插件式Spring Pin/穿孔式弹簧针

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插件式Spring Pin/穿孔式弹簧针

插件式Spring Pin/穿孔式弹簧针

插件式Spring Pin/穿孔式弹簧针 ,弹簧针 ,产品特点 定位效果佳,适合SMT/DIP焊接,可单Pin贴片 可应用于板与板之间的连接 焊接强度高 可充分利用PCB空间,降低产品板上高度
  • Rated Voltagetypically 36V AC/DC, supports multiple Countelectronic devicesvoltage requirements.
  • Current Range0.5-60A, Materialand plating determine the upper limit
  • Operating Temperature-40°C to +120°C: adapts to extreme environments, ensures stable operation.
  • Plating Materialtypically gold/nickel plating, Customizablecomposite plating, optimized conductivity and corrosion resistance
  • Dimensional Accuracy±0.05mm, μm-level high-precision machining
  • Mounting MethodSMT/through-hole, compatible with PCB processes

Through-hole / DIP Spring Pin

Rated Voltage
typically 36V AC/DC, supports multiple Countelectronic devicesvoltage requirements.
Current Range
0.5-60A, Materialand plating determine the upper limit
Operating Temperature
-40°C to +120°C: adapts to extreme environments, ensures stable operation.
Plating Material
typically gold/nickel plating, Customizablecomposite plating, optimized conductivity and corrosion resistance
Dimensional Accuracy
±0.05mm, μm-level high-precision machining
Mounting Method
SMT/through-hole, compatible with PCB processes

Overview

Through-hole / DIP Spring Pin from Tanben Electronics features low contact resistance, stable current carrying and customizable pin count / pitch / mounting options for consumer electronics, industrial control and communication devices.

Technical Specifications

Rated Voltagetypically 36V AC/DC, supports multiple Countelectronic devicesvoltage requirements.
Current Range0.5-60A, Materialand plating determine the upper limit
Operating Temperature-40°C to +120°C: adapts to extreme environments, ensures stable operation.
Plating Materialtypically gold/nickel plating, Customizablecomposite plating, optimized conductivity and corrosion resistance
Dimensional Accuracy±0.05mm, μm-level high-precision machining
Mounting MethodSMT/through-hole, compatible with PCB processes

