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GEAR HOBBING PROCESS

 Introduction :-

The process of gear hobbing is one of generation. The word "generating" alludes to the fact that the gear tooth form cut is not the same as the hob, which is the conjugate form of the cutting tool. Both the hob and the workpiece rotate in a continuous rotating interaction during hobbing. The hob is normally fed axially during this rotation, with all of the teeth eventually created as the tool passes the work face. (Fig. 1a.)

When cutting a spur gear with a single start hob, the workpiece advances one tooth for each cutter revolution. The hob will rotate twenty times whereas the workpiece will only rotate once when hobbing a twenty-tooth gear. The profile is created by cutting edges that are evenly distributed around the hob and take multiple cuts on the workpiece, each in a slightly different position for each cut (Fig. 1b). Several cutting edges of the tool will be cutting at the same time.


Figure 1 a & b

Figure References : https://www.geartechnology.com/

To produce these cutting edges, the hob is essentially a worm with gashes cut axially across it. To give chip clearance behind the cutting edge, each cutting tooth is also eased radially. The hob face can also be sharpened while maintaining the original tooth form. A number of flats blend together to generate the tooth's ultimate profile. The number of flats relates to the number of cutting gashes that pass during a single rotation of the workpiece teeth. As a result, the higher the number of gashes in the hob, the more flats along the profile, which increases the tooth profile's "smoothness."


The Cutter :-

Hobbing is a generating operation, which means that the hob will not cut the same shape as the cutting tool. A hob with straight-sided cutting edges produces an unaltered involute gear tooth. The most common application of hobbing is involute gear cutting (Fig. 2). A hob with curved cutting edges, on the other hand, produces a straight-sided spline tooth.

Figure 2 – Cutter

Figure References : https://www.geartechnology.com/


Cutter Modifications :-

To create changed tooth shapes, you can design the shape of a cutting tool. This is done for a variety of reasons. The hob tooth root can be designed to cut the gear tooth's outside diameter. The tooth involute and the outside diameter of the blank will be hobbed in one operation using this "topping" hob (Fig. 3). Finish turning of the gear blank may be eliminated, resulting in fewer machine operations.

The gear's outside diameter will be concentric with the gear's working pitch diameter. This will serve as a locating surface for following operations as well as a measurement method.

 
Figure 3 & 4
Figure References : https://www.geartechnology.com/

With a "semi-topping" or "tip chamfering" hob, sharp edges between the tooth flank and outside diameter can be removed (Fig. 4). A hob like this could potentially solve the problem of gear tooth bending under load if it's designed correctly.

Gears that will be completed later, for as by skiving, shaving, or grinding, may need clearance in the gear tooth fillet area for the finishing tool. A "protuberance" hob can be used to cut this, resulting in an undercut (Fig. 5). The protuberance hob is used to create a consistent stock for the finishing tool and to combine the hobbed root area and the finished flank. 

Figure 5

Figure References : https://www.geartechnology.com/


Gear Cutting :-

To transmit torque, a gear is a spinning machine part with cut teeth that mesh with another toothed element. Gear is made from a spherical blank with teeth running around the outside. Cutting gear is a specialised task. Any machining operation that creates a gear is known as gear cutting. Hobbing , broaching, milling, and grinding are the most popular gear-cutting techniques. Forging, extrusion, investment casting, and sand casting are examples of forming techniques that can be used after or instead of cutting procedures.

 

Construction Of Gear Hobbing Machine :-

1) The gear blank is rolled with a spinning cutter called a hob in this procedure. Gear hobbing is accomplished with the aid of a multipoint cutting instrument known as a gear hob. It resembles a worm gear with a ring of straight flutes running parallel to its axis around its periphery. These flutes are created with correct angles so that they can function as cutting edges.

2) In a gear hobbing procedure, the hob is turned at a sufficient rpm while the gear blank is simultaneously fed.

3) The gear blank is continuously spinning as well. The rpm of both the gear blank and the gear hob are synced to the point where each revolution of the gear bob causes the gear blank to revolve by one pitch distance of the gear to be cut.

4) The motion of the gear blank and hob is kept constant and consistent. Figure depicts a gear hob, whereas Figure depicts the process of gear hobbing (Fig. 6).

5) The hob teeth have a defined helix angle and behave like screw threads. The hob is tilted to a helix angle during operation to keep the cutting edges square with the gear blank.

6) Gear hobbing is used to create a wide range of gears, including spur gears, helical gears, hearing-bone gears, splines, and gear sprockets, among others.



