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Selection and integration guide for Bonfiglioli R3 series planetary gearboxes in primary crushing equipment

F: | Au:FANS | DA:2026-09-08 | 77 Br: | 🔊 点击朗读正文 ❚❚ | Share:

Selection and integration guide for Bonfiglioli R3 series planetary gearboxes in primary crushing equipment

In the field of solid waste recycling and treatment, primary crushing is the "first checkpoint" of the entire process flow. Whether it is household waste, industrial waste, electronic waste, or biomass raw materials, primary crushers need to face extremely uneven material sizes, high-strength impact loads, and harsh operating conditions for continuous operation. In this application scenario, the reliability and adaptability of the driving system directly determine the operating rate and economic benefits of the entire recycling production line.

The Bonfiglioli R3 series planetary gearbox is designed for this challenge. Unlike standard industrial reducers, the R3 series is designed to meet the unique requirements of "fragmentation scenarios": high torque density, strong impact resistance, flexible interface customization, and compatibility with multi-source power inputs. This article will provide equipment designers and maintenance engineers with a deep technical interpretation of the selection and use of the R3 series in primary crushing applications from the perspectives of technology selection and engineering integration.



Understand the product positioning and technical architecture of the R3 series

Why does primary crushing require a dedicated gearbox?

The core work of a primary crusher is to preliminarily reduce the volume of materials that are large, irregular, or may contain metal impurities through shearing, tearing, or squeezing. During this process, the gearbox is not subjected to smooth rotational loads, but rather frequent impact loads and instantaneous overloads. When facing such working conditions, ordinary industrial gearboxes are prone to pitting or tooth breakage on the gear teeth, and bearings may also fail early due to severe vibration.

The design origin of the R3 series is precisely aimed at this "atypical" transmission requirement. It adopts a planetary gear train architecture and has the following inherent advantages that are highly compatible with primary crushing conditions:

Multi tooth simultaneous meshing: In planetary transmission, power is divided into multiple planetary gears, which significantly reduces the load borne by a single pair of gears and increases the impact resistance margin.

Coaxial compactness: The input and output are coaxial, making it easy to achieve a compact layout in situations where the space of the crusher spindle is limited.

High rigidity box design: It can effectively resist the radial reaction force and bending moment generated during the crushing process.

1.2 Core Technical Parameters of R3 Series

According to the Bonfiglioli technical manual, the key technical indicators of the R3 series are as follows:

Parameter item specification range engineering significance

Gear ratio (i) 56-117 is suitable for low-speed and high torque crushing spindle direct drive or near direct drive schemes

Output shaft form: clover solid shaft/spline output shaft compatible with different connection methods of crushing rotors or tool holders

Input interface hydraulic motor adapter/IEC motor flange (customized) supports two power sources: hydraulic drive or motor drive

Multiple installation methods and optional installation positions to adapt to different crusher frame layouts

Option configuration includes synchronous gear/plug-in output flange/C5 anti-corrosion surface treatment to meet special working conditions and durability requirements


Core logic of selection: from working condition parameters to model determination

The selection of R3 series is different from the "torque power" two-dimensional lookup table of standard reducers, and requires multidimensional evaluation based on the special characteristics of the crushing process. The following provides a complete selection framework for engineers.

Step 1: Determine the output torque demand (Mr2)

The required output torque of the crusher is the starting point for selection. This parameter is usually estimated by the following formula:

Mr two=shrednine thousand five hundred and fifty two

Mr twotwo shred⋅9550 among which

shred To determine the effective power (kW) required for crushing, it is necessary to consider material hardness, tool geometry, and feed particle size distribution.

two To achieve the target speed (min ⁻¹) for crushing the spindle, the primary crushing speed is usually low, typically within the range of 20-80 min ⁻¹.

The R3 series covers a wide range of output torque, but the manual clearly states that its selection needs to be based on dual verification of rated torque and peak impact torque. For primary crushing applications, it is recommended to multiply the calculated torque by a safety factor of 1.5-2.0 to cover unforeseeable overloads.

Step 2: Verify the gear ratio and input speed

The speed ratio range of the R3 series is i=56-117, which means that when the input speed of the hydraulic motor is 1800-2500 min ⁻¹, the output speed can be reduced to the range of 15-45 min ⁻¹, perfectly matching the low-speed and high torque requirements of the primary crushing rotor.

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