机器人关节缓冲垫用什么材料?头部缓冲层,防撞要吸能

应用领域 发布时间: 2026-09-14 2006 阅读

The robot's head triggers an alarm upon any impact, making the cushioning pad useless. To prevent collisions, it needs to absorb energy; the balance between soft and hard must be right.

Call the police immediately if hit; the cushion didn't absorb it.

The robot joint cushion is an 'energy-absorbing component': it absorbs energy, rebounds, and compresses. The material must be able to withstand impact—the conclusion first: the head cushion layer, for collision protection, must absorb energy—absorbing energy is the mission of the cushion.

The biggest pitfall of robot joint cushions: they can't absorb the impact, causing the joints to be directly injured — shock absorption is the baseline for cushions.

Robot parts are about the experience: cushioning and durability are both issues. Only by choosing the right materials can the experience be reliable—robot parts, don't skimp on the formula.

Both energy absorption and rebound are needed, why is TPE suitable?

Reasons for using TPE for robot cushions: energy absorption can be done, rebound can be done, compression can be done—combining all three makes it suitable for cushioning.

Energy absorption is key: impact absorption. Energy absorption tests are included in acceptance criteria—if it can't absorb, it's a problem.

Rebound cannot be skipped: cushioning relies on rebound. Rebound testing should be included in acceptance inspections—if it doesn't rebound, it's a problem.

What to look for in three aspects: collision resistance, rebound, and fatigue resistance

Crash condition: collision energy absorption. Energy absorption data must be verified—impact, that's the issue.

Rebound condition: compression recovery. Rebound data need to be verified—deformation equals problems.

Fatigue condition: repeated use. Fatigue data must be verified—cracking is the problem.

Cushioning pad materials, clearly compared in one table

MaterialEnergy absorptionreboundCost
TPEGoodGoodmiddle
PU foamGoodmiddlemiddle
EVAmiddlebadLow
SiliconeGoodGoodTall

Table reading method: Materials are arranged by task; select different ones for different tasks, and evaluate the energy-absorbing item separately.

Look at energy absorption and rebound together to choose the right material.

It won’t hurt when hit and will bounce back; check these four items for inspection

ProjectRequirementJudgment
Energy absorptionTestMeet the standard
reboundTestMeet the standard
FatigueTestMeet the standard
BatchLockMeet the standard

Table reading method: Check each item of the cushion, safety is visible, and the drop hammer impact data must be attached.

Energy absorption is the mission of the cushion.

If you only look at the thickness and don't check the energy absorption, it will still trigger an alarm when hit.

Pitfall 1: Only looking at thickness. Even if it is thick, if it cannot absorb energy, you will still get hurt when you hit it — energy absorption must be tested.

Pitfall 2: Rebound missed inspection. Deformation — rebound must be inspected.

Pitfall Three: Fatigue missed detection. Cracking—fatigue must be tested.

Energy absorption, rebound, fatigue—ask clearly before choosing a mat

Three questions: what impact, what rebound, what lifespan. One verification: actual operating conditions measured — three questions and one verification, the supplier's details are clear.

Energy absorption verification must come first: first measure the data for hammer impact and rebound absorption, then discuss material selection—energy absorption is the baseline for cushioning pads.

Making sample retention a habit: retain samples from each batch, and re-test the rebound of energy absorption batch by batch. When changing materials between batches, compare first before scaling up — stable batches result in fewer customer complaints.

Collapse, slow rebound, cracks: compare with a table

PhenomenonReasonCountermeasure
Impact injuriesPoor energy absorptionReplace with high energy-absorbing material
TransformationPoor reboundReplace with high-resilience material
CrackingFatigue is poorReplace with fatigue-resistant material
become hardAgingAdditives
Batch bleachingFormula fluctuationLock window

Joint pads only look at thickness but do not absorb energy; when you hit them, they are still hard—energy absorption is the key. Thickness is secondary; the crucial thing is whether it can dissipate force when hit.

Good energy absorption does not mean good rebound. PU foam absorbs energy but rebounds slowly. Robots need fast rebound to continue moving. Test the two data separately; do not confuse energy absorption with rebound.

Fatigue resistance needs tens of thousands of cycles; joints move every day, and a single impact test doesn't count. It's only considered passing if repeated compression fatigue is performed and the rebound doesn't degrade; otherwise, a few impacts will cause it to collapse.

Cushion pads are the 'shock absorbers' of joints; they need to absorb energy quickly and rebound in sync with movement. Determine fatigue lifespan based on joint movement frequency, and don’t apply static data to dynamic components.

After repeated compression 100,000 times, it still rebounds 90%, and the energy absorption value meets the standard; joint pads are included in the robot standards. Don't apply single-impact data to parts that move daily.

Joint cushioning pads undergo repeated compression fatigue tests, and only if the rebound does not degrade are they considered to pass. After 100,000 compressions at 1Hz, the rebound rate must be ≥85%. A good static rebound appearance does not mean it can withstand dynamic fatigue.

Energy absorption and rebound are two separate indicators; don’t use rebound data to evaluate energy absorption components. The energy absorbed from a drop hammer impact should be ≥60%. Shore A 50-65 is the sweet spot for cushioning; too hard and it doesn’t absorb force, too soft and action precision decreases.

Determine fatigue life based on the frequency of joint movements, don’t apply static data to dynamic components. After repeated compression 100,000 times, the rebound rate should be ≥85%. Energy absorption and rebound are two different indicators, don’t use rebound data for energy-absorbing components.

Whether it is thick or not is secondary; the key is whether it can absorb the force when hitting. The two sets of data should be tested separately. Do not treat energy absorption as rebound. It only counts if the rebound does not decay after repeated compression fatigue; otherwise, it will collapse after a few hits.

A joint cushioning pad is only considered qualified if it can withstand repeated compression 100,000 times without rebound degradation. The energy absorption of a drop hammer impact should be ≥60%. Shore A 50-65 is the cushioning sweet spot; if it's too hard, it won't relieve force, and if it's too soft, the accuracy of movements decreases.

Cologne customer case: shrinkage rate unstable and fluctuating, switched system and continued three orders

A robot parts factory in Jinhua has unstable shrinkage rates for cushioning pads, resulting in large dimensional variations. Cologne cooperated by changing the system and grade (from SEBS-based to TPV-based), achieving dimensional stability, and the customer placed follow-up orders for three consecutive batches. By changing the system, batch issues are addressed at the source — for dimensional problems, first look at the system's stability.

Summary

Selection of robot cushioning pads: first test energy absorption, then verify rebound. The head cushioning layer should absorb shock; absorbing energy is its mission.

Explain who we are in three lines:

Performance modification — modified thermoplastic elastomers, modified nylons (PA6 / PA66 / PA46 / PA11 / PA12 / PA6T / PA9T and nylon alloys), modified PPO / PPS;

Available supply — stock of major chemical giants’ nylon resins, secondary brand materials, and bulk materials;

Judgment — what part, what material to use.

这台机器上的件,说下工况我帮你看看

报个件、说清温度和要过的认证,当天回你两三个能打的方案。电话微信同号,找到人就能聊。

打电话 18969817163发邮件询价
WA