6-C - 12

  6-C - 12 JAERI      EVAL-AUG83 K.SHIBATA                        
 JAERI-M 83-221       DIST-SEP89 REV2-DEC93                       
----JENDL-3.2         MATERIAL  625                               
-----INCIDENT NEUTRON DATA                                        
------ENDF-6 FORMAT                                               
HISTORY                                                           
83-08  NEWLY EVALUATED BY K.SHIBATA                               
       DETAILS OF THE EVALUATION ARE GIVEN IN REF./1/.            
84-07  DATA OF MF=4 MT=91 WERE REVISED.                           
       COMMENT WAS ALSO MODIFIED.                                 
85-02  DATA OF MT=2, 3, 4, 53 OF MF=3 WERE REVISED ABOVE 10.45    
       MEV.  ANGULAR DISTRIBUTIONS FOR MT=52, 53 WERE ALSO        
       REVISED.                                                   
88-07  DATA OF MT=1, 3, 4, 52 OF MF=3 WERE REVISED ABOVE 8.3 MEV. 
93-12  JENDL-3.2                                                  
       INELASTIC SCATTERING AND CAPTURE CROSS SECTIONS WERE       
       REEVALUATED BY K. SHIBATA (JAERI).                         
       PSEUDO LEVELS WERE GENERATED TO REPRODUCE VAILABLE DDX     
       DATA.                                                      
       THE TOTAL CROSS SECTION WAS REPLACED WITH THE R-MATRIX     
       CALCULATION DONE IN REF./1/.                               
       ALL DATA WERE COMPILED BY K. SHIBATA.                      
       *****  MODIFIED PARTS FOR JENDL-3.2 ********************   
       (3,1)     R-MATRIX CALCULTION/1/.                          
       (3,2)     TOTAL - NOELASTIC                                
       (3,3)     SUM OF PARTIAL REACTION CROSS SECTIONS           
       (3,4)     SUM OF (3,51-91)                                 
       (3,51)    MODIFIED BY CONSIDERING EXPERIMENTAL DATA.       
       (3,53),(3,58)                                              
                 COUPLED-CHANNEL STATISTICAL MODEL CAL.           
       (3,52),(3,54-57),(3,59-75)                                 
                 PSEUDO LEVELS.                                   
       (3,91)    4-BODY BREAKUP.                                  
       (3,102)   MODIFIED BY TAKING ACCOUNT OF P-WAVE CAPTURE.    
       (4,51-91)                                                  
       (5,91)    4-BODY PHASE SPACE                               
       (12,102)  EXPERIMENTAL DATA FOR 20-200 KEV.                
       ********************************************************   
MF=1          GENERAL INFORMATION                                 
  MT=451   DESCRIPTIVE DATA                                       
                                                                  
MF=2          RESONANCE PARAMETERS                                
  MT=151   SCATTERING RADIUS ONLY.                                
                                                                  
MF=3          CROSS SECTIONS                                      
           CALCULATED 2200M/S CROSS SECTIONS AND RES. INTEGRALS   
               2200M/S (B)       RES.INTEG. (B)                   
    TOTAL      4.750                 -                            
    ELASTIC    4.746                 -                            
    CAPTURE    0.0035              0.0018                         
                                                                  
  MT=1     SIG-T                                                  
        BELOW 10 EV, SUM OF SIG-EL AND SIG-CAP.                   
        BETWEEN 10 EV AND 4.8 MEV, THE CROSS SECTION WAS CALCU-   
        LATED ON THE BASIS OF THE R-MATRIX THEORY.  THE R-MATRIX  
        PARAMETERS WERE OBTAINED SO AS TO GIVE THE BEST FIT TO    
        THE EXPERIMENTAL DATA /2/-/7/.                            
        ABOVE 4.8 MEV, BASED ON THE MEASUREMENTS /8/-/10/.        
  MT=2     SIG-EL                                                 
        BELOW 10 EV, SIG-EL = 4.746 BARNS.                        
        ABOVE 10 EV, THE CROSS SECTION WAS OBTAINED BY SUBTRACTING
        THE REACTION CROSS SECTION FROM THE TOTAL CROSS SECTION.  
  MT=3     NON-ELASTIC                                            
        SUM OF MT=4, 102, 103, 104 AND 107.                       
  MT=4     TOTAL INELASTIC                                        
        SUM OF MT=51-75 AND 91.                                   
  MT=51    SIG-IN  4.44 MEV LEVEL                                 
        BASED ON THE EXPERIMENTAL DATA /11,27,30,31/.             
  MT=53,58 SIG-IN  7.65 MEV (0+), 9.64 MEV (3-) LEVELS            
        THE CROSS SECTIONS WERE OBTAINED FROM COUPLED-CHANNEL     
        AND STATISTICAL MODEL CALCULATIONS.                       
  MT=52,54-57,59-75  PSEUDO LEVELS (N,N'3ALPHA)                   
        PSEUDO LEVELS WITH AN INTERVAL OF 500 KEV WERE MADE IN    
        ORDER TO SIMULATE SEQUENTIAL (N,N') DECAY (EVAPORATION    
        SHAPE) AND 3-BODY BREAKUP (PHASE SPACE) LEADING TO        
        (N,N'3ALPHA).  THE SUM OF THE CROSS SECTIONS FOR PSEUDO   
        LEVELS AND MT=91 IS CONSISTENT WITH THE MEASUREMENT/12/   
        EXCEPT AROUND THE THRESHOLD ENERGY WHERE THE CALCULATED   
        CROSS SECTIONS WERE ENHANCED.                             
  MT=91    (N,N'3ALPHA)                                           
        CONTRIBUTION FROM 4-BODY BREAKUP.  THE CROSS SECTION      
        WAS ADJUSTED SO THAT THE CALCULATED SPECTRUM COULD GIVE   
        A GOOD FIT TO EXPERIMENTAL DATA AT 14 MEV.                
        TOTAL (N,N')3A CROSS SECTION IS THE SUM OF MT=52-75       
        AND 91.                                                   
  MT=102   CAPTURE                                                
        BELOW 100 EV, 1/V CURVE.                                  
        BETWEEN 100 EV AND 5 MEV, S-WAVE PLUS P-WAVE CAPTURE      
        BY CONSIDERING THE DATA OF IGASHIRA/32/.                  
        ABOVE 5 MEV, THE INVERSE REACTION DATA OF COOK /13/ WERE  
        ADDED.                                                    
  MT=103   (N,P)                                                  
        BASED ON THE MEASUREMENT OF RIMMER AND FISHER /14/.       
  MT=104   (N,D)                                                  
        CALCULATED WITH DWBA.                                     
  MT=107   (N,A)                                                  
        BASED ON THE EXPERIMENTAL DATA /15/-/23/.                 
  MT=251   MU-BAR                                                 
        CALCULATED FROM THE DATA IN FILE4.                        
                                                                  