Drawings

through-hole / DIPspring pin/through-holespring pin 1.03

through-hole / DIPspring pin/through-holespring pin 1.25

through-hole / DIPspring pin/through-holespring pin 1.5 with tail

through-hole / DIPspring pin/through-holespring pin 6.6

AIserver high-speed interconnect solution

robot precision interconnect solution

chip-test high-frequency solution

through-hole / DIPspring pin

插件式Spring Pin/穿孔式弹簧针
Part No. ∅ A B ∅ C D E F G Force(gf) Actions
101763-1 1.4 2.9 1.9 0.3 0.9 2.4 1.2 85 Min
101377-1 1.5 4.2 2.2 0.3 1.2 3.2 1.7 80±30
101266-1 1.4 1.8 2.2 0.5 1.3 2.8 1.8 100±25
101756-1 1.25 0.7 2.2 0.3 1.6 2.6 1.9 80±16
101334-1 1.4 1.8 2.2 0.5 1.3 3.1 2.2 110±25
101170-1 1.25 0.8 2 0.4 2.1 2.9 2.3 108±22
101701-1 0.8 1.1 2.1 0.3 2.7 3.9 2.8 80 Max
101702-1 0.8 1.1 2.1 0.3 2.7 3.4 2.8 80 Max
101086-1 1 1 2 0.4 2.6 3.4 2.9 95 Min
101095-1 1 1 2 0.4 2.7 3.6 2.9 95 Min
101746-1 0.7 3 2 0.5 2.5 3.5 2.9 80±30
101257-1 0.8 1 2 0.5 3 4.3 3.4 100±25
101620-1 0.8 2.1 2 0.5 3 4.3 3.5 90±25
101127-1 1 1 2 0.5 3.5 5 3.8 120+30/-20
101256-1 0.8 1 2 0.5 3.4 4.9 3.9 130±25
101621-1 1 2.1 2 0.5 3.5 5 3.9 150±35
101061-1 1 1 2 0.5 3.5 5 4 135+40/-30
101287-1 0.9 1 2 0.5 3.5 5 4 135±25
101267-1 0.5 2.5 2 0.5 3.7 5.2 4.05 90 Min
101646-1 1.6 1.2 2 0.5 4 5.5 4.15 120±20
101720-1 0.7 2.2 0 0 4 5.8 4.2 85 Min
101168-1 0.5 3.55 2 0.5 3.85 5.35 4.35 120+30/-20
101150-1 0.9 2.3 2 0.5 3.5 5.5 4.4 113+30/-20
101242-1 0.45 0.6 1.9 1 4 5 4.4 100 Max
101409-1 1.5 2.5 2.8 0.5 6.2 8.2 4.4 110±25
101156-1 0.8 6.45 1.65 0.85 4.15 5.45 4.45 124±25
101191-1 0.6 2.3 0 0 4 5.5 4.5 50±10
101372-1 0.8 2 2 0.5 4 5.5 4.5 75±25
101376-1 1 2.7 0 0 4 8.4 4.5 80±20
101276-1 0.45 0.6 1.9 1 4 5.5 4.6 90±35
101365-1 0.85 2 1.8 0.5 4.1 5.9 4.6 25±5
101425-1 0.45 0.9 1.9 1 4 5.5 4.6 90±35
101692-1 0.7 2.2 0 0 4.4 6.2 4.6 80 Min
101321-1 0.5 3.55 2 0.5 3.85 5.65 4.65 130+30/-20
101536-1 0.8 0.8 2 0.5 4 6 4.8 200 Max
101099-1 0.5 0.8 2.3 0.8 4.3 6.1 4.9 90 Min
101461-1 1 1.6 2.3 0.8 4.3 6.1 4.9 90 Min
101479-1 0.65 1.75 1.83 0.4 4.5 6.9 4.9 130±30
101203-1 0.5 5.55 2 0.5 4 6 5 120+30/-20
101449-1 1 0.8 2 1.5 4 6 5 135±25
101523-1 0.8 2 2 0.5 4.5 6 5 90 Min
101550-1 0.8 2 2 0.5 4 6 5.2 80±25
101345-1 1 1 2 1 5 6.5 5.4 130±30
101667-1 0.5 5.75 2 0.5 4.3 6.6 5.4 120+30/-20
101379-1 0.6 1 2 0.8 5 7 5.5 80±35
101437-1 1 0.8 2 0.5 4.5 6.5 5.5 135±25
101445-1 0.6 1.5 2 0.8 5 7 5.5 80±35
101511-1 0.6 1.3 2 0.8 5 7 5.5 80±35
101568-1 0.6 2 2 0.8 5 7 5.5 80±35
101642-1 0.8 2 2 0.5 4 6.5 5.5 90±25
101498-1 0.8 10.4 0 0 5.3 7.1 5.6 40±10
101369-1 1.5 2.8 2.8 1.4 5 7 5.8 90±30
101381-1 0.43 1.75 1.83 0.4 5.6 8.1 5.8 80±20
101174-1 1 1.1 2 0.5 5.3 7.1 6 90 Min
101193-1 1 1 2 2.2 5.5 7.5 6 140±20
101462-1 1 1 1.8 0.5 5.5 7 6 90 Min
101540-1 0.6 1 2 1.3 5.5 7.5 6 80±35
101249-1 1 1.1 2 0.5 5.3 7.3 6.1 50±20
101169-1 1 0.8 2 0.5 5.7 7.7 6.2 120 Min
101371-1 1 3.93 2 0.5 5.7 7.5 6.2 85±30
101220-1 1 1.1 2 0.5 5.3 7.6 6.5 90 Min
101311-1 1 1 2 0.5 6 8 6.5 115±30
101520-1 1.5 3.6 2 0.5 6 8 6.5 200 Max
101695-1 0.8 5 0 0 5.5 8 6.5 80 Min
101618-1 0.65 1.75 1.83 0.4 5.6 8.1 6.8 72±21
101222-1 2.5 6 4 1 5.9 9.4 6.9 80±20
101283-1 2.5 6 4 1 5.9 10.4 6.9 100±25
101416-1 2.5 3.6 4 1 5.9 13 6.9 90±20
101666-1 1.3 3.6 1.7 0.5 6 8 7 80 Min
101718-1 1 2 2 1.9 6.5 9 7 85 Min
101219-1 1 1 2 1.9 6.5 8.5 7.1 110±30
101593-1 1 2.1 2 1 6.2 8.2 7.1 100±20
101153-1 1 0.6 2 2 7.5 9.5 7.5 165±35
101190-1 0.6 3.95 0 0 7 8.5 7.5 50±10
101353-1 1 1 2 1.9 6.5 9 8 90 Min
101085-1 1 1 2 2 8 10 8.6 100 Min
101338-1 1 1.5 2.9 1 8.3 10.8 9.1 160±25
101274-1 2 1.2 4 1 7.9 10.2 9.2 75±25
101184-1 1.8 3 1.5 8 8 10.8 9.8 120 Min
101084-1 1 1 1.8 0.5 9.9 11.4 10.4 110±30
101152-1 0.8 0.7 1.8 0.3 8.5 11.3 10.5 85±20
101244-1 1 3 1.8 1 10 11.5 10.5 110±30
101189-1 0.58 3 0 0 10.3 12.3 10.7 25+/-10
