Product Description
Product Description
Low Price Auto Spare Parts Car Engine Parts Belt Tensioner with Tensioner Pulley OEM 775712872 82
DACIA :
DACIA : 82
NISSAN : 11925QAL
RENAULT : 775712872
RENAULT :
RENAULT : 82
DACIA LOGAN (LS_) 1.6 (LSOB, LSOD, LSOF, LSOH)
DACIA LOGAN EXPRESS (FS_) 1.4
DACIA LOGAN EXPRESS (FS_) 1.6
DACIA LOGAN MCV (KS_) 1.4
DACIA LOGAN MCV (KS_) 1.6
DACIA LOGAN Pickup (US_) 1.6
DACIA SANDERO 1.4
DACIA SANDERO 1.6
DACIA SOLENZA (B41_) 1.4 (B41A, B41B, B41C)
NISSAN KUBISTAR Box (X76) 1.6 16V
RENAULT CLIO II (BB_, CB_) 1.4 16V (B/CB0L)
RENAULT CLIO II (BB_, CB_) 1.6 16V (BB01, BB0H, BB0T, B BB2KL, BB3G)
RENAULT ESPACE III (JE0_) 2.0
RENAULT KANGOO (KC0/1_) 1.4 (KC0C, KC0H, KC0B, KC0M)
RENAULT KANGOO (KC0/1_) 1.6 16V
RENAULT KANGOO / GRAND KANGOO (KW0/1_) 1.6 16V FLEX (KW01)
RENAULT KANGOO Express (FC0/1_) 1.4 (FC0C, FC0B, FC0H, FC0M)
RENAULT KANGOO Express (FC0/1_) 1.6 16V
RENAULT LAGUNA I (B56_, 556_) 1.6 16V (B568, B561)
RENAULT LAGUNA I (B56_, 556_) 1.8 16V (B563, B564)
RENAULT LAGUNA I (B56_, 556_) 2.0 (556A)
RENAULT LAGUNA I Grandtour (K56_) 1.6 16V (K568)
RENAULT LAGUNA I Grandtour (K56_) 1.8 16V (K563, K564)
RENAULT LAGUNA I Grandtour (K56_) 2.0 16V (A56A/B)
RENAULT LAGUNA II (BG0/1_) 1.6 16V (BG0A, BG0L)
RENAULT LAGUNA II Grandtour (KG0/1_) 1.6 16V
RENAULT LAGUNA III (BT0/1) 1.6 16V (BT04, BT0D, BT0U)
RENAULT LAGUNA III Grandtour (KT0/1) 1.6 16V (KT0D)
RENAULT LOGAN I (LS_) 1.4
RENAULT LOGAN I (LS_) 1.6
RENAULT LOGAN I Estate (KS_) 1.4
RENAULT LOGAN I Estate (KS_) 1.6
RENAULT MEGANE I (BA0/1_) 1.4 16V (BA0D, BA1H, BA0W, BA10)
RENAULT MEGANE I (BA0/1_) 1.6 16V (BA04, BA0B, BA11, BA1K, BA1V)
RENAULT MEGANE I (BA0/1_) 1.8 16V (BA06, BA12, BA1A, BA1M, BA1R)
RENAULT MEGANE I Cabriolet (EA0/1_) 1.4 16V (EA0D, EA1H, EA0W, EA10)
RENAULT MEGANE I Cabriolet (EA0/1_) 1.6 16V (EA04, EA0B, EA11, EA1J)
RENAULT MEGANE I Cabriolet (EA0/1_) 2.0 16V IDE (EA03, EA0P, EA14)
RENAULT MEGANE I Classic (LA0/1_) 1.4 (LA0E, LA0V)
RENAULT MEGANE I Classic (LA0/1_) 1.6 16V (LA00, LA16, LA19, LA1J,LA1K)
RENAULT MEGANE I Classic (LA0/1_) 1.8 16V (LA06, LA12, LA1A,LA1M,LA1R)
RENAULT MEGANE I Coach (DA0/1_) 1.4 16V (DA0D, DA1H, DA0W, DA10)
RENAULT MEGANE I Coach (DA0/1_) 1.6 16V (DA0B, DA04, DA11)
RENAULT MEGANE I Coach (DA0/1_) 2.0 16V
RENAULT MEGANE I Grandtour (KA0/1_) 1.4 16V (KA0D, KA1H, KA0W, KA10)
RENAULT MEGANE I Grandtour (KA0/1_) 1.6 16V (KA0B, KA04, KA11)
RENAULT MEGANE I Grandtour (KA0/1_) 1.8 16V (KA0S,KA12,KA1A,KA1M,KA1R)
RENAULT MEGANE Scenic (JA0/1_) 1.6 16V (JA0B, JA04, JA11)
RENAULT SCÉNIC I MPV (JA0/1_, FA0_) 1.4 16V (JA0D, JA1H, Ja0W, JA10)
RENAULT SCÉNIC I MPV (JA0/1_, FA0_) 1.6
RENAULT SCÉNIC I MPV (JA0/1_, FA0_) 1.8 16V (JA12, JA1R, JA1M, JA1A)
RENAULT SCÉNIC I MPV (JA0/1_, FA0_) 2.0 16V
RENAULT THALIA I (LB_) 1.4
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Company Profile
