China AC Reversible Gear Motor, AC Gear Motor 60mm 10W 220V gear box

Item Description

Specifications of Motor
Motor Kind Motor Design No. Description Ranking Commence Condenser Gear Model No.
Cylindncal
Output Shaft
Pinion Cut
Output Shaft
Power Peripheral Wave No. Valtage Recent Commence Turning Minute Turning Second Revolving No. Ability Resistance Voltage Pairing Bearing Center Equipment
( W ) ( Hz ) ( V ) ( A ) ( gcm ) ( gcm ) ( rpm ) ( uF ) ( V )
Rerersible Motor
 
2RK4A-A 2RK4GN-A 4 50 110 .20 390 325 1200 three 250 2GN-K 2GN10X
sixty one hundred ten .eighteen 325 270 1450 2.five
2RK4A-C 2RK4GN-C 50 220 .ten 390 325 1200 .8 500 2GN-K 2GN10X
sixty 220 .09 325 270 1450 .seven
2RK6A-A 2RK6GN-A 6 fifty one hundred ten .24 600 487 1200 three 250 2GN-K 2GN10X
60 110 .22 500 400 1450 two.five
2RK6A-C 2RK6GN-C 50 220 .twelve 600 487 1200 .8 500 2GN-K 2GN10X
sixty 220 .30 500 400 1450 .seven
2RK10A-A 2RK10GN-A 10 fifty 110 .27 950 812 1200 four 250 2GN-K 2GN10X
sixty 110 .fifteen 800 670 1450 3
2RK10A-C 2RK 10GN-C 50 220 .one hundred thirty five 950 812 1200 1 500 2GN-K 2GN10X
sixty 220 .twenty 800 670 1450 .8
Induction Motor 2IK4A-A 2IK4GN-A 4 50 110 .twenty 390 325 1200 three 250 2GN-K 2GN10X
60 one hundred ten .18 325 270 1450 two.5
2IK4A-C 2IK4GN-C 50 220 .10 390 325 1200 .eight 500 2GN-K 2GN10X
sixty 220 .09 325 270 1450 .seven
2IK6A-A 21K6GN-A 6 50 a hundred and ten .24 600 487 1200 3 250 2GN-K 2GN10X
60 one hundred ten .22 500 400 1450 2.five
2IK6A-C 2IK6GN-C fifty 220 .12 600 487 1200 .8 500 2GN-K 2GN10X
sixty 220 .30 500 400 1450 .7
21K10A-A 2IK10GN-A 10 50 one hundred ten .27 950 812 1200 4 250 2GN-K 2GN10X
sixty a hundred and ten .15 800 670 1450 three
2IK10A-C 2IK10GN-C 50 220 .a hundred thirty five 950 812 1200 one 500 2GN-K 2GN10X
sixty 220 .20 800 670 1450 .eight
External Dimension
Sort Reduction Ratio L1(mm) L2(mm) L3(mm)
2IK(RK)4A(GN) 1:3 ~ 1:20 62 32 94
2IK(RK)6A(GN) 75 32 107
2IK(RK)10A(GN) 75 32 107
2IK(RK)4A(GN) 1:25 ~ 1:180 62 40 102
2IK(RK)6A(GN) 75 40 115
2IK(RK)10A(GN) 75 40 115
Gear Head-Torque Table (kg.cm) 
 ( kg.cm x 9.8 ÷ 100 ) = N.m
 r/min 500 300 two hundred one hundred fifty one hundred twenty 100 seventy five sixty 50 thirty twenty 15 ten 7.5 six five three
Gear Redcution Ratio 50Hz three five 7.five ten 12.five fifteen twenty 25 30 fifty seventy five 100 one hundred fifty 200 250 three hundred 500
60Hz three.6 6 9   fifteen eighteen   30 36 60 90 one hundred twenty 180   300 360 600
Permissible Load 4W kg.cm .sixty six 1.one one.7 two.2 two.seven three.3 4.four 5.4 6.five ten.seven 15 twenty 25 25 25 twenty five twenty five
6W kg.cm one one.6 2.five 3.three 4.one five 6.6 eight.one 9.7 sixteen 23 25 twenty five twenty five 25 25 25
10W kg.cm one.7 2.seven four.two five.five six.8 8.three eleven 13.five sixteen twenty five 25 twenty five 25 twenty five twenty five 25 twenty five
Observe: Pace figures are primarily based on synchronous velocity, the true output speed, under rated torque problems, is about 10~twenty% significantly less than synchronous speed.
Gray history implies: output shaft of geared motor rotates in the same course as output shaft of motor
White qualifications implies: rotation in the reverse route

