The present application relates to soil compaction, and more particularly relates to pneumatic pole or backfill tampers for compacting backfill.
Municipalities, utility companies and similar organizations have historically used pneumatic pole or backfill tampers to compact soil in backfill areas. Backfill tampers are popular not only because they are lightweight and small, but also because can be easily and economically incorporated into existing outfits. For example, most municipalities have an air compressor that is used to operate other pneumatic tools. Backfill tampers therefore offer a low-cost alternative to other compaction devices such as for example gas-powered rammers.
Known pneumatic backfill tampers provide adequate compaction, but are difficult to operate for long periods of time because the tampers transmit a relatively large amount of feedback to the operator. Recently, there has been much attention paid to operator comfort while using small construction equipment. For example, the European Union has begun to limit the amount of time workers can operate vibratory equipment in hopes of reducing life-long problems including arthritis and nerve damage. These time limits are based on a frequency-weighted acceleration scale known as H.A.R.M.
It is therefore desirable to provide a backfill tamper with means to reduce the amount of feedback transmitted to the operator during use. It is further desirable to provide such a means for reducing feedback that is compact, economical, and adaptable for use with a wide variety of backfill tamper designs.
The present invention provides a means for reducing the amount of feedback transmitted to the operator during use of a backfill tamper. The invention is compact, economical and adaptable for use with a wide variety of backfill tamper designs.
In one arrangement, a vibration isolation assembly is designed to operate with a backfill tamper device. The vibration isolation assembly is disposed between the handle and the percussion mechanism of the tamper and arranged to absorb feedback forces from the percussion mechanism during tamper operation. The invention is intended for use with a variety of known tamper designs, and also can be incorporated into a newly-designed dedicated percussion assembly.
The best mode of carrying out the present invention is described hereinbelow with reference to preferred embodiments depicted in the following drawing figures.
In the preferred arrangements of the present invention described in detail below, a device for limiting vibration feedback from a pneumatic backfill pole or tamper is provided. It should be understood that the drawings and specification are to be considered merely an exemplification of the principles of the invention. For example, although the arrangements shown are provided for use with a specific tamper device, the present invention is applicable for use with a variety of known or newly designed tamper devices.
Beneath the handle 22 is the center tube 24, which has a hollow interior and directs airflow from the handle 22 to the percussion mechanism 26. The center tube 24 also serves as an additional handle when the tamper 20 is manually operated.
The percussion mechanism 26 is beneath the center tube 24 and includes a series of valves that convert the airflow from the hose 30 into a cyclical percussion motion. The cyclical percussion motion is transmitted from the percussion mechanism 26 to the shoe 28 which in turn delivers impact force onto the ground 36. In a typical arrangement, the tamping shoe 28 is driven with a five-inch stroke at 500 BPM.
It is also known in the art to configure the tamper 20 for different depth jobs by changing the length of the center tube 24 between the actuator handle 22 and the percussion mechanism 26. Acceleration (vibration) of an air tamper is primarily in the vertical (axial) direction-coinciding with the action of the shoe 28. A vector sum (X, Y and Z) H.A.R.M. value of 25 to 35 is typical.
Referring to
Referring now to
The tube 42 forms the main body of the isolator assembly 40 and is knurled to provide a hand grip for manual operation. The tube 42 defines a hollow channel 53 that allows compressed air to pass directly through the isolator assembly 40 to the percussion mechanism 26 without significant pressure drop. The channel 53 also houses a vibration dampening piston arrangement. More specifically, a plated piston rod 54 extends through a lower bushing 56 in the channel 53 and into an upper bushing 58 and puck 60. The rod 54 is hollow and includes an air hole 62, the purpose of which will be explained further below. The lower end 50 of rod 54 is threaded and designed to connect to the percussion mechanism 26. Together, the upper bushing 58, puck 60 and rod 54 constitute a piston 64 that axially reciprocates along the length of the channel 53. The bushing 58 and puck 60 divide the channel 53 into upper and lower chambers 66, 68, which change in respective length and volume as the piston 64 reciprocates (see
A plurality of springs are provided in the tube 42 to provide a dampening effect on vibrations emanating from the percussion mechanism 26. More specifically, a main spring 72 and a back-up spring 74 wrap around the piston rod between the opposed bushings 56,58. In addition, a second back-up spring 76 is provided adjacent the top cap 44. Preferably, the main spring 72 is longer and softer than the stiffer and shorter backup springs 74,76.
When the device is not in use, the springs 72,74,76 act upon each other and the piston arrangement to seek an equilibrium position. Springs 72 and 74 are separated by, and act upon opposite sides of a spacer 78. Springs 72 and 76 are separated by and act upon opposite sides of the bushing 58 and puck 60. Lower end of spring 74 acts upon flanged bushing 56 and upper end of spring 76 acts upon the upper end cap 44.