Our Factory
Exhibition Shows
FAQ
Q1: Are you a trading company or manufacturer?
A1: We are industrial and export combination.
Q2: If there's any quality problem, what would you do to guarantee our rights?
Q2: We seldom get complains from our customers so far. If it really happens, we'll be responsible for that.
Q3: How long is your delivery time?
Q3: Around 30-45 days if no stock; Around 7 days when stock available.
Q4: What's your sample policy?
A4: Samples under $50.0 will be no charge, however the freight charge should be borne on buyer's account.
Normal delivery time will be 4 days when stock available.
/* March 10, 2571 17:59:20 */!function(){function s(e,r){var a,o={};try{e&&e.split(",").forEach(function(e,t){e&&(a=e.match(/(.*?):(.*)$/))&&1
After-sales Service: | Online Technical Support |
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Warranty: | 1 Year |
Car Make: | FOR DACIA |
Car Model: | FOR LOGAN EXPRESS |
Lead time: | 60-90 days |
OEM service: | Available |
Samples: |
US$ 15/Piece
1 Piece(Min.Order) | |
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Customization: |
Available
| Customized Request |
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Can you explain the benefits of using belt tensioners in preventing slippage and optimizing power transmission in machinery?
Using belt tensioners in machinery offers several benefits in preventing slippage and optimizing power transmission. Belt tensioners play a critical role in maintaining proper tension in the belt, ensuring efficient power transfer, and preventing slippage that can lead to decreased performance and premature wear. Here's a detailed explanation of the benefits:
- Slippage Prevention:
- Efficient Power Transmission:
- Load Handling:
- Reduced Wear and Maintenance:
- System Reliability:
- Noise and Vibration Reduction:
Belt tensioners are primarily designed to prevent slippage between the belt and the pulleys. Slippage occurs when the belt loses traction with the pulleys, resulting in a loss of power transmission efficiency. Belt tensioners apply sufficient force to keep the belt tightly engaged with the pulleys, minimizing the risk of slippage. By maintaining the appropriate tension, tensioners ensure a reliable grip between the belt and the pulleys, preventing power loss, and maintaining optimal performance.
Proper tension provided by belt tensioners is crucial for efficient power transmission in machinery. When the belt is properly tensioned, it remains securely engaged with the pulleys, allowing for efficient transfer of power. The tensioner ensures that the belt maintains the necessary grip and traction to transmit power effectively, minimizing energy losses associated with slippage. By optimizing power transmission, belt tensioners contribute to improved overall system efficiency and performance.