Taibang Motor Industrial Team Co., Ltd. is a specialist company which mixed with sequence equipment transmission products of layout, manufacture, and sale marketing.
occupied much more than 30,000 square meters, had a lot more than one thousand staff, and far more than two hundred sets of sophisticated equipment,
operated strictly according to ISO9000 Good quality management program.
• offer you with a lot more than just large-efficiency goods, a lot more market users customized package of application solutions,
• based mostly on company concerns, to give consumers with the most suitable merchandise, the most ideal remedy.
• Lead customer innovation through the products and service, aid the consumer realize the highest reward.
• 1995: CZPT Business and the Ministry of Aerospace, Peking University,
               and scientific research professionals jointly recognized a micro-micro motor manufacturing organization
• 2000: CZPT set up a branch in HangZhou, ZHangZhoug
• 2005: ZHangZhoug CZPT Motor Market Co., Ltd. established HangZhou ZheJiang Point out-owned Industrial Co., Ltd.
• 2012: Proven ZheJiang CZPT Automobile Co., Ltd.
• 2014: Approved the new factory web site of the second section of the HangZhou Countrywide Financial Park in ZHangZhoug Province,
               which is envisioned to be completed and set into operation in 2018
• 2018:  A new 120,000 sq. meters automated manufacturing foundation

 

Application: Industrial
Speed: Constant Speed
Number of Stator: Single-Phase
Function: Driving, Control
Casing Protection: Protection Type
Number of Poles: 4

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Customization:

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Specifications of Motor
Motor Type Motor Model No. Description Rating Start Condenser Gear Model No.
Cylindncal
Output Shaft
Pinion Cut
Output Shaft
Force Peripheral Wave No. Valtage Current Start Turning Moment Turning Moment Revolving No. Capacity Resistance Voltage Pairing Bearing Middle Gear
( W ) ( Hz ) ( V ) ( A ) ( gcm ) ( gcm ) ( rpm ) ( uF ) ( V )
Rerersible Motor
 
2RK4A-A 2RK4GN-A 4 50 110 0.20 390 325 1200 3 250 2GN-K 2GN10X
60 110 0.18 325 270 1450 2.5
2RK4A-C 2RK4GN-C 50 220 0.10 390 325 1200 0.8 500 2GN-K 2GN10X
60 220 0.09 325 270 1450 0.7
2RK6A-A 2RK6GN-A 6 50 110 0.24 600 487 1200 3 250 2GN-K 2GN10X
60 110 0.22 500 400 1450 2.5
2RK6A-C 2RK6GN-C 50 220 0.12 600 487 1200 0.8 500 2GN-K 2GN10X
60 220 0.30 500 400 1450 0.7
2RK10A-A 2RK10GN-A 10 50 110 0.27 950 812 1200 4 250 2GN-K 2GN10X
60 110 0.15 800 670 1450 3
2RK10A-C 2RK 10GN-C 50 220 0.135 950 812 1200 1 500 2GN-K 2GN10X
60 220 0.20 800 670 1450 0.8
Induction Motor 2IK4A-A 2IK4GN-A 4 50 110 0.20 390 325 1200 3 250 2GN-K 2GN10X
60 110 0.18 325 270 1450 2.5
2IK4A-C 2IK4GN-C 50 220 0.10 390 325 1200 0.8 500 2GN-K 2GN10X
60 220 0.09 325 270 1450 0.7
2IK6A-A 21K6GN-A 6 50 110 0.24 600 487 1200 3 250 2GN-K 2GN10X
60 110 0.22 500 400 1450 2.5
2IK6A-C 2IK6GN-C 50 220 0.12 600 487 1200 0.8 500 2GN-K 2GN10X
60 220 0.30 500 400 1450 0.7
21K10A-A 2IK10GN-A 10 50 110 0.27 950 812 1200 4 250 2GN-K 2GN10X
60 110 0.15 800 670 1450 3
2IK10A-C 2IK10GN-C 50 220 0.135 950 812 1200 1 500 2GN-K 2GN10X
60 220 0.20 800 670 1450 0.8
External Dimension
Type Reduction Ratio L1(mm) L2(mm) L3(mm)
2IK(RK)4A(GN) 1:3 ~ 1:20 62 32 94
2IK(RK)6A(GN) 75 32 107
2IK(RK)10A(GN) 75 32 107
2IK(RK)4A(GN) 1:25 ~ 1:180 62 40 102
2IK(RK)6A(GN) 75 40 115
2IK(RK)10A(GN) 75 40 115
Gear Head-Torque Table (kg.cm) 
 ( kg.cm x 9.8 ÷ 100 ) = N.m
 r/min 500 300 200 150 120 100 75 60 50 30 20 15 10 7.5 6 5 3
Gear Redcution Ratio 50Hz 3 5 7.5 10 12.5 15 20 25 30 50 75 100 150 200 250 300 500
60Hz 3.6 6 9   15 18   30 36 60 90 120 180   300 360 600
Permissible Load 4W kg.cm 0.66 1.1 1.7 2.2 2.7 3.3 4.4 5.4 6.5 10.7 15 20 25 25 25 25 25
6W kg.cm 1 1.6 2.5 3.3 4.1 5 6.6 8.1 9.7 16 23 25 25 25 25 25 25
10W kg.cm 1.7 2.7 4.2 5.5 6.8 8.3 11 13.5 16 25 25 25 25 25 25 25 25
Note: Speed figures are based on synchronous speed, the actual output speed, under rated torque conditions, is about 10~20% less than synchronous speed.
Grey background indicates: output shaft of geared motor rotates in the same direction as output shaft of motor
White background indicates: rotation in the opposite direction
Application: Industrial
Speed: Constant Speed
Number of Stator: Single-Phase
Function: Driving, Control
Casing Protection: Protection Type
Number of Poles: 4

