Category Archives: Polyester

Understanding String: A Short Video

This short video will begin to open up the mystery and myths of tennis string.

While watching this video, I questioned a statement about our Questron testing device. I said it was set up to pull one (1) pound per millimeter when, in fact, it is set up to pull one (1) millimeter per second—not pound per second! The data is reported in pounds!

Please add your comments and questions.  We want to know what interests you so we can add it to our video and website activity.

 

A Visual Treat: String v String

A picture, or a graph, is worth a thousand words somebody said.  So here is an image showing the difference in string stiffness.

Simply, the shorter the distance (mm) to 50 pounds the stiffer the string.  So you see one string (blue) reached a force of 50 lbs at 26.0 mm, another (red) at 27.9  mm, and another (green) at 49.6 mm.

Soft v Stiff String

Another property we see is linearity, or how straight the line is from beginning to end.  This could indicate the consistency of the string through various hitting forces.

Ultimate tensile strength (UTS) is indicated by the line going straight down because the string broke at that force.  The force and distance are displayed near that vertical line.

The two top strings are polyester and the lower one is PEEK.  These just happened to be strings installed in racquets today.

As always, posts are presented as information and never an endorsement or non-endorsement…if there is such a thing.  

I hope we saved a thousand words with this picture!

 

To Pre-Stretch or not to Pre-Stretch?

What is Pre-Stretching, how is it done,  and what does it do?

What follows is a brief, limited, and non-technical explanation.  

  • Pre-stretching is simply applying tension to the entire length of a tennis string.
  • The best Pre-stretch is a tension of 25-30 pounds for 30-35 seconds.
  • Pre-stretching stabilizes the string and reduces short-term creep (tension loss).

Over the years, especially in the last decade, concerns have been raised about the potential damage pre-stretching can cause to certain string materials, mainly polyester.  We have found that this is not the case, and most strings, including polyester, benefit from a well-done pre-stretch.

Two material properties important to this discussion are elasticity and elastic limit.

  • Elasticity, a fundamental material property, refers to the string’s ability to return to the original length after applying a load (tension).  Understanding this concept will give you insight into the string’s behavior.  An Elastic Limit is when the string has passed the point of no return…in other words, the string has been stretched too much and will never return to anything close to the original length.  When the string has reached this spot, it has entered the “plastic” (opposite of elastic) stage.

We test every string for several properties, one of which is UTS, Ultimate Tensile Strength, which ranges from 120 to about 200 pounds.  Not once have we experienced the string reaching the elastic limit before failing!

The plot below shows the difference between not pre-stretched and pre-stretched.  The blue trace is no pre-stretch, and the red trace is the pre-stretched.

When pre-stretching is properly administered, it poses no danger to the string.  

Pre-stretching offers numerous and significant advantages. These include better tension retention, stability, consistency across the string bed, and ease of handling a string with a high recoil memory.

As a player, you can ask your racquet technician to use or not use pre-stretch.  It should be your decision based on performance and benefits.

It won’t hurt the string!

 

Head Extreme Pro 2024 Custom Demo Setup

We encourage all of our clients who are trying new racquets to have one of their “finalists” setup they way they will be using it.

This is a review of a Head Extreme Pro 2024 setup for the client.

ManufacturerHead
Racquet ModelHead Extreme Pro 2024
Reference Tension60
String
VS16 / ALU 115
Machine UsedTrue Tension Pro
Static
String Bed Stiffness - RDC55
String Bed Stiffness -FlexFour61.8
String Bed Stiffness - SBS50.6
String Bed Stiffness - ERT35 Kg/Cm
Racquet Flex, RDC64
Racquet Flex, FlexFour50.6
Racquet - In Plane Stiffness448.7
Weight, Grams334
Weight, Ounces11.78
Balance, mm319
Balance, Inch12.56
Length, Cm68.6
Length, Inch27.00
Head Width9.55
Head Length12.89
Head Area, cm2623.9
Head Area, Sq. Inch96.7
Beam Height @ Grip, mm20.5
Beam Height @ Mid, mm23
Beam Height @ Tip22
Beam Width @ Grip, mm14.5
Beam Width @ Throat, mm13
Beam Width @ Mid, mm11.5
Beam Width @ Tip, mm13.3
Number of Main Strings16
Number of Cross Strings19
Ratio.624
Main String Grid Inch/mm7.21/183.1
Cross String Grid Inch/mm9.63/244.6
Density (% of head filled with string).716
Average Cross String Space.507
Average Main String Space.451
Dynamic
Dynamic Tension, Kp, ERT35
Dynamic Tension, Lbs/in195.8
First Moment, Nm.816
Polar Moment336
Torsional Stability15
Swing Weight, Kg/cm2321
Swing Weight, Ounces11.32
Swing Weight Calculated339.9
Power, RDC50
Control, RDC50
Manueverability, RDC73
Power, Calculated 2006.7
Head Points7.56
Head Weight, %46.5%
Center of Percussion21.2
Dwell Time, ms6.31
Efective Stiffness - lbs29.6
K, Lb/In195.8
Recoil Weight163.1
Twist Weight228.7
End Weight 141.1
Tip Weight 191.8
9 O'Clock93.2
3 O'Clock90.6
Butt End150.3
COF, Main.372
COF, Cross.336