101673-1 0.6 2.5 2 0.5 10 12 10.8 120±25
101768-1 0.6 1.5 2 0.5 10 12 10.8 120±25
101769-1 1 2.6 2 0.8 10.7 12.5 11.1 120±30
101279-1 1 1 1.8 0.5 9.9 12.4 11.4 90±25
101423-1 1 1 1.8 0.5 12 13.5 12.5 110±20
101207-1 2.5 4 4 1 12 15.5 13 80±25
101375-1 1 1 1.7 2 11.7 14.5 13.3 120±30
101124-1 1 3.6 1.83 0.4 16.57 18.07 17.07 90+30/-15
20101010993 1.4 2.1 2 0.5 3.4 5.4 4 135±35
20101011134 1.4 1 2 0.5 4 6 5 80 Min
20101011154 1 2 2 0.5 4.5 6.5 5.5 80 Min
20101011215 1.4 2.1 2 0.5 7.4 9.4 8 135±35
20101011234 0.9 2 0 0 9.8 12 11 55±15
20101011277 0.7 4 0 0 6.5 8 6.9 120±35
20101011279 1 3.5 3.5 0.5 5.5 7.5 6.5 80±20
20101011283 1.3 2 2 0.5 6 8 7 80 Min
20101011295 1 1 1.83 0.4 3.6 5.6 4.6 80±20
20101011300 1.5 1.35 2 0.3 2.45 3.65 4.15 95±28
20101011310 0.7 1 0 0 4.4 6.2 5.3 70±20
20101011425 0.8 2 1.8 0.5 9.6 11.3 10.5 100±20
20101011508 1 2 2 0.5 4.5 6.5 5.5 50±15
20101011552 1.5 2 2.2 0.5 4 5.5 4.5 36±7
20101011463 0.6 0.8 2 0.5 6 8 6.5 45±15
20101011550 0.7 1.4 1.8 0.6 3.4 7.8 6.2 75±20
20101011505 1.5 2 1.95 0.4 3.8 6 4 125±25
20101011547 0.8 2 2 0.4 3 3.8 3.2 55±15
20101011574 1 1.4 2 0.5 3.5 5 3.7 70±20
20101011565 0.6 11 1.9 0.4 3.4 4.9 3.55 60±15
20101011443 0.6 5 1.9 0.25 4.2 5.4 4.6 110±25
20101011504 0.8 4 1.8 0.5 7.5 10 9 50±20
20101011574 1 1.4 2 0.5 3.5 5 3.7 70±20
20101011411 0.64 2.5 1.88 0.25 6 8.5 7.2 60±15
20101011581 1.5 1.35 2 0.4 2.75 4.15 2.95 60±15
20101011642 0.8 1 2 0.5 2.6 4.1 3.5 120±25
20101011673 0.6 1.05 1.8 0.35 1.85 2.8 2.05 60±20
20101011626 1.4 2.3 2 0.5 7 9.5 7.9 150±30
20101011837 0.8 1.2 2 1 3.95 5.3 4.5 80±15
20101011885 0.8 3 2 0.5 3.2 4.5 3.5 70±20
20101011951 0.7 1.6 1.8 0.7 4.7 6.2 5.2 80±20
20101011952 0.7 1.6 1.8 0.7 7.05 8.55 7.55 80±20
20101011963 1 0.8 2 0.5 4.5 6 5 135±25
20101011968 0.8 0.8 2 0.4 2.7 4 3.2 70±20
10101011931 1 1.3 2 0.5 3.5 4.8 4 50±15
10101011930 1 1.3 2 0.4 2.6 3.4 2.9 125±25
10101011827 1 0.8 2 0.5 4.5 6 5 135±25
20101011533 2.54 5.62 4.32 0.51 7.66 12.31 8.58 330±60
10101021980 0.6 0.8 1.8 0.35 3 4.5 4 65±15
20101011542 0.5 1.75 1.8 0.4 7.8 11 9.2 70±20
20101011536 0.5 1.75 1.8 0.4 7.3 10.5 8.7 70±20
20101011389 1 1.5 2.7 1.9 3.5 5.5 4.7 125±25
20101011358 0.6 2.9 2 0.5 5 6.4 5.5 65±25
20101011261 0.6 1.9 2 1.5 6.1 8.1 6.6 60±15
20101011671 0.6 0.9 / / 4.1 5.8 4.8 100±20
20101011566 0.8 1.4 2 0.5 9.9 12.6 10.8 60±10
What key factors should be considered when selecting a spring pin connector?
1. Application: current rating (high-current designs often need a beveled tip + ball structure), signal integrity (low-impedance design), and operating environment (temperature / dust resistance, etc.);
2. Structure: flat-bottom tips are more prone to poor contact; a beveled / cut-face design is preferred for stable side thrust and lower impedance. For high current (e.g. 30A+), reduce the current load carried by the spring;
3. Plating: gold plating (3–20 μ") improves conductivity; nickel plating (50–100 μ") improves oxidation resistance. High-current applications usually need thicker plating;
4. Working stroke and spring force: too short a stroke can over-compress and damage the spring; too long a stroke can cause poor contact. Excess force increases wear; too little force reduces contact stability;
5. If the requirements are not fully defined, contact us at a-black@foxmail.com for technical support.
Does Tanben Electronics provide stamped and formed parts?
1. Yes. Tanben Electronics has a full set of stamping and turned-part manufacturing equipment, plus mature process capability;
2. Stamped parts offer more stable dimensions and are suitable for high-precision requirements.
Are the connectors sealed / waterproof?
1. Waterproof versions are available, including IP67-rated designs (special design required).
How can poor contact / unstable conduction be avoided?