Figure 6 – Process of Gear Hobbing

Figure References :- https://learnmech.com/wp-content/uploads/2017/06/howgearhobbingprocessworks.png


Working Of Gear Hobbing :-

• Gear hobbing is a producing method that involves rotating the gear blank and a cutter called a hob at the same time while maintaining a fixed gearing ratio between the hob and the gear blank. The gear blank is fed into the rotating hob in this procedure until the appropriate depth is obtained. The hob is fed across the blank's face until all of the teeth have been completed.

• The hob teeth are placed parallel to the blank's rotating axis while hobbing spur gear. The axis of the hob is set over an angle to provide the suitable helix for helical teeth bobbing. Worm gears, on the other hand, are made with the hob's axis placed at a right angle to the gear blank.

• In most cases, two methods are used in the hobbing process -

1) Conventional Hobbing

2) Climbing Hobbing



• When compared to other gear-making techniques, the rate of output is fairly high. The procedure can be used to make spur, helical, worm, sprocket, and spline gears, among other things. Cutting up to the shoulder is not possible with the rotary cutter.

• The functioning concept of the gear hobbing process is depicted in the diagram below.



Figure 7 - Gear hobbing process: (A) schematic representation; (B) actual photograph.

Figure References : https://www.sciencedirect.com/topics/engineering/gear-blank


Gear Hobbing Parameters:-

In the operation of gear hobbing, three critical parameters must be controlled: indexing movement, feed rate, and the angle between the axis of the gear blank and the gear hobbing tool (gear hob).

 

Hobbing Process Types:-

Gear hobbing is divided into distinct types based on the direction in which the hob is fed for gear cutting. The classification is described in the following paragraphs.

1. Using Axial Feed in Hobbing

In axial hobbing, the gear blank is first brought toward the hob to obtain the necessary tooth depth, and then the rotating hob is fed parallel to the gear blank's axis. This is how spur and helical gears are machined.

2. Using Radial Feeding in Hobbing

The hob and gear blanks are placed with their axes parallel to each other in this way. The rotating hob is fed against the gear blank in a radial or perpendicular direction to the gear blank's axis. Worm wheels are made using this process.

3. Hobbing with Tangential Feed

The worm wheel's teeth are also cut with this tool. The hob is held with its axis horizontal but at a right angle to the blank's axis in this scenario. The hob is set to the entire depth of the tooth and then fed axially forward. The hob is fed tangentially to the gear blank's face.



The Benefits and Drawbacks of the Gear Hobbing Process -

The following are some of the benefits of the gear hobbing process:-

(a) Because gear hobbing is a quick and continuous process, it is more cost effective than alternative gear generation methods.

(b) A shorter production cycle time, resulting in a higher production rate.

(c) When compared to other gear machining methods, the procedure has a higher variability in the following of sense.

  1. Capable of producing a wide range of gears, including spur gears, helical gears, worms, splines, and sprockets, among others.
  2. The required indexing (called such) method is fairly simple, and the module is capable of producing any number of teeth with consistent accuracy.
  3.  Gear hobbing is used specifically to create a special form of gear known as herringbone gear cam.
  4. This technique can handle a wide range of batch sizes (from tiny to huge volume).

(d) Several gear blanks can be machined at the same time if they are installed on the same arbour.

(e) A hob is a multipoint cutting tool with multiple cutting teeth or edges. Because only a few cutting edges are active at a time, there is plenty of time to dissipate the created heat. There is no cutting tool or overheating.

 

Gear Hobbing Machine Drawbacks :- 

1. It isn't used to make internal gears.

2. Restricted adjacent shoulders that are greater than the gear's root diameter.

3. Hobbing is not suitable for splines or serrations.


Gear hobbing's uses include:-

1 ) It's commonly used to make spur and helical gears, as well as worms and worm wheels.

  

Figure 8 – Spur gear , Helical gear , Worm gear

2 ) It can also be used to make internal gears, which requires the machine to have the ability to fit a particular head.




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Blog Published by :-

1) Aayush Surawar ; Mechanical Engineering Department , VIT Pune.

2) Samarth Takbhate ; Mechanical Engineering Department , VIT Pune.

3) Devashish Tambade ; Mechanical Engineering Department , VIT Pune.

4) Umesh Wanare ; Mechanical Engineering Department , VIT Pune.

5) Viren Wanekar ; Mechanical Engineering Department , VIT Pune.


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