Once the trigger 34 of the backfill tamper device is activated, pressurized air from the air hose 30 enters the isolator assembly 40 as shown by arrow 41. The pressurized air fills the upper chamber 66, passes through the rod 54 towards the percussion mechanism 26 (arrow 43), passes out of the rod 54 through hole 62 (arrow 45), and enters the lower chamber 68. Due to the difference in projected area of the upper 66 and lower 68 chambers, air pressure causes the piston 64 to advance out of the tube 42 until equilibrium is reached with the force exerted by springs 72,74. This becomes the normal steady state operating position of the isolator assembly 40. The springs 72,74 and the force caused by the air pressure serve to isolate the motion of the piston 64 (created by the percussion unit 26) from the cylinder/top cap/trigger assembly.
The stiffness of the main spring 72 is determined by the range in expected operating pressures, the degree of isolation desired, and the percussion unit stroke. The stiffer backup spring 74 is designed to stop the piston 64 from bottoming out and making hard contact with the bottom end cap 46. It is contemplated that the springs 72,74 could alternately be replaced with a single variable rate spring. The backup spring 76 connected to the top cap 44 prevents a hard contact between the piston 64 and the top cap 44. Both backup springs 74,76 will normally only be compressed during starting/stopping and other operating transients.
The isolator assembly 40 may include polymer bearings 56,60 which allow it to run without lubrication if necessary. The bearings are specified to provide a long service life. Additionally, all components can be plated to prevent corrosion from condensation in the air supply. A second function of the seals is to protect the springs, bushings, and channel from dirt and other debris. Also, the air moving through the assembly 40 advantageously acts as a coolant to increase operator comfort and increase bearing and seal life.
The arrangement shown and described above has been found to reduce vibration transferred to the operator by up to 70% when compared to prior art tampers such as the tamper 20 shown in
The tube 142 forms the main body of the isolator assembly 140 and is knurled to provide a hand grip for manual operation. The tube 142 defines a hollow channel 153 that allows compressed air to pass directly through the isolator assembly 140 to the percussion mechanism 26 without significant pressure drop. The channel 153 also contains a vibration dampening piston arrangement. More specifically, a plated piston rod 154 extends into, and reciprocates in the channel 153. The upper end of the piston rod extends through a seal arrangement 152,155 enclosed in a puck 158. The lower end of the piston rod 154 extends through a bearing 156 and the aforementioned seal and wiper arrangement 170, and ultimately through the bottom end cap 146. The lower end of rod 154 is threaded and designed to connect to the percussion mechanism.
The seal arrangement 152,155 and puck 158 reside in the channel 153 in a static position so as to divide the channel 153 into upper 166 and lower 168 chambers (see
Opposing springs are provided on the piston rod 154 to provide a dampening effect on vibration emanating from the percussion mechanism 26. More specifically, an upper spring 172 and a lower spring 174 wrap around the piston rod 154 opposite a washer 178. The piston rod 154 further includes an aperture 162 for receiving pressurized air from the air compressor, as will be discussed further in detail below. When the device is not in use, the springs 172,174 act upon each other and the piston arrangement seeks an equilibrium position.
Referring to
The seal arrangement 152,155 ensures that the upper chamber 166 remains separated from the pressurized air and at a constant pressure, preferably atmospheric pressure. When the tamper 20 is operated, pneumatic forces are balanced and no “net movement” of the piston rod 154 occurs as a result of the pressure from the pressurized air. The spring rate can thus be decreased in comparison to the arrangement shown in
It is recognized that other alternatives and equivalents not mentioned, described or depicted in the attached drawings remain within the scope of the present application.
The present application claims the benefit of co-pending U.S. Provisional Application Ser. No. 60/686,639, filed Jun. 2, 2005.
Number | Name | Date | Kind |
---|---|---|---|
665391 | Chapman | Jan 1901 | A |
1481641 | Jimerson | Jan 1924 | A |
2748750 | Altschuler | Jun 1956 | A |
2875731 | Settles et al. | Mar 1959 | A |
3277801 | Horvath et al. | Oct 1966 | A |
3892280 | Klushin et al. | Jul 1975 | A |
3939923 | Aldag et al. | Feb 1976 | A |
3968843 | Shotwell | Jul 1976 | A |
4044625 | D'Haem et al. | Aug 1977 | A |
4303002 | Maslakov et al. | Dec 1981 | A |
4402369 | Nikitin et al. | Sep 1983 | A |
5050689 | Dobry et al. | Sep 1991 | A |
5327636 | Wilson | Jul 1994 | A |
5927407 | Gwinn et al. | Jul 1999 | A |
6318228 | Thompson | Nov 2001 | B1 |
6854923 | Greppmair | Feb 2005 | B2 |
Number | Date | Country |
---|---|---|
3303531 | Sep 1983 | DE |
816351 | Jul 1959 | GB |
1432504 | Apr 1976 | GB |
Number | Date | Country | |
---|---|---|---|
20060272837 A1 | Dec 2006 | US |
Number | Date | Country | |
---|---|---|---|
60686639 | Jun 2005 | US |