1. Calculate the spring compression stroke accurately during design to keep contact pressure in the proper range;
2. Strengthen cleaning in production to avoid solder, oil, and other contamination; maintain and remove debris during use;
3. Use wear-resistant, oxidation-resistant plating (e.g. gold) and avoid long-term use in highly corrosive environments;
4. Control structural tolerances strictly so the plunger, barrel, and pad alignment stay accurate.
What is the root cause of premature failure in spring-loaded connectors?
1. Pin sticking or oxidation caused by side force or contamination (keep the contact surfaces clean).
How can spring fatigue or breakage be avoided?
1. Select a spring pin life rating that matches the mating-cycle frequency and do not exceed the rated cycles;
2. Avoid keeping the spring at full compression for long periods; reserve a reasonable stroke margin.
How can plunger or barrel deformation be avoided?
1. Avoid impact and uneven force during installation; control SMT reflow temperature to prevent base softening;
2. Use higher-strength materials (e.g. stainless-steel plunger, metal barrel).
How can base detachment or poor soldering be avoided?
1. Optimize pad design (increase pad area) and control reflow temperature and time;
2. When needed, add adhesive for secondary fixation to improve vibration resistance.
How can performance degradation in high-temperature environments be avoided?
1. Use high-temperature base materials (e.g. ceramic or high-temp plastics);
2. Do not operate beyond the specified temperature range; add thermal design when necessary.
How can short circuits caused by humid or corrosive environments be avoided?
1. Add sealing structures (e.g. gaskets/O-rings) to block moisture and corrosive media;
2. Use corrosion-resistant plating and materials, and inspect protection performance regularly.
How can displacement caused by vibration or shock be avoided?
1. Use soldering plus adhesive dual fixation to improve mounting strength;
2. Avoid equipment vibration frequencies in the design, or add damping structures.
How can improper SMT reflow temperature control be avoided?
1. Follow the spring pin soldering temperature specification and monitor the reflow profile with a temperature profiler;
2. Prefer SMT models with better temperature resistance when possible.
How can pad misalignment be avoided?
1. Ensure PCB pad pitch matches the spring pin lead pitch during design;
2. Improve placement accuracy and check alignment before soldering.
How should the connectors be cleaned correctly during use?
1. Use neutral cleaners; avoid strong corrosive solvents and overly long ultrasonic cleaning;
2. Dry promptly after cleaning to minimize plating contact time with the cleaner.
How can current / voltage overload be avoided?
1. Select spring pins whose rated current and voltage match the actual working load;
2. Do not operate beyond the electrical specification; add overload protection when needed.
How can high-frequency signal loss be reduced?
1. For high-frequency applications, choose models with low parasitic inductance/capacitance and optimize the structure to reduce interference;
2. Perform impedance matching tests to ensure signal transmission quality.
How can mating cycles be increased?
1. According to the device mating frequency, choose high-life spring pins (e.g. gold-plated springs and reinforced mechanical design).
How can internal foreign-object jamming be prevented?
1. Enforce strict 5S control in production to avoid metal chips and solder residue;
2. Add dust-proof / waterproof sealing to block external particles.
What is the easiest way to search for products on this website?
1. Filter by model, dimensions, and drawings;
2. Or contact technical support at a-black@foxmail.com.