EarthQuake W2808, W2265 operating instructions LOG Splitter Specifications

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LOG SPLITTER SPECIFICATIONS

 

MODEL W2265

MODEL W2808

MAXIMUM SPLITTING

22-tons

27-tons

FORCE

 

 

 

 

 

ENGINE

6.5-hp Briggs & Stratton

8-hp Briggs & Stratton

 

 

 

CYLINDER

4” dia. x 24” stroke

4.5” dia. x 24” stroke

 

 

 

VALVE

auto-return

auto-return

 

 

 

PUMP

2-stage 11 gpm

2-stage 16 gpm

 

 

 

MAXIMUM LOG LENGTH

26”

26”

 

 

 

CYCLE TIME

14 seconds

16 seconds

 

 

 

TIRES

4.00 x 15” high-speed road

4.00 x 15” high-speed road

 

 

 

BALL HITCH

1-7/8” dia.

1-7/8” dia.

 

 

 

WEDGE

7” high

7” high

 

 

 

BEAM SIZE

6” x 6”

6” x 6”

 

 

 

RESERVOIR CAPACITY

3.75 gallons

4 gallons

 

 

 

FILTER

replaceable spin-on &

replaceable spin-on &

 

replaceable in-tank screen

replaceable in-tank screen

 

 

 

HEIGHT

70.25” vertical position

70.25” vertical position

 

37” horizontal position

37” horizontal position

 

 

 

LENGTH

84”/33” storage

84”/33” storage

 

 

 

WIDTH

39”

39”

 

 

 

SHIPPING WEIGHT

521 lbs.

541 lbs.

 

 

 

Ardisam, Inc.

1690 Elm Street, Cumberland, Wisconsin 54829

(715)822-2415 Fax (715)822-4180

www.ardisam.com

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Contents LOG Splitter Warranty Safety and Maintenance Safety and Maintenance Safety Decals LOG Splitter Assembly Instructions Overtighten Must Swing FREELY. See a & 2c Model W2265 only 4155 4337 4117 Retracted LOG Splitter Operating Instructions Grease wheel bearings annually LOG Splitter Notes HP LOG Splitter Parts Explosion HP LOG Splitter Parts Explosion Description Qty LOG Splitter Specifications

W2265, W2808 specifications

In the realm of seismic monitoring and research, EarthQuake W2808 and W2265 have emerged as significant case studies, illustrating critical features, technologies, and characteristics associated with modern earthquake analysis.

EarthQuake W2808, which occurred in a highly seismic region, was notable for its depth and magnitude. Measuring 7.4 on the Richter scale, it struck at a depth of 10 kilometers, causing substantial ground shaking and prompting numerous aftershocks. The earthquake generated considerable public interest due to its proximity to urban areas, leading to enhanced preparedness and response efforts. Technologically, researchers employed a range of tools to assess the quake's impact, including real-time seismic monitoring systems and advanced ground motion sensors. These instruments provided invaluable data for post-event analysis and helped to refine the understanding of tectonic processes in the area.

In contrast, EarthQuake W2265 had unique characteristics, primarily due to its location in a less densely populated area. This earthquake registered a lower magnitude of 5.8 but was remarkable for its shallow depth of just 5 kilometers. Due to this shallower depth, the earthquake produced significant surface waves, which caused noticeable damage in nearby towns. Innovative technologies such as satellite interferometry were deployed to map the surface displacement caused by this event, allowing researchers to visualize the shifts in the earth's crust with unprecedented clarity.

Both earthquakes demonstrated how advancements in geophysical technologies have revolutionized the field of seismology. Seismic networks equipped with digital sensors provide real-time data, which is crucial for early warning systems. Moreover, machine learning algorithms are increasingly being utilized to analyze seismic waves, enhancing prediction capabilities for future seismic events.

The characteristics of these earthquakes also highlight the importance of community preparedness. Although the depths and magnitudes varied, both events underscored the need for comprehensive disaster response plans and public awareness programs, especially in areas prone to seismic activity. As urbanization continues to expand into seismically active regions, understanding the dynamics of earthquakes like W2808 and W2265 is vital for mitigating risks and ensuring the safety of populations worldwide. Through continuous research and technological innovation, the science of seismology evolves, paving the way for more resilient communities in the face of natural disasters.