Linear shafts / end forms freely selectable

Linear shafts / end forms freely selectable

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(i)Remark

  • FSFJ has been localized according to European needs and requirements. Please have a look on the EU version FSFJEU. FSFJEU is available in EN 1.1213 (Cf53) and h6 / h7.

Data sheet

Unit еxample related to this product

Part Number

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Shaft Ends Configurable: Related Image
[ ! ] For plated products, the surface roughness of D part is {{{attr4}}};
and for unplated products, it is {{{attr5}}}.
[ ! ] The dimension tolerances for L, F, and T conform to JIS B 0405 Class m. 
However, threaded chamfer tolerances are excluded.
■L Dimension Tolerance
Shaft Outer Dia. g6·h5 (Hardening)
LL Dimension
Tolerance
Overor Less
1930±0.2
30120±0.3
120400±0.5
4001000±0.8
10001500±1.2
Unit: mm
[ ! ]For the change in L dimension tolerance, consider the alteration LKC shown below.
Left End Shape
A
Shaft Ends Configurable: Related Image
B
Shaft Ends Configurable: Related Image
C
Shaft Ends Configurable: Related Image
D
Shaft Ends Configurable: Related Image
E
Shaft Ends Configurable: Related Image
F
Shaft Ends Configurable: Related Image
G
Shaft Ends Configurable: Related Image

[ ! ]E6 ≤ D ≤ 20

H
Shaft Ends Configurable: Related Image

[ ! ]4 ≤ M ≤ 12

T
Shaft Ends Configurable: Related Image

[ ! ]6 ≤ D ≤ 20

Right End Shape
A
Shaft Ends Configurable: Related Image
B
Shaft Ends Configurable: Related Image
C
Shaft Ends Configurable: Related Image
D
Shaft Ends Configurable: Related Image
E
Shaft Ends Configurable: Related Image
F
Shaft Ends Configurable: Related Image
G
Shaft Ends Configurable: Related Image

[ ! ]6 ≤ D ≤ 20

H
Shaft Ends Configurable: Related Image

[ ! ]4 ≤ N ≤ 12

T
Shaft Ends Configurable: Related Image

[ ! ]6 ≤ D ≤ 20

T and F Dimension Tolerances
Dimension Range
Tolerance
(mm)
Over
or less
0.5
6
±0.1
6
30
±0.2
30
120
±0.3
120
400
±0.5
[ ! ]Compliant with JIS B
0405 Class m (Medium Class).
■Machining Conditions [!] No alteration condition for Shape A.
 B 

·When M3 to 8
·When M10 or 12
·When M16, 20 or 24
·When M30
·Both Ends Tapped
·Others

M (N) ≤ D-3
M (N) ≤ D-4
M (N) ≤ D-5
M (N) ≤ D-6
M × 2.5+4+N × 2
L ≥ M (N) ×4

 C 
Dr
6 to 30R0.3 or Less
31 to 500.5 or Less

Specify M(N) dimensions.
[ ! ] B, S ≥ Pitch × 3 is required.

 D 
Dr
6 to 30R0.3 or Less
31 to 500.5 or Less
 E 
Dr
6 to 30R0.3 or Less
31 to 500.5 or Less
P (Q) ≥ M (N) +3

·When M3 to 8
·When M10 or 12
·When M16, 20 or 24
·When M30

M (N) ≤ P (Q)-3
M (N) ≤ P (Q)-4
M (N) ≤ P (Q)-5
M (N) ≤ P (Q)-6

 F 
Shaft Dia.dd Tolerancemm Tolerance
65+0.075
0
0.7+0.1
0
760.9
87+0.09
0
98
109.60
-0.09
1.15+0.14
0
1211.50
-0.11
1312.4
1413.4
1514.3
1615.2
1716.2
18171.35
1918
Shaft Dia.dd Tolerancemm Tolerance
20190
-0.21
1.35+0.14
0
2221
2422.9
2523.9
2624.9
2826.61.65
3028.6
3230.30
-0.25
3533
40381.9
4542.5
50472.2
 G 
DbHex Socket Depth ℓ
6·72.53.5
8·934.5
1046
12 to 1557.5
16 to 1969
20812
 H 
D ≥ 16
D ≥ M+4+R
D ≥ N+4+W
 R ≥ M+3
 W ≥ N+3


Tap Depth
M × 2
N × 2
 T 

D-J (Z) tan15° × 2 ≥ 2
(Tip Diameter ø2 or More)
·L requires L - J(Z) ≥ 20.
·When both ends are in T shape,
L - (J + Z) ≥ 20 is required.

[ ! ] When only one end needs to be machined, select A Shape for the other end.
[!] G and H will not be symmetrical when applied to both ends of the shaft.

