating mechanism 3 has the two-step reduction having the belt reduction mechanism 16 in addition to the gear reduction mechanism 17. Deceleration by the belt reduction mechanism 16 ensures a larger teeth number of the pinion gear 24 of the gear reduction mechanism 17. This improves a strength and an abrasion resistance of the pinion gear 24. In addition, the belt 20 slips when being overloaded, and thus the engine 2 and the reciprocating mechanism 3 are protected.
(22) (3) The engine 2 is disposed apart rearward from the case 4 of the reciprocating mechanism 3, and disposed on the plate member 10 extending rearward from the lower part of the case 4. Thus, while the engine 2 is pushed up from a ground under an impact force during compaction work, the plate member 10 is flexed to reduce the impact force and the reduced impact force is transmitted to the engine. This allows the engine 2 to be protected. The plate member 10 is provided with the bent part 10C bent in the right-left direction, and this ensures a preferable flexibility of the plate member 10.
(23) (4) The gear shaft 21 has the driven pulley 19 rotatably attached at one end side and the pinion gear 24 attached at the other end side. The shaft ends of the gear shaft 21 and the shaft ends of the crank shaft 13 are supported by the case 4 by using the bearings 22 and 26, respectively. This structure, where both the ends of the gear shaft 21 and both the ends of the crank shaft 13 are rotatably supported by the case 4, allows the pinion gear 24 and the large diameter gear 25 to be stably engaged together.
EXPLANATION OF REFERENCE NUMBER
(24) 1 Rammer
(25) 2 Engine
(26) 3 Reciprocating Mechanism
(27) 4 Case
(28) 5 Leg Part
(29) 6 Compacting Plate
(30) 10 Plate Member
(31) 13 Crank Shaft
(32) 14 Connecting Rod
(33) 15 Crank Mechanism
(34) 16 Belt reduction Mechanism
(35) 17 Gear reduction Mechanism
(36) 21 Gear Shaft
(37) 24 Pinion Gear
(38) 25 Large Diameter Gear
(39) 27 Crank Pin