###

Customization:

###

Specifications of Motor
Motor Type Motor Model No. Description Rating Start Condenser Gear Model No.
Cylindncal
Output Shaft
Pinion Cut
Output Shaft
Force Peripheral Wave No. Valtage Current Start Turning Moment Turning Moment Revolving No. Capacity Resistance Voltage Pairing Bearing Middle Gear
( W ) ( Hz ) ( V ) ( A ) ( gcm ) ( gcm ) ( rpm ) ( uF ) ( V )
Rerersible Motor
 
2RK4A-A 2RK4GN-A 4 50 110 0.20 390 325 1200 3 250 2GN-K 2GN10X
60 110 0.18 325 270 1450 2.5
2RK4A-C 2RK4GN-C 50 220 0.10 390 325 1200 0.8 500 2GN-K 2GN10X
60 220 0.09 325 270 1450 0.7
2RK6A-A 2RK6GN-A 6 50 110 0.24 600 487 1200 3 250 2GN-K 2GN10X
60 110 0.22 500 400 1450 2.5
2RK6A-C 2RK6GN-C 50 220 0.12 600 487 1200 0.8 500 2GN-K 2GN10X
60 220 0.30 500 400 1450 0.7
2RK10A-A 2RK10GN-A 10 50 110 0.27 950 812 1200 4 250 2GN-K 2GN10X
60 110 0.15 800 670 1450 3
2RK10A-C 2RK 10GN-C 50 220 0.135 950 812 1200 1 500 2GN-K 2GN10X
60 220 0.20 800 670 1450 0.8
Induction Motor 2IK4A-A 2IK4GN-A 4 50 110 0.20 390 325 1200 3 250 2GN-K 2GN10X
60 110 0.18 325 270 1450 2.5
2IK4A-C 2IK4GN-C 50 220 0.10 390 325 1200 0.8 500 2GN-K 2GN10X
60 220 0.09 325 270 1450 0.7
2IK6A-A 21K6GN-A 6 50 110 0.24 600 487 1200 3 250 2GN-K 2GN10X
60 110 0.22 500 400 1450 2.5
2IK6A-C 2IK6GN-C 50 220 0.12 600 487 1200 0.8 500 2GN-K 2GN10X
60 220 0.30 500 400 1450 0.7
21K10A-A 2IK10GN-A 10 50 110 0.27 950 812 1200 4 250 2GN-K 2GN10X
60 110 0.15 800 670 1450 3
2IK10A-C 2IK10GN-C 50 220 0.135 950 812 1200 1 500 2GN-K 2GN10X
60 220 0.20 800 670 1450 0.8
External Dimension
Type Reduction Ratio L1(mm) L2(mm) L3(mm)
2IK(RK)4A(GN) 1:3 ~ 1:20 62 32 94
2IK(RK)6A(GN) 75 32 107
2IK(RK)10A(GN) 75 32 107
2IK(RK)4A(GN) 1:25 ~ 1:180 62 40 102
2IK(RK)6A(GN) 75 40 115
2IK(RK)10A(GN) 75 40 115
Gear Head-Torque Table (kg.cm) 
 ( kg.cm x 9.8 ÷ 100 ) = N.m
 r/min 500 300 200 150 120 100 75 60 50 30 20 15 10 7.5 6 5 3
Gear Redcution Ratio 50Hz 3 5 7.5 10 12.5 15 20 25 30 50 75 100 150 200 250 300 500
60Hz 3.6 6 9   15 18   30 36 60 90 120 180   300 360 600
Permissible Load 4W kg.cm 0.66 1.1 1.7 2.2 2.7 3.3 4.4 5.4 6.5 10.7 15 20 25 25 25 25 25
6W kg.cm 1 1.6 2.5 3.3 4.1 5 6.6 8.1 9.7 16 23 25 25 25 25 25 25
10W kg.cm 1.7 2.7 4.2 5.5 6.8 8.3 11 13.5 16 25 25 25 25 25 25 25 25
Note: Speed figures are based on synchronous speed, the actual output speed, under rated torque conditions, is about 10~20% less than synchronous speed.
Grey background indicates: output shaft of geared motor rotates in the same direction as output shaft of motor
White background indicates: rotation in the opposite direction