[ ! ] When D = M or D = N is selected for shaft end shape C, B(S) needs to be specified as F = B (T = S).
However, since L, F and T dimensions have priority, B (S) dimensions of the product should be F (T) - (Pitch × 2).

Type[M] Material[H] Hardness[S]Surface Treatment
D Tolerance g6D Tolerance h5
FSFJFSFUEN 1.3505 Equiv.Induction Hardened
EN 1.3505 Equiv. 58HRC~
EN 1.4125 Equiv. 56HRC~
FSSFJFSSFUEN 1.4125 Equiv.
FPSFJEN 1.3505 Equiv.Hard Chrome Plating
Plating Hardness: HV750 or more
Plating Thickness: 5 µ or more
FPSSFJEN 1.4125 Equiv.
[!] Hard chrome plating is applied after surface treatment of the base material, so there is no plating on the processed parts.

Specification Table

Part NumberDLFMBTNSHUPQRWJZ
Type Left Shaft End Right Shaft End
FSFJACD12L100      T30N6S12                
Part NumberSelection0.5 mm Increments1 mm IncrementsSelectionC
TypeLeft End
Shape
Right End
Shape
DLF·TB·SH·UP·QR·WJ·ZM·N (Coarse)
(D Tolerance g6)
FSFJ
FSSFJ
FPSFJ
FPSSFJ


(D Tolerance h5)
FSFU
FSSFU
A
B
C
D
E
F
G
H
T
A
B
C
D
E
F
G
H
T
6 17 31
7 18 32
8 19 35
9 20 38
10 22 40
12 24 45
13 25 50

14 26
15 28
16 30
20.0 to 1500.0
(L ≤ D × 50)
2 ≤ F ≤ P × 5
2 ≤ F ≤ M × 5
2 ≤ T ≤ Q × 5
2 ≤ T ≤ N × 5
2 ≤ B ≤ M × 3
2 ≤ S ≤ N × 3
B ≤ F−2

S ≤ T−2
(When M, N ≤ 6)
B ≤ F−3
S ≤ T−3
(When M, N ≤ 8, 10)
B ≤ F−5
S ≤ T−5
(When M, N ≥ 12)
2 ≤ H·U
(When D = 6)
3 ≤ H·U
(When 6 < D ≤ 10)
4 ≤ H·U
(When 10 < D ≤ 20)
5 ≤ H·U
(When 20 < D)
H·U < L2
D/3 ≤ P·Q < DD ≥ M+4+R
D ≥ N+4+W
R ≥ M+3
W ≥ N+3
DJ·Z
6·75 to 7
8·95 to 10
105 to 14
125 to 18
13·145 to 20
1510 to 24
16·1710 to 25
18·1910 to 28
2010 to 32
3 4 5
6 8 10
12 16 20

24 30
0.2 or less
when D-Q (P, M, N) ≤ 4
0.5 or less
when D < 20
1.0 or less
when D ≥ 20

■Details of Thread Section C Chamfering

Thread
Nominal M
Pitch
P
Chamfering C
(Reference Value)
30.500.50
40.700.75
50.800.75
61.001.00
81.251.25
101.501.50
121.751.75
162.002.00
202.502.50
243.003.00
303.503.50
C chamfering at Thread Tip

Alteration Details

·See below for alteration.
 * When selecting multiple alterations, the distance between machined areas should be 2 mm or more.
 * Alteration may lower hardness.

Alterations
Code
Alteration Details Fixed DimensionApplicable Conditions Ordering Example
LKC

Precisely change L dimension and tolerance

Shaft Ends Configurable: Related Image

·L < 200→L±0.03
·200 ≤ L < 500→L±0.05
·L ≥ 500→L±0.1
[ ! ]L Dimension can be specified in 0.1 mm incrementsFSFJAC-D12-L500.5-T30-N6-S12-LKC
SC

Wrench Flat at One Location
Shaft Ends Configurable: Related Image

DWℓ1 DWℓ1
658 201710
75 2217
87 2422
97 2522
108 2622
121010 282715
1311 3027
1413 3127
1513 3227
1614 3530
1714 383620
1816 4036
1916 4536
    5041
[ ! ] Applicable to D = 6 or more
[ ! ] SC = 1 mm Increments
[ ! ] SC+ℓ1 ≤ L
[ ! ] SC ≥ 0

[NG] Not available in combination with WSC
FSFJAC-D12-L500-T30-N6-S12-SC5
WSC

Wrench Flats at Two Locations
Shaft Ends Configurable: Related Image

[ ! ] Applicable to D = 6 or more
[ ! ] WSC, X = 1 mm Increments
[ ! ] WSC+X+ℓ1 × 2 < L
[ ! ] WSC ≥ 0, X ≥ 0

[NG] Due to deviation in the angle of alterations, it will not be on the same plane.
 
