3

1

 

Setup And

 

Adjustment

2

 

Figure 1

NOTE: This Operator’s Manual covers several models. Snow thrower features vary by model. Not all features discussed in this manual are applicable to all snow thrower models.

NOTE: All references to left or right side of the snow thrower is from the operating position only

Contents of Carton

Carton contents are listed below with part numbers in parentheses.

1.Two Ignition Keys (725-0201)

2.2.6 oz Bottle of 2 Cycle Oil (737-04037)

3.Extension Cord (if so equipped) (629-0236)

WARNING: Disconnect the spark plug wire and ground it against the engine to prevent unintended starting.

Positioning the Upper Handle

NOTE:

This Operator’s Manual covers several models. Snow thrower features vary by model. Not all features discussed in this manual are applicable to all snow thrower models.

NOTE:

All references to left or right side of the snow thrower is from the operating position only.

IMPORTANT: Do not use the chute handle to lift the snow thrower.

2

3

1

Figure 2

Chute Handle

Figure 3

1.Remove packing material, if present.

2.Making sure not to pinch the cable in the process, pivot the upper handle into the operating position as illustrated in Figure 1 until it clicks into place.

3.Tighten the wing knobs to secure the handle in place as in Figure 1.

Assembling the Discharge Chute

For shipping reasons, the snow thrower has been packaged with the upper chute pivoted all the way down. To pivot it upward, proceed as follows:

1.Turn the chute until the chute opening is facing straight ahead. Remove the wing knob, flat washer and carriage bolt from the lower chute. See Figure 2.

2.Pivot the upper chute upward over the lip on the lower chute so that there is NO gap between the upper chute and the lower chute.

3.Resecure with the hardware just removed. If installed correctly, your snow thrower should look like Figure 3.

IMPORTANT: Do not use the chute handle to lift the snow thrower.

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MTD S235 warranty Contents of Carton, Positioning the Upper Handle, Assembling the Discharge Chute

235, S235 specifications

MTD S235,235 is a multifaceted technology designed to streamline various processes in manufacturing and production, particularly in the metalworking industry. At its core, MTD stands for Material Technology Development, with S235,235 highlighting its specific application within a range of structural steel grades and alloy compositions. This innovative technology focuses on enhancing the properties and performance of metal materials, making them more suitable for diverse applications.

One of the primary features of MTD S235,235 is its ability to significantly improve the mechanical properties of steel. The technology applies advanced alloying techniques, which enable the steel to achieve high tensile strength and enhanced toughness. This is crucial for applications that require materials to withstand demanding conditions, such as construction, automotive, and aerospace industries. Enhanced mechanical properties also contribute to a reduction in material usage, ultimately leading to cost savings and a minimized environmental impact.

Incorporating cutting-edge technologies, MTD S235,235 utilizes computational modeling and simulation to predict the behavior of materials under various conditions. This predictive capability allows manufacturers to optimize processes and tailor the characteristics of steel to meet specific requirements. For example, heat treatments and surface treatments are adjusted based on these simulations, resulting in improved durability and resistance to corrosion.

Another significant characteristic of MTD S235,235 is its versatility. This technology can be adapted for use in a range of applications, from lightweight structures to heavy machinery components. The alloy's flexibility in its mechanical properties enables it to be utilized in dynamic environments where both strength and adaptability are needed.

Furthermore, MTD S235,235 promotes sustainability in the manufacturing sector. By enhancing the longevity and performance of steel components, this technology reduces waste and the need for frequent replacements. Additionally, the efficient use of materials reduces the overall carbon footprint of production processes.

In conclusion, MTD S235,235 represents a significant advancement in material technology, offering improved mechanical properties, predictive modeling capabilities, and versatility across applications. This innovative approach promotes both efficiency and sustainability, making it a valuable asset in modern manufacturing and metalworking industries. As technology continues to evolve, MTD S235,235 stands at the forefront of enhancing material performance and fostering responsible production practices.