How to Compare Different Types of Spur Gears

When comparing different types of spur gears, there are several important considerations to take into account. The main considerations include the following: Common applications, Pitch diameter, and Addendum circle. Here we will look at each of these factors in more detail. This article will help you understand what each type of spur gear can do for you. Whether you’re looking to power an electric motor or a construction machine, the right gear for the job will make the job easier and save you money in the long run.
Gear

Common applications

Among its many applications, a spur gear is widely used in airplanes, trains, and bicycles. It is also used in ball mills and crushers. Its high speed-low torque capabilities make it ideal for a variety of applications, including industrial machines. The following are some of the common uses for spur gears. Listed below are some of the most common types. While spur gears are generally quiet, they do have their limitations.
A spur gear transmission can be external or auxiliary. These units are supported by front and rear casings. They transmit drive to the accessory units, which in turn move the machine. The drive speed is typically between 5000 and 6000 rpm or 20,000 rpm for centrifugal breathers. For this reason, spur gears are typically used in large machinery. To learn more about spur gears, watch the following video.
The pitch diameter and diametral pitch of spur gears are important parameters. A diametral pitch, or ratio of teeth to pitch diameter, is important in determining the center distance between two spur gears. The center distance between two spur gears is calculated by adding the radius of each pitch circle. The addendum, or tooth profile, is the height by which a tooth projects above the pitch circle. Besides pitch, the center distance between two spur gears is measured in terms of the distance between their centers.
Another important feature of a spur gear is its low speed capability. It can produce great power even at low speeds. However, if noise control is not a priority, a helical gear is preferable. Helical gears, on the other hand, have teeth arranged in the opposite direction of the axis, making them quieter. However, when considering the noise level, a helical gear will work better in low-speed situations.

Construction

The construction of spur gear begins with the cutting of the gear blank. The gear blank is made of a pie-shaped billet and can vary in size, shape, and weight. The cutting process requires the use of dies to create the correct gear geometry. The gear blank is then fed slowly into the screw machine until it has the desired shape and size. A steel gear blank, called a spur gear billet, is used in the manufacturing process.
A spur gear consists of two parts: a centre bore and a pilot hole. The addendum is the circle that runs along the outermost points of a spur gear’s teeth. The root diameter is the diameter at the base of the tooth space. The plane tangent to the pitch surface is called the pressure angle. The total diameter of a spur gear is equal to the addendum plus the dedendum.
The pitch circle is a circle formed by a series of teeth and a diametrical division of each tooth. The pitch circle defines the distance between two meshed gears. The center distance is the distance between the gears. The pitch circle diameter is a crucial factor in determining center distances between two mating spur gears. The center distance is calculated by adding the radius of each gear’s pitch circle. The dedendum is the height of a tooth above the pitch circle.
Other considerations in the design process include the material used for construction, surface treatments, and number of teeth. In some cases, a standard off-the-shelf gear is the most appropriate choice. It will meet your application needs and be a cheaper alternative. The gear will not last for long if it is not lubricated properly. There are a number of different ways to lubricate a spur gear, including hydrodynamic journal bearings and self-contained gears.
Gear