[NG] Not available in combination with SC
FSFJAC-D12-L500-T30-N6-S12-WSC12-X8
PMC
PMS
QMC
QMS

Change to Fine Thread
Shaft Ends Configurable: Related Image

DPMC·QMCPMS·QMS
63456            
73456            
834568           
934568           
10 456810      10   
12  5681012     1012  
13  5681012     10   
14  568101215    101214 
15  568101215    1012  
16  568101215    101214 
17  568101215    101214 
18  56810121517   10121418
19  56810121517   10121418
20   681012151720  10121418
22   681012151720  10121418
24    8101215172025 10121418
25    8101215172025 10121418
26    8101215172025 10121418
28    81012151720253010121418
30    81012151720253010121418
31    81012151720253010121418
32    81012151720253010121418
35     1012151720253010121418
38      121517202530 121418
40      121517202530 121418
45      121517202530 121418
50       1517202530  1418
Pitch0.350.50.751.01.51.251.5
[Bearing Nut Fine Thread Alteration]
·Specify "PMC" for the left end, and "QMC" for the right end

[Cylinder Fine Thread Alteration]
·Specify "PMC" for the left end, and "QMC" for the right end
FSFJAC-D12-L500-T8-QMC10-S12

[!] Retaining ring is not included for retaining ring groove.

Circularity (M), Straightness (K), L Dimension Tolerance, Perpendicularity

■Straightness Measurement Method

Shaft Ends Configurable: Related Image

Shaft ends are supported on V-blocks and turned 360 degrees to
measure shaft runout using a dial indicator.
1/2 of measured runout is defined as the straightness.

■Circularity M
Shaft Outer Dia. g6·h5 (Hardening)
DCircularity M
Overor Less
5130.004
13200.005
20400.006
40500.007
Unit: mm
■Straightness K
Shaft Outer Dia. g6·h5 (Hardening)
DLStraightness K
6 to 50L ≤ 1000.01 or Less
L > 100(L/100) × 0.01 or Less
Unit: mm
■L Dimension Tolerance
Shaft Outer Dia. g6·h5 (Hardening)
LL Dimension
Tolerance
Overor Less
1930±0.2
30120±0.3
120400±0.5
4001000±0.8
10001500±1.2
Unit: mm

■ Concentricity and Perpendicularity

Shaft Ends Configurable: Related Image

Notes on Hardening and Surface Treating

■Reduced Hardness around Machined Areas

·Although processing is performed after the base material is hardened, annealing may lower hardness of the machined area.
* Reduced Hardness: Approximately 10 to 40 HRC

 

■Reduced Hardness Range

·Approximately 10 mm from the machined area

 
(Example)
Shaft Ends Configurable: Related Image
 

■Machining area where hardness has lowered due to annealing

·Threaded, Stepped, Retaining Ring Groove, Tapered, Hex Socket, Wrench Flats, Set Screw Groove

 

■Reduced Hardness Condition of Tapped

The conditions for lower hardness for tapped differ depending on the material and selection conditions.

  • EN 1.4125 Equiv.: The hardness of the tapped part will decrease.
  • EN 1.3505 Equiv.: Under the following conditions, the hardness of the tapped will decrease.
         ·When M ≥ D/2, · RC thread, · One End Two Tapped Holes
 

■Effective Hardened Layer Depth of Hardening

The effective hardened layer depth varies depending on the external dimensions and materials.

O.D. DEffective Hardened Layer Depth
EN 1.3505 Equiv.EN 1.4125 Equiv.
6 to 100.5 or More0.5 or More
12·130.7 or More
15 to 200.7 or More
25 to 501.0 or More
 

■About hard chrome plating and plating layer of processed part

  • Hard chrome plating is applied after surface treatment of the base material, so there is no plating on the processed parts.
  • In the example below, only "///" area is treated with hard chrome plating.
 

