HIGH POWER FLAT SAW WITH BLADE SHAFT DRIVE
20170304914 · 2017-10-26
Inventors
Cpc classification
B23D47/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
High power flat saw (10) having a large diameter saw blade (12), said flat saw (10) comprising a motor (11) and a blade shaft drive (1), wherein said blade shaft drive (1) comprises a first pulley (2) and a second pulley (3) and a belt (6), said second pulley (3) being directly connected to a blade shaft (9), said first pulley (2) having a smaller diameter than the diameter of said second pulley (3), and wherein said blade shaft drive (1) further comprises a variable belt tensioner (4) arranged to apply a variable force to the belt (6).
Claims
1. A high power flat saw having a large diameter saw blade, said flat saw comprising a motor and a blade shaft drive, wherein said blade shaft drive comprises a first pulley and a second pulley and a belt, said second pulley being directly connected to a blade shaft, said first pulley having a smaller diameter than a diameter of said second pulley, and wherein said blade shaft drive further comprises a variable belt tensioner arranged to apply a variable force to said belt wherein the first pulley is directly connected to a power take out shaft being an extension of a crankshaft/rotor of said motor, wherein said first and said second pulleys are directly rotationally connected by the belt, wherein the belt is a low profile belt, and wherein the dynamic belt tensioner of the blade shaft drive comprises a resilient member, said belt tensioner further comprises a rotatable idler pulley for contact with the belt and a pivot arm connecting the idler pulley to the resilient member.
2. The high power flat saw according to claim 1, wherein the resilient member is a rubber torsion bar.
3. The high power flat saw according to claim 1, wherein the blade is releasably connected to the blade shaft via a flange, and wherein a ratio between a diameter of said flange and the diameter of the saw blade is at least 1 to 6.
4. The high power flat saw according to claim 1, wherein a reduction ratio of the blade shaft drive from the power take out shaft to the blade shaft is in a range of between 1:3.6 and 1:1.5.
5. The high power flat saw according to claim 1, wherein an outer diameter of said second pulley is smaller than ⅙ of the diameter of the saw blade.
6. The high power flat saw according to claim 1, wherein the diameter of the saw blade is approximately 25″ or larger.
7. The high power flat saw according to claim 1, wherein the low profile belt has an ISO 9982 standardized belt profile selected from the group consisting of PH, PJ, PK, PL and PM.
8. The high power flat saw according to claim 1, wherein the motor is an internal combustion engine with a rated power output larger than 25 hp.
9. The A high power flat saw according to claim 1, wherein the motor is an electrical motor with a rated power output larger than 25 hp.
10. The A high power flat saw according to claim 8, wherein the internal combustion engine comprises between one and four cylinders.
11. The A high power flat saw according to claim 1, wherein the low profile belt comprises between 17 and 30 longitudinal ribs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Embodiments of the teachings herein will be described in further detail in the following with reference to the accompanying drawings which illustrate non-limiting examples on how the embodiments can be reduced into practice and in which:
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF EMBODIMENTS
[0023] The disclosed embodiments will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments of the invention are shown. Like numbers refer to like elements throughout.
[0024] In
[0025] The blade shaft drive 1 further comprises a first pulley 2 and a second pulley 3, the first pulley 2 having a smaller diameter than the second pulley 3 to achieve a reduction ratio between the motor 11 and the saw blade shaft 9. This is necessary since most saw blades 12 are designed to function optimally when the peripheral speed of the blade is around or below 65 m/s while performing cuts. Thus, the blade shaft drive 1 must reduce the rotational speed from the motor 11 power take out shaft 8 to the blade shaft 9. The power take out shaft 8, or output shaft, is the shaft through which power is delivered by the motor 11 and is preferably an extension of the crankshaft or rotor of said motor 11. A reduction ratio of between 1:3.6 and 1:1.5 is desired depending on the actual diameter of the saw blade. A preferred reduction ratio is approximately 1:2 for a blade diameter of approximately 30″ (760 mm). The above reduction ratios are required for large diameter saw blades 12, i.e. blades with a diameter in excess of 25″. The first 2 and second 3 pulleys are directly rotationally connected by the low profile belt 6, thus rotation of one pulley will cause rotation of the other and no intermediate shaft or transmission is needed for achieving above mentioned reduction ratios.
[0026] With reference to
[0027] The second pulley 3 is connected to the blade shaft 9 which in turn is connected to the saw blade via a flange 7. The first 2 and second 3 pulleys may be connected to their respective shafts 8, 9 by means of spline connections, fasteners or any other commonly known means for fixing a pulley to a shaft.
[0028] The blade shaft 9 may, which is shown in
[0029] The saw depth also comes in conflict with the desire to achieve a high reduction ratio for the blade shaft drive 1, since it is in this regard desired to increase the size of the second pulley 3 and to decrease the size of the first pulley 2. The second pulley 3 should not be larger than the flange 7 since this will limit saw depth. Flat saws are often configured such that the saw depth can be varied. This can be achieved in a number of ways, one of which may be to fit a wheel on a fixture which can be lowered and raised by the operator of the saw 10. By lowering and raising the wheel, the saw pivots around the two rear wheels (in the case where the saw blade 12 is mounted to the front of the saw 10 as is shown in
[0030] In prior art, to achieve a suitable reduction ratio in view of the above, gearboxes or jackshafts are commonly used. This however causes the overall efficiency of the flat saw to decrease and adds unnecessary complexity to the blade shaft drive. It is especially problematic to achieve the correct reduction ratio for high power flat saws with large saw blade diameters since a larger blade requires a higher reduction ratio. The applicant has trough insightful and inventive reasoning realized that by providing a poly V belt 6 as specified in this disclosure having a low belt profile in combination with a belt tensioner 4, it is possible to achieve sufficient reduction ratio while removing the need for a gearbox or a jackshaft. The functionality of such a blade shaft drive 1 is improved by the belt tensioner 4 being variable, meaning that it is arranged to vary the force applied to the belt 6. In that way, the belt tensioner 4 is dynamic in that it provides a varying, dynamic force which is not fixed or static. The variable belt tensioner 4 significantly reduces the risk of belt slippage and the tensioner 4 will take up slack in the belt 6 due to fluctuations and power pulses from the combustion engine 11.
[0031] As can be seen in
[0032] As large amounts of torque and power is transferred through the power take out shaft 8 to the first pulley 2, it is beneficial to keep the diameter of the power take out shaft 8 as large as possible to enable it to withstand high loads. This however comes in conflict with the desire to reduce the diameter of the first pulley 2 to increase the reduction ratio, which emphasizes the need to keep the protrusion of the ribs of the belt 6, i.e. the belt profile, as low as possible. Since reducing the protrusion of the ribs 61 of a belt 6 reduces its ability to transfer torque and increases for instance the risk of belt slippage, this is not an obvious solution to reduce the diameter of the first pulley 2.
[0033] However, as mentioned above, the addition of the belt tensioner 4 which harmonizes the tension in the belt 6 during different load conditions and the selection of the number of ribs of the belt 6 as specified below will make it possible to provide a blade shaft drive 1 with a low profile belt 6. This has been achieved through extensive testing, in which the applicant discovered that it is possible to achieve the desired reduction ratio, thus reaching a maximum velocity of 65 m/s of the peripheral edge of the saw blade while avoiding any further transmission means for high powered flat saws with large diameter saw blades. With reference to
[0034] It should be mentioned that the inventive concept is by no means limited to the embodiments described herein, and several modifications are feasible without departing from the scope of the invention as defined in the appended claims. For instance, two or more separate poly V belts could be used.