MF=4          ANGULAR DISTRIBUTIONS OF SECONDARY NEUTRONS         
  MT=2                                                            
        BELOW 10 EV, ISOTROPIC IN THE CENTER-OF-MASS SYSTEM (CM). 
        BETWEEN 10 EV AND 4.8 MEV, CALCULATED WITH THE R-MATRIX   
        THEORY.                                                   
        ABOVE 4.8 MEV, BASED ON THE EXPERIMENTAL DATA /24/-/28/.  
  MT=51                                                           
        BASED ON THE EXPERIMENTAL DATA /24/-/28//33/.             
  MT=53, 58                                                       
        BASED ON THE EXPERIMENTAL DATA /33/.                      
  MT=52,54-57,59-75                                               
        ISOTROPIC IN CM.                                          
  MT=91                                                           
        ISOTROPIC DISTRIBUTIONS IN LAB.                           
                                                                  
MF=5          ENERGY DISTRIBUTION OF SECONDARY NEUTRONS           
  MT=91                                                           
        4-BODY PHASE SPACE.                                       
                                                                  
MF=12         PHOTON-PRODUCTION MULTIPLICITIES                    
  MT=51    (N,N')GAMMA                                            
        M=1.0                                                     
  MT=102    (N,GAMMA)                                             
        BASED ON THE MEASUREMENT OF SPILLING ET AL./29/ AND       
        OF IGASHIRA /32/.                                         
                                                                  
MF=14         PHOTON ANGULAR DISTRIBUTIONS                        
  MT=51                                                           
        BASED ON THE EXPERIMENTAL DATA OF MORGAN ET AL./11/.      
  MT=102                                                          
        ASSUMED TO BE ISOTROPIC.                                  
                                                                  
REFERENCES                                                        
 1) SHIBATA, K.: JAERI-M 83-221 (1983).                           
 2) MEADOWS, J.W. AND WHALEN, J.F.: NUCL. SCI. ENG. 41 (1970) 351.
 3) CABE, J. AND CANCE, M.: CEA-R-4524 (1973)                     
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    (1973) 235.                                                   
 5) HEATON, II, H.T. ET AL.: NUCL. SCI. ENG. 56 (1975) 27.        
 6) NISHIMURA, K. ET AL.: JAERI-M 6883 (1977)                     
 7) SMITH, A. ET AL.: NUCL. SCI. ENG. 70 (1979) 281.              
 8) LAMAZE, G.P. ET AL.: BULL. AM. PHYS. SOC. 24 (1979) 862.      
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11) MORGAN, G.L. ET AL.: ORNL-TM-3702 (1972).                     
12) ANTOLKOVIC, B. ET AL.: NUCL. PHYS. A394 (1983) 87.            
13) COOK, B.C.: PHYS. REV. 106 (1957) 300.                        
14) RIMMER, E.M. AND FISHER, P.S.: NUCL. PHYS. A108 (1968) 567.   
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16) HUCK, A. ET AL.: J. DE PHYSIQUE C1 (1966) 88.                 
17) BRENDLE, M. ET AL.: Z. NATURFORSCH. 23A (1968) 1229.          
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19) KARDONSKY, S. ET AL.: PHYS. REV. C4 (1971) 840.               
20) STEVENS, A.P.: INIS-MF-3596 (1976).                           
21) RETZ-SCHMIDT, T. ET AL.: BULL. AM. PHYS. SOC. 5 (1960) 110.   
22) VERBINSKI, V.V. ET AL.: PHYS. REV. 170 (1968) 916.            
23) OBST, A.W. ET AL.: PHYS. REV. C5 (1972) 738.                  
24) DECONNINCK, G. AND MEULDERS, J.-P.: PHYS. REV. C1 (1970) 1326.
25) GALATI, W. ET AL.: PHYS. REV. C5 (1972) 1508.                 
26) VELKLEY, D.E., ET AL.: PHYS. REV. C7 (1973) 1736.             
27) HAOUAT, G. ET AL.: CEA-R-4641 (1975).                         
28) THUMM, M. ET AL.: NUCL. PHYS. A344 (1980) 446.                
29) SPILLING, P. ET AL.: NUCL. PHYS. A113 (1968) 395.             
    JAERI-M 88-065, P.279, (19883).                               
30) GLASGOW D.W. ET AL.: NUCL. SCI. ENG. 61 (1976) 521.           
31) ROGERS V.C. ET AL.: DNA 3495F (1974).                         
32) IGASHIRA M.: PRIVATE COMMUNICATION (1993).                    
33) BABA M. ET AL.: JAERI-M 90-025, P.383 (1990).