Ex. Plating Remains: Stepped, Threaded Shaft, Set Screw Flat

/// Part: Plating Remains

Shaft Ends Configurable: Related Image
 
 
■Overview of 13Cr Stainless Steel
High hardness chromium-based stainless steel material determined to meet corrosion resistance with good hardenability suitable for stainless steel linear shafts
 
■Chemical Composition
Name
Category
Material Code
Specifications
Chemical Composition (%)
C
Si
Mn
P
S
Ni
Cr
Mo
Cu
Martensite
Stainless Steel
18Cr
EN 1.4125 Equiv.
JIS G4303
0.95~1.20
≤1.00
≤1.00
≤0.040
≤0.030
16.00~18.00
≤0.75
13Cr
Steel Manufacturer’s Standard Products
0.60~0.75
≤1.00
≤1.00
≤0.040
≤0.040
≤0.60
11.00~14.00
≤0.75
≤0.25
 
■Corrosion Resistance
EN 1.4125 Equiv. have better corrosion resistance than EN 1.3505 Equiv.
(See Fig. 1)

Corrosion Resistance Comparison Test (Reference Data)
Continuous Spray Test Method (JIS H8502:1999 Compliant)

Testing Conditions
(1) Hot alkaline degreasing (70°C, 5 min)
(2) Salt Water Spray (Test temperature 35°C)
(3) Drying (60°C)
(4) Wet (95%RH,35°C)
* Perform (2) to (4) as one cycle

Fig. 1 Reference Data for Salt Water Spray Test Pieces

Difference Between Shaft and Rotary Shaft

■ Basic Specifications

SpecificationsShaftsRotary Shaft
MaterialEN 1.3505 Equiv.
EN 1.4125 Equiv.
EN 1.1191 Equiv.
EN 1.4301 Equiv.
EN 1.1191 Equiv.
EN 1.4301 Equiv.
EN 1.7220 Equiv.
HardeningInduction HardenedHardness: 30 to 35 HRC
O.D. Tolerance g6/h5f8g6/h9/h7g6
Surface TreatmentNo Plating
Hard Chrome Plating
Low Temperature Black Chrome Plating
Electroless Nickel Plating (Surface Treatment Fully Plated Type)
Hard Chrome PlatingNo Plating
Black Oxide
Electroless Nickel Plating
Black Oxide
Electroless Nickel Plating

* Hard chrome plating leaves no plating layer on the machined part.

 

■ Alteration

AlterationsShaftsRotary Shaft
L Dimension Tolerance L < 200⇒L±0.03
200 ≤ L < 500⇒L±0.05
L ≥ 500⇒L±0.1
L < 500⇒L±0.05
L ≥ 500⇒L±0.1
Not applicable when L ≥ 800
Wrench FlatsCan be specified up to 2 LocationsCan be specified up to 1 Location
Set Screw Flat Can be specified up to 2 LocationsCan be specified up to 3 Locations
2 Set Screw FlatsCan be specified up to 2 Locations
Angle Specified: Fixed
Can be specified up to 1 Location
Angle Specified: Configurable in 15 degree Increments
V Groove Can be specified up to 2 Locations
KeywayCan be specified up to 2 Locations
Processing of Stepped Part: Not Possible
Can be specified up to 4 Locations
Processing of Stepped Part: Possible
UndercutM6 to M30M3 to M30
Tapped DepthPossiblePossible
Retaining Ring GrooveCan be specified 2 Locations
(It will be a retaining ring type instead of alterations)
2 locations on D part, 1 location each on stepped part can be combined
Slit Cam Groove Can be specified up to 1 Location
Concentricity Possible
Left-hand Thread / Thread Possible
Slit AddedCan be specified up to 1 Location
C Chamfering WidthPossible

Part Number:  