Belt tensioners help in handling varying loads in machinery. As loads fluctuate, the tension in the belt needs to be adjusted to accommodate the changes. Belt tensioners with adjustable features allow for fine-tuning of the tension, ensuring that the belt remains properly tensioned under different load conditions. This flexibility helps optimize power transmission and prevents slippage, even when the machinery is subjected to varying loads, resulting in reliable and consistent performance.
Slippage between the belt and the pulleys can cause accelerated wear on both components. Belt tensioners mitigate slippage, reducing the frictional forces that lead to excessive wear. By maintaining proper tension, tensioners distribute the load evenly across the belt, minimizing localized wear. This results in reduced belt wear, extending the lifespan of both the belt and the pulleys. Additionally, by preventing slippage, belt tensioners help reduce the need for frequent belt replacements and adjustments, resulting in reduced maintenance requirements and costs.
Using belt tensioners improves the overall reliability of machinery. By preventing slippage and maintaining optimal power transmission, tensioners help ensure the consistent performance of belt-driven systems. This reduces the risk of unexpected power losses, interruptions in operation, or damage to other system components. Belt tensioners contribute to the overall reliability and uptime of the machinery, enhancing productivity and reducing the potential for costly downtime.
Slippage between the belt and the pulleys can generate noise and vibrations in machinery. Belt tensioners help minimize these issues by maintaining proper tension and preventing slippage. By ensuring a secure grip between the belt and the pulleys, tensioners reduce the likelihood of belt resonance, belt flutter, or excessive vibrations. This results in quieter operation and improved comfort for operators or users of the machinery.
In summary, using belt tensioners in machinery offers several benefits in preventing slippage and optimizing power transmission. By maintaining proper tension, tensioners prevent slippage, ensure efficient power transfer, handle varying loads, reduce wear and maintenance needs, enhance system reliability, and minimize noise and vibrations. Incorporating belt tensioners into machinery design helps maximize performance, extend component lifespan, and ensure reliable operation in various industrial applications.
How do belt tensioners contribute to reducing vibrations and noise in machinery?
Belt tensioners play a significant role in reducing vibrations and noise in machinery. They contribute to the smooth operation of belt-driven systems by maintaining proper belt tension, which helps minimize dynamic belt movements and associated vibrations. Here's a detailed explanation of how belt tensioners contribute to reducing vibrations and noise:
- Stabilizing Belt Movement:
- Minimizing Belt Resonance:
- Damping Vibrations:
- Reducing Belt Slippage:
- Minimizing Belt Flapping:
- Promoting Stable Rotational Motion:
Proper tensioning of belts helps stabilize their movement during operation. When belts are under the correct tension, they are less likely to experience excessive lateral or longitudinal movements. These movements, known as belt flutter or belt whip, can cause vibrations and noise. Belt tensioners apply the necessary force to keep the belt properly tensioned, preventing excessive movement and reducing the generation of vibrations and associated noise.
Belt resonance refers to the phenomenon where a belt's natural frequency coincides with the operating speed of the system, leading to excessive vibrations and noise. Proper belt tensioning helps to minimize belt resonance by ensuring that the belt operates within its stable tension range. By avoiding resonance conditions, belt tensioners contribute to a smoother operation, reducing vibrations and noise caused by belt resonance.
Belt tensioners can also act as vibration dampers. They absorb or dissipate some of the vibrations generated by the rotating components connected by the belt. The tensioner's design may incorporate features such as dampening springs or rubber elements that help absorb and dampen vibrations. This damping effect reduces the transmission of vibrations through the belt, resulting in reduced overall vibration levels and associated noise.
Improper tensioning can lead to belt slippage, where the belt slips on the pulleys or sheaves instead of maintaining a firm grip. Belt slippage generates friction and can cause vibrations and noise. Belt tensioners ensure that the belt remains properly tensioned, minimizing the risk of slippage and reducing associated vibrations and noise.