Addendum circle

The pitch diameter and addendum circle are two important dimensions of a spur gear. These diameters are the overall diameter of the gear and the pitch circle is the circle centered around the root of the gear’s tooth spaces. The addendum factor is a function of the pitch circle and the addendum value, which is the radial distance between the top of the gear tooth and the pitch circle of the mating gear.
The pitch surface is the right-hand side of the pitch circle, while the root circle defines the space between the two gear tooth sides. The dedendum is the distance between the top of the gear tooth and the pitch circle, and the pitch diameter and addendum circle are the two radial distances between these two circles. The difference between the pitch surface and the addendum circle is known as the clearance.
The number of teeth in the spur gear must not be less than 16 when the pressure angle is twenty degrees. However, a gear with 16 teeth can still be used if its strength and contact ratio are within design limits. In addition, undercutting can be prevented by profile shifting and addendum modification. However, it is also possible to reduce the addendum length through the use of a positive correction. However, it is important to note that undercutting can happen in spur gears with a negative addendum circle.
Another important aspect of a spur gear is its meshing. Because of this, a standard spur gear will have a meshing reference circle called a Pitch Circle. The center distance, on the other hand, is the distance between the center shafts of the two gears. It is important to understand the basic terminology involved with the gear system before beginning a calculation. Despite this, it is essential to remember that it is possible to make a spur gear mesh using the same reference circle.

Pitch diameter

To determine the pitch diameter of a spur gear, the type of drive, the type of driver, and the type of driven machine should be specified. The proposed diametral pitch value is also defined. The smaller the pitch diameter, the less contact stress on the pinion and the longer the service life. Spur gears are made using simpler processes than other types of gears. The pitch diameter of a spur gear is important because it determines its pressure angle, the working depth, and the whole depth.
The ratio of the pitch diameter and the number of teeth is called the DIAMETRAL PITCH. The teeth are measured in the axial plane. The FILLET RADIUS is the curve that forms at the base of the gear tooth. The FULL DEPTH TEETH are the ones with the working depth equal to 2.000 divided by the normal diametral pitch. The hub diameter is the outside diameter of the hub. The hub projection is the distance the hub extends beyond the gear face.
A metric spur gear is typically specified with a Diametral Pitch. This is the number of teeth per inch of the pitch circle diameter. It is generally measured in inverse inches. The normal plane intersects the tooth surface at the point where the pitch is specified. In a helical gear, this line is perpendicular to the pitch cylinder. In addition, the pitch cylinder is normally normal to the helix on the outside.
The pitch diameter of a spur gear is typically specified in millimeters or inches. A keyway is a machined groove on the shaft that fits the key into the shaft’s keyway. In the normal plane, the pitch is specified in inches. Involute pitch, or diametral pitch, is the ratio of teeth per inch of diameter. While this may seem complicated, it’s an important measurement to understand the pitch of a spur gear.
gear

Material

The main advantage of a spur gear is its ability to reduce the bending stress at the tooth no matter the load. A typical spur gear has a face width of 20 mm and will fail when subjected to 3000 N. This is far more than the yield strength of the material. Here is a look at the material properties of a spur gear. Its strength depends on its material properties. To find out what spur gear material best suits your machine, follow the following steps.
The most common material used for spur gears is steel. There are different kinds of steel, including ductile iron and stainless steel. S45C steel is the most common steel and has a 0.45% carbon content. This type of steel is easily obtainable and is used for the production of helical, spur, and worm gears. Its corrosion resistance makes it a popular material for spur gears. Here are some advantages and disadvantages of steel.
A spur gear is made of metal, plastic, or a combination of these materials. The main advantage of metal spur gears is their strength to weight ratio. It is about one third lighter than steel and resists corrosion. While aluminum is more expensive than steel and stainless steel, it is also easier to machine. Its design makes it easy to customize for the application. Its versatility allows it to be used in virtually every application. So, if you have a specific need, you can easily find a spur gear that fits your needs.
The design of a spur gear greatly influences its performance. Therefore, it is vital to choose the right material and measure the exact dimensions. Apart from being important for performance, dimensional measurements are also important for quality and reliability. Hence, it is essential for professionals in the industry to be familiar with the terms used to describe the materials and parts of a gear. In addition to these, it is essential to have a good understanding of the material and the dimensional measurements of a gear to ensure that production and purchase orders are accurate.

China AC Reversible Gear Motor, AC Gear Motor 60mm 10W 220V     gear boxChina AC Reversible Gear Motor, AC Gear Motor 60mm 10W 220V     gear box
editor by czh 2023-01-05