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Part Number
FPSFJAA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]
FPSFJAB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJAC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-90/1]
FPSFJAD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-T[0-250/0.5]-Q[2-50/1]
FPSFJAE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-Q[2-50/1]
FPSFJAF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-U[1-1500/1]
FPSFJAG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]
FPSFJAH-D[16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-N[4,​5,​6,​8,​10,​12]-W[6-26/1]
FPSFJAT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-Z[5-32/1]
FPSFJBA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJBB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJBC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-90/1]
FPSFJBD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-T[0-250/0.5]-Q[2-50/1]
FPSFJBE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-Q[2-50/1]
FPSFJBF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-U[1-1500/1]
FPSFJBG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJBH-D[16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-W[6-30/1]
FPSFJBT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-M[3,​4,​5,​6,​8,​10,​12]-Z[5-32/1]
FPSFJCA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]
FPSFJCA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]
FPSFJCA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]
FPSFJCB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJCB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJCB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-T[0-250/0.5]-QMS[10,​12,​14,​18]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-T[0-250/0.5]-QMC[12,​15,​17,​20,​25,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-T[0-250/0.5]-QMC[12,​15,​17,​20,​25,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-T[0-250/0.5]-QMS[10,​12,​14,​18]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-T[0-250/0.5]-QMC[12,​15,​17,​20,​25,​30]-S[0-1490/1]
FPSFJCC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-T[0-250/0.5]-QMS[10,​12,​14,​18]-S[0-1490/1]
FPSFJCD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-T[0-250/0.5]-Q[2-50/1]
FPSFJCD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-T[0-250/0.5]-Q[2-50/1]
FPSFJCD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-T[0-250/0.5]-Q[2-50/1]
FPSFJCE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-Q[2-50/1]
FPSFJCE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-Q[2-50/1]
FPSFJCE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-Q[2-50/1]
FPSFJCF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-U[1-1500/1]
FPSFJCF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]-U[1-1500/1]
FPSFJCF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]-U[1-1500/1]
FPSFJCG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]
FPSFJCG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]-F[0-250/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20,​25,​30]-B[0-90/1]
FPSFJCG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]-F[0-250/0.5]-PMS[10,​12,​14,​18]-B[0-90/1]
FPSFJCH-D[16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-B[0-90/1]-N[4,​5,​6,​8,​10]-W[6-25/1]
FPSFJCT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-F[2-95/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16]-B[2-60/1]-Z[5-32/1]
FPSFJCT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-F[2-95/0.5]-PMC[3,​4,​5,​6,​8,​10,​12,​15,​17,​20]-B[2-60/1]-Z[5-32/1]
FPSFJCT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-F[2-95/0.5]-PMS[10,​12,​14,​18]-B[2-60/1]-Z[5-32/1]
FPSFJDA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-P[2-50/1]
FPSFJDB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-P[2-50/1]
FPSFJDC-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-S[0-90/1]-P[2-50/1]
FPSFJDD-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-T[0-250/0.5]-P[2-50/1]-Q[2-50/1]
FPSFJDE-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-T[0-250/0.5]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-P[2-50/1]-Q[2-50/1]
FPSFJDF-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-U[1-1500/1]-P[2-50/1]
FPSFJDG-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1500/0.5]-F[0-250/0.5]-P[2-50/1]
FPSFJDH-D[16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-N[4,​5,​6,​8,​10]-P[2-50/1]-W[6-25/1]
FPSFJDT-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20]-L[20-1000/0.5]-F[2-95/0.5]-P[2-19/1]-Z[5-32/1]
FPSFJEA-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-P[2-50/1]
FPSFJEB-D[6,​7,​8,​9,​10,​12,​13,​14,​15,​16,​17,​18,​19,​20,​22,​24,​25,​26,​28,​30,​31,​32,​35,​38,​40,​45,​50]-L[20-1500/0.5]-F[0-250/0.5]-M[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-N[3,​4,​5,​6,​8,​10,​12,​16,​20,​24,​30]-P[2-50/1]
Part Number
Standard Unit Price
Minimum order quantityVolume Discount
Standard
Shipping Days
?
RoHSBasic Shape Shaft end Shape (Left) Shaft end Shape (Right) [L] Length (Shaft)
(mm)
Material Surface Treatment ISO Tolerance Hardness [B] Length (thread)
(mm)
[M] Size (thread - depth 2xM)
(mm)
[F] Length (stud - offset - front side)
(mm)
[PMC] Size (fine thread)
(mm)
[PMS] Size (fine thread)
(mm)
[QMC] Size (fine thread)
(mm)
[QMS] Size (fine thread)
(mm)
[H]
(mm)
[J] Size (thread)
(mm)
[P] Diameter (stepped - front side)
(mm)
[Q]
(mm)
[R] Distance (thread width - front side)
(mm)
[S] Length (thread)
(mm)
[T] Length (stud - stepped - back side)
(mm)
[U] Distance (retaining ring groove)
(mm)
[W] Diameter (thread - internal - front side)
(mm)
[Z] Length (cone - back side)
(mm)
[N] Size (thread - depth 2xN)
(mm)
[D] Diameter (Shaft - external)
(mm)

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1 4 Days 10SolidStraightStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)------------------6 ~ 50

-

1 4 Days 10SolidStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-----------------3 ~ 306 ~ 50

-

1 4 Days 10SolidStraightExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)------------0 ~ 900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)----------2 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)----------2 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidStraightRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--------------1 ~ 1500---6 ~ 50

-

1 4 Days 10SolidStraightHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)------------------6 ~ 20

-

1 9 Days 10SolidStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)---------------6 ~ 26-4 ~ 1216 ~ 50

-

1 4 Days 10SolidStraightTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)----------------5 ~ 32-6 ~ 20

-

1 4 Days 10SolidInternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30----------------6 ~ 50

-

1 4 Days 10SolidInternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30---------------3 ~ 306 ~ 50

-

1 4 Days 10SolidInternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30----------0 ~ 900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedInternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30--------2 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedInternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30--------2 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidInternal threadRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30------------1 ~ 1500---6 ~ 50