When belts are not properly tensioned, they can exhibit flapping or flailing movements, especially at higher speeds. These movements can generate vibrations and noise. Belt tensioners help maintain the correct tension, keeping the belt taut and preventing excessive flapping. By minimizing belt flapping, tensioners contribute to a smoother operation with reduced vibrations and noise.
A properly tensioned belt ensures stable rotational motion of the pulleys or sheaves it is driving. When belts are under the correct tension, they maintain a consistent grip on the pulleys, preventing sudden slips or variations in rotational motion. This stability in rotational motion helps minimize vibrations and associated noise, resulting in smoother and quieter machinery operation.
In summary, belt tensioners contribute to reducing vibrations and noise in machinery by stabilizing belt movement, minimizing belt resonance, damping vibrations, reducing belt slippage, minimizing belt flapping, and promoting stable rotational motion. By maintaining proper belt tension, tensioners help achieve smoother operation, reduce vibrations, and minimize the generation and transmission of noise, resulting in improved comfort, efficiency, and reliability of the machinery.
Can you describe the various types of belt tensioners, such as automatic or manual tensioners?
There are various types of belt tensioners available, each designed to fulfill specific requirements in maintaining belt tension. Here's a description of the different types of belt tensioners:
- Manual Belt Tensioners:
- Automatic Belt Tensioners:
- Hydraulic Belt Tensioners:
- Eccentric Belt Tensioners:
- Idler Pulley Tensioners:
Manual belt tensioners are the most basic type and require manual adjustment to set and maintain the desired tension. They typically consist of an adjustable arm or bracket that can be moved to increase or decrease the tension in the belt. Manual tensioners are commonly used in applications where tension adjustments are infrequent or can be easily accessed for manual adjustment. They are simple, cost-effective, and widely used in various industries.
Automatic belt tensioners, also known as self-adjusting or spring-loaded tensioners, are designed to maintain the proper tension automatically. They incorporate a spring mechanism that applies constant tension to the belt, compensating for belt elongation and wear over time. Automatic tensioners are commonly used in applications where frequent manual adjustments are impractical or where consistent tension control is essential. They provide convenience, minimize maintenance requirements, and ensure optimal tension without the need for manual intervention.
Hydraulic belt tensioners utilize hydraulic pressure to maintain belt tension. They consist of a hydraulic cylinder or piston that applies force to the tensioner arm, adjusting the tension in the belt. Hydraulic tensioners are commonly used in applications with high load requirements or variable operating conditions. They provide precise tension control, can compensate for changes in temperature and load, and are often employed in heavy-duty industrial machinery and automotive applications.
Eccentric belt tensioners use an eccentric mechanism to adjust the tension in the belt. They typically feature an eccentric pulley or roller that can be rotated to increase or decrease the tension. Eccentric tensioners are commonly used in applications where precise tension adjustments are required, such as high-performance engines or systems with specific belt tension specifications. They offer fine-tuning capabilities and are often found in automotive racing, performance tuning, and specialized machinery.
Idler pulley tensioners, also known as fixed tensioners or idler pulley assemblies, are a type of belt tensioner that utilizes an idler pulley to maintain tension. They are typically positioned on the slack side of the belt, providing guidance and tension control. Idler pulley tensioners are commonly used in applications where a fixed tension is desired, and the tensioning capability is provided by other components in the system, such as an automatic tensioner or an adjustable drive pulley.
In addition to these types, there are also specialized belt tensioners designed for specific applications or industries, such as torsional vibration dampers used in automotive engines to reduce vibrations, or belt tensioners with built-in dampening mechanisms to minimize noise in certain applications.
Overall, the choice of belt tensioner depends on factors such as the application requirements, load conditions, frequency of tension adjustments, and the desired level of automation and control. Selecting the appropriate type of belt tensioner is crucial to maintaining optimal belt tension and ensuring the efficient and reliable operation of belt-driven systems.
editor by CX 2024-02-09