-

1 4 Days 10SolidInternal threadHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30----------------6 ~ 20

-

1 9 Days 10SolidInternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 30-------------6 ~ 30-3 ~ 3016 ~ 50

-

1 4 Days 10SolidInternal threadTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 12--------------5 ~ 32-6 ~ 20

-

1 4 Days 10SolidExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250---------------6 ~ 50

-

1 4 Days 10SolidExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30--------------6 ~ 50

-

1 4 Days 10SolidExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-------------6 ~ 50

-

1 4 Days 10SolidExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250--------------3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30-------------3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18------------3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250---10 ~ 18-----0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250---------0 ~ 14900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250--12 ~ 30------0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30--------0 ~ 14900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30-12 ~ 30------0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30--10 ~ 18-----0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-------0 ~ 14900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 1812 ~ 30------0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10SolidExternal threadExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-10 ~ 18-----0 ~ 14900 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250-------2 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30------2 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-----2 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250-------2 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30------2 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-----2 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10SolidExternal threadRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250-----------1 ~ 1500---6 ~ 50

-

1 4 Days 10SolidExternal threadRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30----------1 ~ 1500---6 ~ 50

-

1 4 Days 10SolidExternal threadRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18---------1 ~ 1500---6 ~ 50

-

1 4 Days 10SolidExternal threadHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250---------------6 ~ 20

-

1 4 Days 10SolidExternal threadHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 2503 ~ 30--------------6 ~ 20

-

1 4 Days 10SolidExternal threadHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 90-0 ~ 250-10 ~ 18-------------6 ~ 20

-

1 9 Days 10SolidExternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)0 ~ 903 ~ 300 ~ 250------------6 ~ 25-4 ~ 1016 ~ 50

-

1 4 Days 10SolidExternal threadTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)2 ~ 603 ~ 162 ~ 95-------------5 ~ 32-6 ~ 20

-

1 4 Days 10SolidExternal threadTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)2 ~ 60-2 ~ 953 ~ 20------------5 ~ 32-6 ~ 20

-

1 4 Days 10SolidExternal threadTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)2 ~ 60-2 ~ 95-10 ~ 18-----------5 ~ 32-6 ~ 20

-

1 4 Days 10Solid, One End SteppedStraightStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50--------6 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50-------3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightExternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50--0 ~ 900 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, Both Ends SteppedStraightStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 502 ~ 50--0 ~ 250----6 ~ 50

-

1 4 Days 10Solid, Both Ends SteppedStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 502 ~ 50--0 ~ 250---3 ~ 306 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightRetaining ring grooves20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50----1 ~ 1500---6 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightHex socket20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50--------6 ~ 20

-

1 9 Days 10Solid, One End SteppedStraightInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--0 ~ 250------2 ~ 50-----6 ~ 25-4 ~ 1016 ~ 50

-

1 4 Days 10Solid, One End SteppedStraightTaper20 ~ 1000[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)--2 ~ 95------2 ~ 19------5 ~ 32-6 ~ 20

-

1 4 Days 10Solid, One End SteppedInternal threadStraight20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 300 ~ 250------2 ~ 50--------6 ~ 50

-

1 4 Days 10Solid, One End SteppedInternal threadInternal thread20 ~ 1500[Alloyed Steel] EN 1.3505 Equiv.Hard Chrome Platingg6Induction Hardening (58HRC~)-3 ~ 300 ~ 250------2 ~ 50-------3 ~ 306 ~ 50

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Surface Limits / Hardness - Linear Shafts

 

Limits of hardness and hardening depth

The linear shafts are processed after the base material has undergone inductive hardening. Therefore, the processed surfaces may result in a deviating hardness.
In the following example, you can view the affected areas of the linear shaft, which may be affected after processing by e.g. threads, level surfaces, key surfaces and transverse bores.

 

Limitation of linear shaft induction hardening

 

Cause for deviating hardness

The raw material of the linear shaft is treated via thermal induction before grinding. Thus, a configured linear shaft can be custom-made not only cost-effectively, but also with short delivery times. The linear shaft is hardened at the boundary layer (boundary layer hardening) of the liner shaft. The depth of the hardened boundary layer depends on the material used and the diameter of the linear shaft. The following table shows the hardening depth of linear shafts.
Coatings and plating are applied to the raw material after hardening and grinding. For more information, see Coatings of the Linear Shaft.

 

Boundary layer hardening of a linear shaft

Figure of boundary layer hardening: hardened boundary layer in light gray

 

Effective hardening depth of linear shafts

Outside diameter (D)Effective hardening depth
EN 1.1191 equiv.EN 1.3505 equiv.EN 1.4125 equiv.EN 1.4301 equiv.
3-+0.5+0.5Without induction hardening
4-
5-
6 - 10+0.3
12 - 13+0.5+0.7+0.5
15 - 20+0.7
25 - 50+0.8+1

Overview of the effective hardening depth as PDF

 

Coatings of the linear shaft

The surface coating is applied to the raw material before machining the linear shaft. Thanks to their coating, the usable surface or work surface of the linear shaft is not only protected against corrosion but also against wear.
Machined positions of the linear shafts, such as plane surfaces or threads, may be uncoated, as they are added afterwards. This can lead to the machined surfaces being corroded in a linear shaft made of steel. If the linear shaft is used in a corrosive environment, it is recommended to use a stainless steel linear shaft.
The following figure shows the areas of the linear shaft that are coated (crosshatched). 

 

Surface coating after processing the linear shaft

Figure: Coating of linear shafts

 

You can find further information on surface treatment and hardness in this PDF .

 

General Information - Linear Shafts

 

Linear Shaft Selection Details

- Material: steel, stainless steel

- Coating/plating: uncoated, hard chrome plated, LTBC coated, chemically nickel-plated

- Heat treatment: untreated, inductively hardened

- ISO tolerances: h5, k5, g6, h6, h7, f8

- Precision classes: perpendicularity 0.03, concentricity (with thread and increments) Ø0.02, perpendicularity 0.20, concentricity (thread and stepper) Ø0.10

- Linearity/roundness: depends on diameter, here for the PDF

 

 

Description / basics of the linear shaft

Linear shafts are steel shafts that perform guiding tasks in combination with linear bearings, such as plain bearing bushings or linear ball bushings. Linear shaft holding functions can be adopted from shaft holders or linear ball bearing adapters. Most linear shafts are heat-treated (induction hardened) solid shafts. A special design of linear shafts is the hollow shaft, which is also called tubular shaft. Inductively hardened linear shafts have a high surface hardness and a tough core. The achievable surface hardness is approx. 55-58 HRC (see information on hardening depth). Linear shafts made of stainless steels can generally not be hardened. Therefore, these steel shafts should be chrome plated to protect them from wear.

 

Materials

Linear shafts are mainly hardened steel shafts. In addition to the selected heat treatment, the steel used in particular imparts its properties to the linear shaft, although it is a hollow shaft or a solid shaft. Therefore, special aspects such as hardness, corrosion and wear must be considered when selecting the shaft steel.

 

Coatings

To protect linear shafts from corrosion, the surface can be chemically nickel-plated. As an alternative to chemical nickel-plating, steel shafts can also be coated with LTBC. The LTBC coating is an anti-corrosive surface coating and it is a low-reflection coating, made of a 5 μm thick film of fluoropolymer, which in essence is a black film. In addition, the LTBC coating is resistant to bursting pressure by extreme or repeated bending. LTBC-coated linear shafts are thus particularly suitable for locations where corrosion or light reflections are undesirable. Linear shafts that require particularly high surface hardness and wear resistance can be hard chrome plated.

 

Function

The form and function of linear shafts differ from linear guiderails. Linear guiderails are square rails that work in combination with carriers (rotary elements, carriages) according to the rolling or sliding principle. Linear shafts on the other hand are precision-ground round steel shafts that take on a linear guide function in conjunction with linear ball bushings or plain bearing bushings (maintenance-free bushings).

 

Areas of Application

Linear shafts are intended for axial motion. Whether horizontal or vertical linear motion, all linear motions can be implemented with linear shafts. Common applications are stroke mechanisms and other applications with high demands on smoothness, precision and service life. Linear shafts can therefore be used in almost all industries of plant construction and mechanical engineering. Linear shafts are often found in 3D printers, metering equipment, measuring devices, positioning devices, alignment devices, bending devices and sorting equipment.

 

Instructions for Use / Installation  - Linear Shafts

 

For product selection, please observe the linear shaft tolerances (e.g. h5, k5, g6, h6, h7, f8) in conjunction with the diameter tolerance of the plain bearing bushing (sliding bearing) after pressing in or the running circle diameter of the linear ball bearing (ball bushing).

 

Diameter change of linear ball bushings after pressing  Inner diameter of linear ball bushings or ball bushings

 

Shaft Fasteners

 

Application Example of a Linear Shaft - Linear Shafts with Linear Ball Bushings - Linear Shafts with Shaft Holder
Application Example of a Linear Shaft Application Example - Linear Shaft with Linear Ball Bearings - Linear Ball Bearings with an Adjusting Ring
Application Example of a Linear Shaft - Linear Shaft with Shaft Holder
Application Example of a Linear Shaft - Linear Shaft with Circlip Groove - Linear Shaft with Circlip
Application Example of a Linear Shaft - Linear Shaft with Holding Washer
Application Example of a Linear Shaft - Linear Thread - Outer Threaded Linear Shaft - Linear Threaded with inner and outer threads
Application Example of a Linear Shaft - Cross Bore Linear Shaft - Inner Thread Linear Shaft
Application Example of a Linear Shaft - Cross Bore Linear Shaft - Outer Thread Linear Shaft

   

Supplementary Article

 

Shaft holder

Product range of shaft holders

 

Adjusting rings/clamping rings

Product range of adjusting rings - product range of clamping rings

 

Linear ball bearing

Product range of linear ball bearings - product range of ball sleeves - linear ball bearing with housing

 

Plain bearing bushings

Product range of sliding bearing bushings - plain bearing with housing

 

Ball guides

Ball guide product range

 

Industrial Applications

 

3D printer industry
3D printer industry
Automotive industry
Automotive industry
Pharmaceutical industry
Pharmaceutical industry
Packaging industry
Packaging industry

  

Basic information

Shaft end Perpendicularity 0.2 Heat Treatment Induction Hardened

Frequently Asked Questions (FAQ)

Question:

What is the difference between a hollow shaft and a solid shaft?

Answer:

With the same size, there are three differences between a hollow shaft and a solid shaft. Hollow shafts weigh less. The inner cavity of a hollow shaft is suitable for use as a channel (cable channel). Solid shafts are a bit more rigid (higher resistance torque).

Question:

What is the minimum order of linear shafts from MISUMI?

Answer:

MISUMI supplies solid shafts, hollow shafts and precision shafts starting at a lot size of 1. This also applies to all other items in our product range.

Question:

Noises and vibrations occur with a linear shaft. In addition, there are jerky movements. What could cause this?

Answer:

In general, it may be caused if the steel shaft is not properly lubricated. In addition, an incorrectly selected diameter tolerance of the linear shafts may also make the cycle of motion more difficult. When using MISUMI linear ball bearings, a g6 shaft tolerance is recommended (tolerance recommendations may vary depending on the manufacturer).

Question:

What is the strength of a solid shaft?

Answer:

The strength of a linear shaft, although it is a solid shaft, hollow shaft or precision shaft, should always be selected in consideration of the strength of the material used.

Question:

What are the advantages of a hollow shaft over a solid shaft?

Answer:

There are various advantages of a hollow shaft compared to a solid shaft. If the outer diameter is the same, the weight of a hollow shaft is lower than that of a solid shaft. However, the cavity of the hollow shaft can also be used as a cable channel or for cooling. A hollow shaft is at the same weight or with the same cross-sectional area more rigid than a solid shaft, because the outer diameter is larger. However, the question that needs to be answered is whether the advantage is a greater room utilization or less weight.

Question:

Is a hollow shaft stiffer than a solid shaft?

Answer:

The rigidity of a hollow shaft is slightly lower with the same outer diameter than that of a solid shaft. However, with the same cross-sectional area or with the same weight, the stiffness of a hollow shaft is higher than that of a solid shaft, because the outer diameter of the hollow shaft is larger.

Question:

Why do I have running grooves on the linear shafts of my 3D printers?

Answer:

The running grooves on the linear shaft may have been created, for example, by using a linear ball bearing. To prevent grooves from forming on a steel shaft, it should be hardened and hard chromium plated, making it more durable and resistant to the wear and tear from ball bearings.

Question:

How do the flexure properties of hollow shafts and solid shafts differ?

Answer:

With an equally large outer diameter, a solid shaft has better flexure properties than an equally large hollow shaft. However, the solid shaft is not much stiffer than a hollow shaft with the same outer diameter, since the outer sections mainly carry the load. Hollow shafts with the same cross-sectional area are more rigid than solid shafts, because they have a larger outer diameter. Therefore, there is physically more material in the outer sections for the bending, which bears the loads.

Question:

I need a lacquered or matted shaft because reflections cause problems with the optics. Does MISUMI have something like that?

Answer:

MISUMI LTBC-coated linear shafts are an alternative to painted or matted steel shafts. The LTBC coating is low-reflection and has the same effect as painted and matte shafts. In addition, LTBC-coated linear shafts are more resistant to wear and tear and flaking. You can find further information on LTBC coating here .

Question:

It has been shown that a hollow shaft is stronger than a solid shaft made of the same material. Why?

Answer:

A hollow shaft with the same outer dimensions is principally not stronger than a solid shaft. However, a hollow shaft per weight unit is stronger.

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